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    <title>Recent nobel items</title>
    <link>https://escholarship.org/uc/nobel/rss</link>
    <description>Recent eScholarship items from Nobel Laureates of the University of California</description>
    <pubDate>Sun, 20 Sep 2026 16:45:21 +0000</pubDate>
    <item>
      <title>Mitochondrial activity tunes nociceptor resilience to excitotoxicity</title>
      <link>https://escholarship.org/uc/item/394289p1</link>
      <description>The capsaicin receptor, TRPV1, mediates the detection of noxious chemical and thermal stimuli by nociceptors, primary sensory neurons of the pain pathway. Overactivation of TRPV1 leads to cellular damage or death through calcium entry and excitotoxicity. We have exploited this phenomenon to conduct a systematic analysis of excitotoxicity through a genome-wide CRISPRi screen, thereby revealing a comprehensive network of regulatory pathways. We show that decreased expression of mitochondrial electron transport chain (ETC) components protects against capsaicin-induced toxicity and other challenges by mitigating both calcium imbalance and the generation of mitochondrial reactive oxygen species via distinct pathways. Moreover, we confirm the regulatory roles of the ETC in sensory neurons through gain-of-function and loss-of-function experiments. Interestingly, TRPV1&lt;sup&gt;+&lt;/sup&gt; sensory neurons maintain lower expression of ETC components and can better tolerate excitotoxicity and oxidative...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/394289p1</guid>
      <pubDate>Fri, 11 Sep 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Yuan, Lin</name>
      </author>
      <author>
        <name>Chandel, Navdeep S</name>
      </author>
      <author>
        <name>Julius, David</name>
        <uri>https://orcid.org/0000-0002-6365-4867</uri>
      </author>
    </item>
    <item>
      <title>A cellular basis for heightened gut sensitivity in females</title>
      <link>https://escholarship.org/uc/item/7b7984x6</link>
      <description>Visceral pain disorders, such as irritable bowel syndrome, exhibit a marked female prevalence. Enhanced signaling between enterochromaffin (EC) cells in the gut epithelium and mucosal sensory nerve fibers likely contributes to this sex bias. We identified an estrogen-responsive paracrine pathway in which two enteroendocrine cell types, peptide YY (PYY)-expressing L cells and serotonergic EC cells, communicate to increase gut sensitivity in females. We demonstrate that estrogen signaling up-regulates the bacterial metabolite short-chain fatty acid receptor &lt;i&gt;Olfr78&lt;/i&gt; on colonic L cells, increasing PYY release and their sensitivity to acetate. Elevated PYY acts on neighboring EC cells by means of NPY1R, thereby enhancing serotonin release and gut pain. We propose that hormonal fluctuations, in conjunction with internal (stress) or environmental (diet) factors, amplify this local estrogen-responsive colonic circuit, resulting in maladaptive gut sensitivity.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7b7984x6</guid>
      <pubDate>Thu, 10 Sep 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Venkataraman, Archana</name>
      </author>
      <author>
        <name>Figueroa, Eric E</name>
      </author>
      <author>
        <name>Castro, Joel</name>
      </author>
      <author>
        <name>Navarro, Fernanda Castro</name>
      </author>
      <author>
        <name>Soota, Deepanshu</name>
      </author>
      <author>
        <name>Brierley, Stuart M</name>
      </author>
      <author>
        <name>Julius, David</name>
        <uri>https://orcid.org/0000-0002-6365-4867</uri>
      </author>
      <author>
        <name>Ingraham, Holly A</name>
        <uri>https://orcid.org/0000-0001-6739-2967</uri>
      </author>
    </item>
    <item>
      <title>Recurrent acquisition of nuclease-protease pairs in antiviral immunity</title>
      <link>https://escholarship.org/uc/item/1kz0j2x7</link>
      <description>Antiviral immune systems diversify by integrating new genes into existing pathways, creating new mechanisms of viral resistance. We identified genes encoding a predicted nuclease paired with a trypsin-like protease repeatedly acquired by multiple, otherwise unrelated antiviral immune systems in bacteria. Cell-based and biochemical assays revealed that the nuclease is a proenzyme that cleaves DNA only after activation by its partner protease. Two distinct immune systems, Hachiman and AVAST (antiviral adenosine triphosphatase/nucleoside triphosphatase of the STAND superfamily, Avs), use the same mechanism of proteolytic activation despite their independent evolutionary origins. Examination of nuclease-protease inheritance patterns identified caspase-nuclease (&lt;i&gt;canu&lt;/i&gt;) genomic loci that confer antiviral defense in a pathway reminiscent of eukaryotic caspase activation. These results uncover the coordinated activities of pronucleases and their activating proteases within different...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/1kz0j2x7</guid>
      <pubDate>Fri, 28 Aug 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Tuck, Owen T</name>
      </author>
      <author>
        <name>Hu, Jason J</name>
      </author>
      <author>
        <name>Lopez, Santiago C</name>
      </author>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>O’Brien, Claire E</name>
      </author>
      <author>
        <name>Hsieh, Kendall</name>
      </author>
      <author>
        <name>Meredith, Charlotte</name>
      </author>
      <author>
        <name>Loi, Kenneth J</name>
      </author>
      <author>
        <name>Yoon, Peter H</name>
      </author>
      <author>
        <name>Doherty, Erin E</name>
        <uri>https://orcid.org/0000-0002-1555-4124</uri>
      </author>
      <author>
        <name>Lahiri, Arushi</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>ZTF-SEDm Type Ia supernova sample for Twins Embedding spectrophotometric standardization</title>
      <link>https://escholarship.org/uc/item/1k95s9bg</link>
      <description>Aims. This paper has two aims: the first aim is to build a large homogeneous spectrophotometric sample of Type Ia supernovae (SNe Ia) from the second data release of the Zwicky Transient Facility (ZTF DR2). We used the spectrum sample from the low-resolution ( R ∼ 100) SEDmachine (SEDm) Integral Field Spectrograph (IFS) that gathered 3069 spectra. This is one of the largest samples of such collections that can attempt to reproduce the Twins Embedding (TE) spectrophotometric standardization method. This is our second objective. The method was developed based on high-quality spectra from 200 SNe Ia of the Nearby Supernova factory (SNfactory) and led to an exceptionally low value of 0.073 mag for the intrinsic scatter.   Methods. As the SEDm is not designed as a spectrophotometric instrument, we first improved the flux-calibration accuracy of the SN Ia spectrum sample using the ZTF photometric data, which were calibrated at the percent level. We corrected the spectra for second-order...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/1k95s9bg</guid>
      <pubDate>Tue, 18 Aug 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Ganot, C</name>
      </author>
      <author>
        <name>Copin, Y</name>
      </author>
      <author>
        <name>Rigault, M</name>
      </author>
      <author>
        <name>Dimitriadis, G</name>
      </author>
      <author>
        <name>Goobar, A</name>
      </author>
      <author>
        <name>Maguire, K</name>
      </author>
      <author>
        <name>Nordin, J</name>
      </author>
      <author>
        <name>Smith, M</name>
      </author>
      <author>
        <name>Aldering, G</name>
      </author>
      <author>
        <name>Barjou-Delayre, C</name>
      </author>
      <author>
        <name>Betoule, M</name>
      </author>
      <author>
        <name>Bloom, JS</name>
      </author>
      <author>
        <name>Burgaz, U</name>
      </author>
      <author>
        <name>Galbany, L</name>
      </author>
      <author>
        <name>Ginolin, M</name>
      </author>
      <author>
        <name>Graham, M</name>
      </author>
      <author>
        <name>Hale, D</name>
      </author>
      <author>
        <name>Johansson, J</name>
      </author>
      <author>
        <name>Kasliwal, MM</name>
      </author>
      <author>
        <name>Kim, Y-L</name>
      </author>
      <author>
        <name>Masci, FJ</name>
      </author>
      <author>
        <name>Müller-Bravo, TE</name>
      </author>
      <author>
        <name>Perlmutter, S</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Popovic, B</name>
      </author>
      <author>
        <name>Purdum, JN</name>
      </author>
      <author>
        <name>Rusholme, B</name>
      </author>
      <author>
        <name>Sollerman, J</name>
      </author>
      <author>
        <name>Terwel, JH</name>
      </author>
      <author>
        <name>Townsend, A</name>
      </author>
    </item>
    <item>
      <title>DESI Strong Lens Foundry. III. Keck Spectroscopy for Strong Lenses Discovered Using Residual Neural Networks</title>
      <link>https://escholarship.org/uc/item/79m6h30j</link>
      <description>We present spectroscopic data of strong lenses and their source galaxies using the Keck Near-Infrared Echellette Spectrometer (NIRES) and the Dark Energy Spectroscopic Instrument (DESI), providing redshifts necessary for nearly all strong-lensing applications with these systems, especially the extraction of physical parameters from lensing modeling. These strong lenses were found in the DESI Legacy Imaging Surveys using residual neural networks and followed up by our Hubble Space Telescope program, with all systems displaying unambiguous lensed arcs. With NIRES, we target eight lensed sources at redshifts difficult to measure in the optical range and determine the source redshifts for six, between zs = 1.675 and 3.332. DESI observed one of the remaining source redshifts, as well as an additional source redshift within the six systems. The two systems with nondetections by NIRES were observed for a considerably shorter 600 s at high airmass. Combining NIRES infrared spectroscopy...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/79m6h30j</guid>
      <pubDate>Tue, 4 Aug 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Agarwal, Shrihan</name>
      </author>
      <author>
        <name>Huang, Xiaosheng</name>
      </author>
      <author>
        <name>Sheu, W</name>
        <uri>https://orcid.org/0000-0003-1889-0227</uri>
      </author>
      <author>
        <name>Storfer, CJ</name>
      </author>
      <author>
        <name>Tamargo-Arizmendi, M</name>
      </author>
      <author>
        <name>Tabares-Tarquinio, S</name>
      </author>
      <author>
        <name>Schlegel, DJ</name>
        <uri>https://orcid.org/0000-0002-5042-5088</uri>
      </author>
      <author>
        <name>Aldering, G</name>
      </author>
      <author>
        <name>Bolton, A</name>
      </author>
      <author>
        <name>Cikota, A</name>
      </author>
      <author>
        <name>Dey, Arjun</name>
      </author>
      <author>
        <name>Filipp, A</name>
      </author>
      <author>
        <name>Jullo, E</name>
      </author>
      <author>
        <name>Kwon, KJ</name>
      </author>
      <author>
        <name>Perlmutter, S</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Shu, Y</name>
      </author>
      <author>
        <name>Sukay, E</name>
      </author>
      <author>
        <name>Suzuki, N</name>
      </author>
      <author>
        <name>Aguilar, J</name>
      </author>
      <author>
        <name>Ahlen, S</name>
      </author>
      <author>
        <name>BenZvi, S</name>
      </author>
      <author>
        <name>Brooks, D</name>
      </author>
      <author>
        <name>Claybaugh, T</name>
      </author>
      <author>
        <name>Doel, P</name>
      </author>
      <author>
        <name>Forero-Romero, JE</name>
      </author>
      <author>
        <name>Gaztañaga, E</name>
      </author>
      <author>
        <name>Gontcho, S Gontcho A</name>
      </author>
      <author>
        <name>Gutierrez, G</name>
      </author>
      <author>
        <name>Honscheid, K</name>
      </author>
      <author>
        <name>Ishak, M</name>
      </author>
      <author>
        <name>Juneau, S</name>
      </author>
      <author>
        <name>Kehoe, R</name>
      </author>
      <author>
        <name>Kisner, T</name>
      </author>
      <author>
        <name>Koposov, SE</name>
      </author>
      <author>
        <name>Lambert, A</name>
      </author>
      <author>
        <name>Landriau, M</name>
        <uri>https://orcid.org/0000-0003-1838-8528</uri>
      </author>
      <author>
        <name>Le Guillou, L</name>
      </author>
      <author>
        <name>de la Macorra, A</name>
      </author>
      <author>
        <name>Meisner, A</name>
      </author>
      <author>
        <name>Miquel, R</name>
      </author>
      <author>
        <name>Moustakas, J</name>
      </author>
      <author>
        <name>Myers, AD</name>
      </author>
      <author>
        <name>Poppett, C</name>
      </author>
      <author>
        <name>Prada, F</name>
      </author>
      <author>
        <name>Pérez-Ràfols, I</name>
      </author>
      <author>
        <name>Rossi, G</name>
      </author>
      <author>
        <name>Sanchez, E</name>
      </author>
      <author>
        <name>Schubnell, M</name>
      </author>
      <author>
        <name>Sprayberry, D</name>
      </author>
      <author>
        <name>Tarlé, G</name>
      </author>
      <author>
        <name>Weaver, BA</name>
      </author>
      <author>
        <name>Zou, H</name>
      </author>
    </item>
    <item>
      <title>DESI Strong Lens Foundry. I. HST Observations and Modeling with GIGA-Lens</title>
      <link>https://escholarship.org/uc/item/6501b837</link>
      <description>We present the Dark Energy Spectroscopic Instrument (DESI) Strong Lens Foundry. We discovered ∼3500 new strong gravitational lens candidates in the DESI Legacy Imaging Surveys using residual neural networks (ResNet). We observed a subset (51) of our candidates using the Hubble Space Telescope (HST). Except for one ambiguous case, we have confirmed 50 of the 51 candidates to be strong lenses. We also briefly describe spectroscopic follow-up observations by DESI and Keck NIRES programs. From this very rich data set, a number of studies will be carried out, including evaluating the quality of the ResNet search candidates and lens modeling. In this paper, we present our initial effort in these directions. In particular, as a demonstration, we present the lens model for DESI-165.4754−06.0423, with imaging data from HST, and lens and source redshifts from DESI and Keck NIRES, respectively. In this effort, we have applied a fully forward-modeling Bayesian approach (GIGA-Lens), using...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/6501b837</guid>
      <pubDate>Tue, 4 Aug 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Huang, Xiaosheng</name>
      </author>
      <author>
        <name>Baltasar, Saul</name>
      </author>
      <author>
        <name>Ratier-Werbin, N</name>
      </author>
      <author>
        <name>Storfer, C</name>
      </author>
      <author>
        <name>Sheu, W</name>
        <uri>https://orcid.org/0000-0003-1889-0227</uri>
      </author>
      <author>
        <name>Agarwal, S</name>
      </author>
      <author>
        <name>Tamargo-Arizmendi, M</name>
      </author>
      <author>
        <name>Schlegel, DJ</name>
        <uri>https://orcid.org/0000-0002-5042-5088</uri>
      </author>
      <author>
        <name>Aguilar, J</name>
      </author>
      <author>
        <name>Ahlen, S</name>
      </author>
      <author>
        <name>Aldering, G</name>
      </author>
      <author>
        <name>Banka, S</name>
      </author>
      <author>
        <name>BenZvi, S</name>
      </author>
      <author>
        <name>Bianchi, D</name>
      </author>
      <author>
        <name>Bolton, A</name>
      </author>
      <author>
        <name>Brooks, D</name>
      </author>
      <author>
        <name>Cikota, A</name>
      </author>
      <author>
        <name>Claybaugh, T</name>
      </author>
      <author>
        <name>de la Macorra, A</name>
      </author>
      <author>
        <name>Dey, A</name>
      </author>
      <author>
        <name>Doel, P</name>
      </author>
      <author>
        <name>Edelstein, J</name>
      </author>
      <author>
        <name>Filipp, A</name>
      </author>
      <author>
        <name>Forero-Romero, JE</name>
      </author>
      <author>
        <name>Gaztañaga, E</name>
      </author>
      <author>
        <name>Gontcho, S Gontcho A</name>
      </author>
      <author>
        <name>Gu, A</name>
      </author>
      <author>
        <name>Gutierrez, G</name>
      </author>
      <author>
        <name>Honscheid, K</name>
      </author>
      <author>
        <name>Jullo, E</name>
      </author>
      <author>
        <name>Juneau, S</name>
      </author>
      <author>
        <name>Kehoe, R</name>
      </author>
      <author>
        <name>Kirkby, D</name>
        <uri>https://orcid.org/0000-0002-8828-5463</uri>
      </author>
      <author>
        <name>Kisner, T</name>
      </author>
      <author>
        <name>Kremin, A</name>
        <uri>https://orcid.org/0000-0001-6356-7424</uri>
      </author>
      <author>
        <name>Kwon, KJ</name>
      </author>
      <author>
        <name>Lambert, A</name>
      </author>
      <author>
        <name>Landriau, M</name>
        <uri>https://orcid.org/0000-0003-1838-8528</uri>
      </author>
      <author>
        <name>Lang, D</name>
      </author>
      <author>
        <name>Le Guillou, L</name>
      </author>
      <author>
        <name>Liu, J</name>
      </author>
      <author>
        <name>Meisner, A</name>
      </author>
      <author>
        <name>Miquel, R</name>
      </author>
      <author>
        <name>Moustakas, J</name>
      </author>
      <author>
        <name>Myers, AD</name>
      </author>
      <author>
        <name>Perlmutter, S</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Pérez-Ràfols, I</name>
      </author>
      <author>
        <name>Prada, F</name>
      </author>
      <author>
        <name>Rossi, G</name>
      </author>
      <author>
        <name>Rubin, D</name>
        <uri>https://orcid.org/0000-0001-5402-4647</uri>
      </author>
      <author>
        <name>Sanchez, E</name>
      </author>
      <author>
        <name>Schubnell, M</name>
      </author>
      <author>
        <name>Shu, Y</name>
      </author>
      <author>
        <name>Silver, E</name>
      </author>
      <author>
        <name>Sprayberry, D</name>
      </author>
      <author>
        <name>Suzuki, N</name>
      </author>
      <author>
        <name>Tarlé, G</name>
      </author>
      <author>
        <name>Weaver, BA</name>
      </author>
      <author>
        <name>Zou, H</name>
      </author>
    </item>
    <item>
      <title>The phage nucleus synergizes with an anti-defense protein to resist bacterial immunity</title>
      <link>https://escholarship.org/uc/item/0qp9m9t3</link>
      <description>Chimallivirus bacteriophages enclose their replicating genomes in a protein-based compartment termed the phage nucleus. While the phage nucleus segregates phage DNA from host immune proteins, it is not known if additional factors are required to protect against DNA-targeting host defenses. Here, we identify a chimallivirus-encoded DarG2-like antitoxin that localizes to the phage nucleus and provides protection against phage-targeting DarTG2 toxin-antitoxin systems. This protein, which we term AdfM (anti-darT factor macro), contains a macrodomain and removes DarT2-mediated ADP-ribose modifications from DNA. In the absence of AdfM, DarT2 modifies phage DNA and restricts chimallivirus replication despite being largely excluded from the phage nucleus. Increasing the nuclear concentration of DarT2 while decreasing the nuclear concentration of AdfM reduces phage replication. These results show that the phage nucleus is insufficient to completely protect the chimallivirus genome from...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/0qp9m9t3</guid>
      <pubDate>Wed, 13 May 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Morgan, Chase J</name>
      </author>
      <author>
        <name>Rani, Phoolwanti</name>
      </author>
      <author>
        <name>Deep, Amar</name>
      </author>
      <author>
        <name>Liu, Rui</name>
      </author>
      <author>
        <name>Basu, Dwaipayan</name>
      </author>
      <author>
        <name>Chambers, Lydia R</name>
      </author>
      <author>
        <name>Li, Ying-Xing</name>
      </author>
      <author>
        <name>Levine, Makaela</name>
      </author>
      <author>
        <name>Hsieh, Kendall</name>
      </author>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Birkholz, Erica</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Villa, Elizabeth</name>
        <uri>https://orcid.org/0000-0003-4677-9809</uri>
      </author>
      <author>
        <name>Corbett, Kevin D</name>
        <uri>https://orcid.org/0000-0001-5854-2388</uri>
      </author>
      <author>
        <name>Pogliano, Joe</name>
      </author>
    </item>
    <item>
      <title>Targeted delivery of genome editors in vivo</title>
      <link>https://escholarship.org/uc/item/6c54x1xq</link>
      <description>Genome editing has revolutionized the treatment of genetic diseases, yet the difficulty of tissue-specific delivery currently limits applications of editing technology. In this Review, we discuss preclinical and clinical advances in delivering genome editors with both established and emerging delivery mechanisms. Targeted delivery promises to considerably expand the therapeutic applicability of genome editing, moving closer to the ideal of a precise ‘magic bullet’ that safely and effectively treats diverse genetic disorders.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/6c54x1xq</guid>
      <pubDate>Thu, 19 Mar 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Ngo, Wayne</name>
      </author>
      <author>
        <name>Wu, Jamie LY</name>
      </author>
      <author>
        <name>Wasko, Kevin M</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Temporal photoproximity labeling of ligand-activated EGFR neighborhoods using MultiMap</title>
      <link>https://escholarship.org/uc/item/6pn129m2</link>
      <description>Photoproximity labeling proteomics (PLP) methods have recently shown that cell surface receptors can form lateral interactome networks. Here, we present a paired set of PLP workflows that dynamically track neighborhood changes for oncogenic epidermal growth factor receptor (EGFR) over time, both outside and inside of cells. We achieved this by augmenting the multiscale PLP workflow we call MultiMap, where three photoprobes with different labeling ranges were photoactivated by one photocatalyst, eosin Y, anchored extracellularly and intracellularly on EGFR. We identified hundreds of neighboring proteins that changed within minutes to over 1 h after the addition of EGF. These neighborhoods reveal dynamic interactomes during early, middle and late signaling that drive phosphorylation, internalization, degradation and transcriptional regulation. This rapid ‘molecular photographic’ labeling approach provides snapshots of signaling neighborhoods, revealing their dynamic nature and potential...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/6pn129m2</guid>
      <pubDate>Thu, 12 Feb 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Lin, Zhi</name>
      </author>
      <author>
        <name>Ngo, Wayne</name>
      </author>
      <author>
        <name>Chou, Yu-Ting</name>
      </author>
      <author>
        <name>Wu, Harry</name>
      </author>
      <author>
        <name>Susa, Katherine J</name>
      </author>
      <author>
        <name>Jun, Young-wook</name>
      </author>
      <author>
        <name>Bivona, Trever G</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Wells, James A</name>
      </author>
    </item>
    <item>
      <title>A miniature CRISPR–Cas10 enzyme confers immunity by inhibitory signalling</title>
      <link>https://escholarship.org/uc/item/2tb840xw</link>
      <description>Microbial and viral co-evolution has created immunity mechanisms involving oligonucleotide signalling that share mechanistic features with human antiviral systems1. In these pathways, including cyclic oligonucleotide-based antiphage signalling systems (CBASSs) and type III CRISPR systems in bacteria and cyclic GMP–AMP synthase–stimulator of interferon genes (cGAS–STING) in humans, oligonucleotide synthesis occurs upon detection of virus or foreign genetic material in the cell, triggering the antiviral response2, 3–4. Here, in an unexpected inversion of this process, we show that the CRISPR-related enzyme mCpol synthesizes cyclic oligonucleotides constitutively as part of an active mechanism that represses a toxic effector. Cell-based experiments demonstrated that the absence or loss of mCpol-produced cyclic oligonucleotides triggers cell death, preventing the&amp;nbsp;spread of viruses that attempt immune evasion by depleting host cyclic nucleotides. Structural and mechanistic investigation...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/2tb840xw</guid>
      <pubDate>Wed, 28 Jan 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Doherty, Erin E</name>
        <uri>https://orcid.org/0000-0002-1555-4124</uri>
      </author>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Yoon, Peter H</name>
      </author>
      <author>
        <name>Hsieh, Kendall</name>
      </author>
      <author>
        <name>Loi, Kenneth</name>
      </author>
      <author>
        <name>Armbruster, Emily G</name>
      </author>
      <author>
        <name>Lahiri, Arushi</name>
      </author>
      <author>
        <name>Bolling, Cydni S</name>
      </author>
      <author>
        <name>Wilcox, Xander E</name>
      </author>
      <author>
        <name>Akkati, Amogha</name>
      </author>
      <author>
        <name>Iavarone, Anthony T</name>
      </author>
      <author>
        <name>Pogliano, Joe</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Divergent viral phosphodiesterases for immune signaling evasion</title>
      <link>https://escholarship.org/uc/item/0kg844t6</link>
      <description>Cyclic dinucleotides (CDNs) and other short oligonucleotides play fundamental roles in immune system activation in organisms ranging from bacteria to humans. In response, viruses use phosphodiesterase (PDE)-mediated oligonucleotide cleavage for immune evasion, a strategy whose diversity has not yet been explored. Here, we use a canonical 2H PDE (2H PDE) structure-based search of prokaryotic and eukaryotic viral sequences to identify an exceptional diversity of 2H PDEs across the virome, including enzymes not detectable with sequence search methods alone. Despite active site conservation, biochemical experiments reveal remarkable substrate specificity of these PDEs that corresponds to variations in the core 2H fold. This nuanced specificity allows 2H PDEs to selectively degrade oligonucleotide messengers to avoid interfering with host nucleotide signaling. Together, these findings nominate viral 2H PDEs as key regulators of CDN signaling across the tree of life.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/0kg844t6</guid>
      <pubDate>Mon, 12 Jan 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Doherty, Erin E</name>
        <uri>https://orcid.org/0000-0002-1555-4124</uri>
      </author>
      <author>
        <name>Nomburg, Jason</name>
      </author>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Lopez, Santiago</name>
      </author>
      <author>
        <name>Hsieh, Kendall</name>
      </author>
      <author>
        <name>Price, Nathan</name>
      </author>
      <author>
        <name>Blount, Nurashau</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Identification of proteins influencing CRISPR-associated transposases for enhanced genome editing</title>
      <link>https://escholarship.org/uc/item/3nm6z453</link>
      <description>CRISPR-associated transposases (CASTs) hold tremendous potential for microbial genome editing because of their ability to integrate large DNA cargos in a programmable, site-specific manner. However, their widespread application has been hindered by poorly understood host factor requirements for transposition. To address this gap, we conducted the first genome-wide screen for host factors affecting &lt;i&gt;Vibrio cholerae&lt;/i&gt; CAST (&lt;i&gt;Vch&lt;/i&gt;CAST) activity using an &lt;i&gt;Escherichia coli&lt;/i&gt; RB-TnSeq library and identified 15 genes affecting &lt;i&gt;Vch&lt;/i&gt;CAST transposition. Of these, seven factors were validated to improve &lt;i&gt;Vch&lt;/i&gt;CAST activity, and two were inhibitory. Guided by the identification of homologous recombination effectors, RecD and RecA, we tested the λ-Red recombineering system in our &lt;i&gt;Vch&lt;/i&gt;CAST editing vectors and increased editing efficiency by 55.2-fold in &lt;i&gt;E. coli&lt;/i&gt;, 5.6-fold in &lt;i&gt;Pseudomonas putida&lt;/i&gt;, and 10.8-fold in &lt;i&gt;Klebsiella michiganensis&lt;/i&gt; while...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/3nm6z453</guid>
      <pubDate>Tue, 6 Jan 2026 00:00:00 +0000</pubDate>
      <author>
        <name>Song, Leo CT</name>
      </author>
      <author>
        <name>Alker, Amanda TP</name>
      </author>
      <author>
        <name>Oromí-Bosch, Agnès</name>
      </author>
      <author>
        <name>Swartz, Sophia E</name>
      </author>
      <author>
        <name>Martinson, Jonathan NV</name>
      </author>
      <author>
        <name>Arora, Jigyasa</name>
      </author>
      <author>
        <name>Wang, Abby M</name>
      </author>
      <author>
        <name>Rovinsky, Rachel</name>
      </author>
      <author>
        <name>Smith, Sara J</name>
        <uri>https://orcid.org/0009-0005-7076-1475</uri>
      </author>
      <author>
        <name>Pierce, Emily C</name>
      </author>
      <author>
        <name>Deutschbauer, Adam M</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Cress, Brady F</name>
        <uri>https://orcid.org/0000-0002-2948-2846</uri>
      </author>
      <author>
        <name>Rubin, Benjamin E</name>
      </author>
    </item>
    <item>
      <title>Characterizing and controlling CRISPR repair outcomes in nondividing human cells</title>
      <link>https://escholarship.org/uc/item/895987vp</link>
      <description>Genome editing is poised to revolutionize treatment of genetic diseases, but poor understanding and control of DNA repair outcomes hinders its therapeutic potential. DNA repair is especially understudied in nondividing cells like neurons, limiting the efficiency and precision of genome editing in many clinically relevant tissues. Here, we address this barrier by using induced pluripotent stem cells (iPSCs) and iPSC-derived neurons to examine how postmitotic human neurons repair Cas9-induced DNA damage. CRISPR editing outcomes differ dramatically in neurons compared to genetically identical dividing cells: neurons take longer to fully resolve this damage, and upregulate non-canonical DNA repair factors in the process. Manipulating this response with chemical or genetic perturbations allows us to direct DNA repair toward desired editing outcomes in nondividing human neurons, cardiomyocytes, and primary T cells. By studying DNA repair in clinically relevant cells, we reveal unforeseen...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/895987vp</guid>
      <pubDate>Sat, 22 Nov 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Ramadoss, Gokul N</name>
      </author>
      <author>
        <name>Namaganda, Samali J</name>
      </author>
      <author>
        <name>Kumar, Manasi M</name>
      </author>
      <author>
        <name>Hamilton, Jennifer R</name>
      </author>
      <author>
        <name>Sharma, Rohit</name>
        <uri>https://orcid.org/0000-0003-1428-5521</uri>
      </author>
      <author>
        <name>Chow, Karena G</name>
      </author>
      <author>
        <name>Workley, Luke A</name>
      </author>
      <author>
        <name>Macklin, Bria L</name>
      </author>
      <author>
        <name>Sun, Mengyuan</name>
      </author>
      <author>
        <name>Ha, Alvin S</name>
        <uri>https://orcid.org/0000-0002-7092-9072</uri>
      </author>
      <author>
        <name>Liu, Jia-Cheng</name>
      </author>
      <author>
        <name>Fellmann, Christof</name>
      </author>
      <author>
        <name>Watry, Hannah L</name>
      </author>
      <author>
        <name>Dierks, Philip H</name>
      </author>
      <author>
        <name>Bose, Rudra S</name>
      </author>
      <author>
        <name>Jin, Julianne</name>
      </author>
      <author>
        <name>Perez, Barbara S</name>
      </author>
      <author>
        <name>Sandoval Espinoza, Cindy R</name>
      </author>
      <author>
        <name>Matia, Madeline P</name>
      </author>
      <author>
        <name>Lu, Serena H</name>
      </author>
      <author>
        <name>Judge, Luke M</name>
      </author>
      <author>
        <name>Shy, Brian R</name>
      </author>
      <author>
        <name>Nussenzweig, Andre</name>
      </author>
      <author>
        <name>Adamson, Britt</name>
      </author>
      <author>
        <name>Murthy, Niren</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Kampmann, Martin</name>
      </author>
      <author>
        <name>Conklin, Bruce R</name>
        <uri>https://orcid.org/0000-0003-1463-6061</uri>
      </author>
    </item>
    <item>
      <title>Directed evolution expands CRISPR–Cas12a genome-editing capacity</title>
      <link>https://escholarship.org/uc/item/7n89c79w</link>
      <description>CRISPR-Cas12a enzymes are versatile RNA-guided genome-editing tools with applications encompassing viral diagnosis, agriculture, and human therapeutics. However, their dependence on a 5'-TTTV-3' protospacer adjacent motif (PAM) next to DNA target sequences restricts Cas12a's gene targeting capability to only ∼1% of a typical genome. To mitigate this constraint, we used a bacterial-based directed evolution assay combined with rational engineering to identify variants of Lachnospiraceae bacterium Cas12a&amp;nbsp;with expanded PAM recognition. The resulting Cas12a variants use a range of noncanonical PAMs while retaining recognition of the canonical 5'-TTTV-3' PAM. In particular, biochemical&amp;nbsp;and cell-based assays show that the variant Flex-Cas12a utilizes 5'-NYHV-3' PAMs that expand DNA recognition sites to ∼25% of the human genome. With enhanced targeting versatility, Flex-Cas12a unlocks access to previously inaccessible genomic loci, providing new opportunities for both therapeutic...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7n89c79w</guid>
      <pubDate>Wed, 13 Aug 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Ma, Enbo</name>
      </author>
      <author>
        <name>Chen, Kai</name>
      </author>
      <author>
        <name>Shi, Honglue</name>
      </author>
      <author>
        <name>Wasko, Kevin M</name>
      </author>
      <author>
        <name>Esain-Garcia, Isabel</name>
      </author>
      <author>
        <name>Trinidad, Marena I</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Zhou, Kaihong</name>
      </author>
      <author>
        <name>Ye, Jinjuan</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Rapid two-step target capture ensures efficient CRISPR-Cas9-guided genome editing</title>
      <link>https://escholarship.org/uc/item/5f65639f</link>
      <description>RNA-guided CRISPR-Cas enzymes initiate programmable genome editing by recognizing a ∼20-base-pair DNA sequence next to a short protospacer-adjacent motif (PAM). To uncover the molecular determinants of high-efficiency editing, we conducted biochemical, biophysical, and cell-based assays on Streptococcus pyogenes Cas9 (SpyCas9) variants with wide-ranging genome-editing efficiencies that differ in PAM-binding specificity. Our results show that reduced PAM specificity causes persistent non-selective DNA binding and recurrent failures to engage the target sequence through stable guide RNA hybridization, leading to reduced genome-editing efficiency in cells. These findings reveal a fundamental trade-off between broad PAM recognition and genome-editing effectiveness. We propose that high-efficiency RNA-guided genome editing relies on an optimized two-step target capture process, where selective but low-affinity PAM binding precedes rapid DNA unwinding. This model provides a foundation...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5f65639f</guid>
      <pubDate>Mon, 28 Jul 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Shi, H</name>
      </author>
      <author>
        <name>Al-Sayyad, N</name>
      </author>
      <author>
        <name>Wasko, KM</name>
      </author>
      <author>
        <name>Trinidad, MI</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Doherty, EE</name>
      </author>
      <author>
        <name>Vohra, K</name>
      </author>
      <author>
        <name>Boger, RS</name>
      </author>
      <author>
        <name>Colognori, D</name>
      </author>
      <author>
        <name>Cofsky, JC</name>
      </author>
      <author>
        <name>Skopintsev, P</name>
      </author>
      <author>
        <name>Bryant, Z</name>
      </author>
      <author>
        <name>Doudna, JA</name>
        <uri>https://orcid.org/0000-0001-9161-999X</uri>
      </author>
    </item>
    <item>
      <title>Rapid two-step target capture ensures efficient CRISPR-Cas9-guided genome editing</title>
      <link>https://escholarship.org/uc/item/53j8s6ck</link>
      <description>RNA-guided CRISPR-Cas enzymes initiate programmable genome editing by recognizing a ∼20-base-pair DNA sequence next to a short protospacer-adjacent motif (PAM). To uncover the molecular determinants of high-efficiency editing, we conducted biochemical, biophysical, and cell-based assays on Streptococcus pyogenes Cas9 (SpyCas9) variants with wide-ranging genome-editing efficiencies that differ in PAM-binding specificity. Our results show that reduced PAM specificity causes persistent non-selective DNA binding and recurrent failures to engage the target sequence through stable guide RNA hybridization, leading to reduced genome-editing efficiency in cells. These findings reveal a fundamental trade-off between broad PAM recognition and genome-editing effectiveness. We propose that high-efficiency RNA-guided genome editing relies on an optimized two-step target capture process, where selective but low-affinity PAM binding precedes rapid DNA unwinding. This model provides a foundation...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/53j8s6ck</guid>
      <pubDate>Mon, 28 Jul 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Shi, Honglue</name>
      </author>
      <author>
        <name>Al-Sayyad, Noor</name>
      </author>
      <author>
        <name>Wasko, Kevin M</name>
      </author>
      <author>
        <name>Trinidad, Marena I</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Doherty, Erin E</name>
        <uri>https://orcid.org/0000-0002-1555-4124</uri>
      </author>
      <author>
        <name>Vohra, Kamakshi</name>
      </author>
      <author>
        <name>Boger, Ron S</name>
      </author>
      <author>
        <name>Colognori, David</name>
      </author>
      <author>
        <name>Cofsky, Joshua C</name>
      </author>
      <author>
        <name>Skopintsev, Petr</name>
      </author>
      <author>
        <name>Bryant, Zev</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Union through UNITY: Cosmology with 2000 SNe Using a Unified Bayesian Framework</title>
      <link>https://escholarship.org/uc/item/3bt1m132</link>
      <description>Type Ia supernovae (SNe Ia) were instrumental in establishing the acceleration of the Universe’s expansion. By virtue of their combination of distance reach, precision, and prevalence, they continue to provide key cosmological constraints, complementing other cosmological probes. Individual SN surveys cover only over about a factor of 2 in redshift, so compilations of multiple SN data sets are strongly beneficial. We assemble an up-to-date “Union” compilation of 2087 cosmologically useful SNe Ia from 24 data sets (“Union3”). We take care to put all SNe on the same distance scale and update the light-curve fitting with SALT3 to use the full rest-frame optical. Over the next few years, the number of cosmologically useful SNe Ia will increase by more than a factor of 10, and keeping systematic uncertainties subdominant will be more challenging than ever. We discuss the importance of treating outliers, selection effects, light-curve shape/color populations/standardization relations,...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/3bt1m132</guid>
      <pubDate>Tue, 15 Jul 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Rubin, David</name>
        <uri>https://orcid.org/0000-0001-5402-4647</uri>
      </author>
      <author>
        <name>Aldering, Greg</name>
      </author>
      <author>
        <name>Betoule, Marc</name>
      </author>
      <author>
        <name>Fruchter, Andy</name>
      </author>
      <author>
        <name>Huang, Xiaosheng</name>
      </author>
      <author>
        <name>Kim, Alex G</name>
        <uri>https://orcid.org/0000-0001-6315-8743</uri>
      </author>
      <author>
        <name>Lidman, Chris</name>
      </author>
      <author>
        <name>Linder, Eric</name>
      </author>
      <author>
        <name>Perlmutter, Saul</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Ruiz-Lapuente, Pilar</name>
      </author>
      <author>
        <name>Suzuki, Nao</name>
      </author>
    </item>
    <item>
      <title>Viral delivery of an RNA-guided genome editor for transgene-free germline editing in Arabidopsis</title>
      <link>https://escholarship.org/uc/item/7tg783zh</link>
      <description>Genome editing is transforming plant biology by enabling precise DNA modifications. However, delivery of editing systems into plants remains challenging, often requiring slow, genotype-specific methods such as tissue culture or transformation1. Plant viruses, which naturally infect and spread to most tissues, present a promising delivery system for editing reagents. However, many viruses have limited cargo capacities, restricting their ability to carry large CRISPR-Cas systems. Here we engineered tobacco rattle virus (TRV) to carry the compact RNA-guided TnpB enzyme ISYmu1 and its guide RNA. This innovation allowed transgene-free editing of Arabidopsis thaliana in a single step, with edits inherited in the subsequent generation. By overcoming traditional reagent delivery barriers, this approach offers a novel platform for genome editing, which can greatly accelerate plant biotechnology and basic research.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7tg783zh</guid>
      <pubDate>Mon, 23 Jun 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Weiss, Trevor</name>
      </author>
      <author>
        <name>Kamalu, Maris</name>
      </author>
      <author>
        <name>Shi, Honglue</name>
      </author>
      <author>
        <name>Li, Zheng</name>
      </author>
      <author>
        <name>Amerasekera, Jasmine</name>
      </author>
      <author>
        <name>Zhong, Zhenhui</name>
      </author>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Song, Michelle M</name>
      </author>
      <author>
        <name>Vohra, Kamakshi</name>
      </author>
      <author>
        <name>Wirnowski, Gabriel</name>
      </author>
      <author>
        <name>Chitkara, Sidharth</name>
      </author>
      <author>
        <name>Ambrose, Charlie</name>
      </author>
      <author>
        <name>Steinmetz, Noah</name>
      </author>
      <author>
        <name>Sridharan, Ananya</name>
      </author>
      <author>
        <name>Sahagun, Diego</name>
      </author>
      <author>
        <name>Banfield, Jillian F</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Jacobsen, Steven E</name>
      </author>
    </item>
    <item>
      <title>An Agnostic Approach to Building Empirical Type Ia Supernova Light Curves: Evidence for Intrinsic Chromatic Flux Variation Using Nearby Supernova Factory Data</title>
      <link>https://escholarship.org/uc/item/32x6g6ch</link>
      <description>We present a new empirical Type Ia supernova (SN Ia) model with three chromatic flux variation templates: one phase dependent and two phase independent. No underlying dust extinction model or patterns of intrinsic variability are assumed. Implemented with Stan and trained using spectrally binned Nearby Supernova Factory spectrophotometry, we examine this model's 2D, phase-independent flux variation space using two motivated basis representations. In both, the first phase-independent template captures variation that appears dust-like, while the second captures a combination of effectively intrinsic variability and second-order dust-like effects. We find that ≈13% of the modeled phase-independent flux variance is not dust-like. Previous empirical SN Ia models either assume an effective dust extinction recipe in their architecture, or only allow for a single mode of phase-independent variation. The presented results demonstrate such an approach may be insufficient, because it could...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/32x6g6ch</guid>
      <pubDate>Mon, 12 May 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Hand, Jared</name>
      </author>
      <author>
        <name>Kim, AG</name>
        <uri>https://orcid.org/0000-0001-6315-8743</uri>
      </author>
      <author>
        <name>Aldering, G</name>
      </author>
      <author>
        <name>Antilogus, P</name>
      </author>
      <author>
        <name>Aragon, C</name>
      </author>
      <author>
        <name>Bailey, S</name>
        <uri>https://orcid.org/0000-0003-4162-6619</uri>
      </author>
      <author>
        <name>Baltay, C</name>
      </author>
      <author>
        <name>Bongard, S</name>
      </author>
      <author>
        <name>Boone, K</name>
      </author>
      <author>
        <name>Buton, C</name>
      </author>
      <author>
        <name>Copin, Y</name>
      </author>
      <author>
        <name>Dixon, S</name>
      </author>
      <author>
        <name>Fouchez, D</name>
      </author>
      <author>
        <name>Gangler, E</name>
      </author>
      <author>
        <name>Gupta, R</name>
      </author>
      <author>
        <name>Hayden, B</name>
      </author>
      <author>
        <name>Hillebrandt, W</name>
      </author>
      <author>
        <name>Karmen, Mitchell</name>
      </author>
      <author>
        <name>Kowalski, M</name>
      </author>
      <author>
        <name>Küsters, D</name>
      </author>
      <author>
        <name>Léget, P-F</name>
      </author>
      <author>
        <name>Mondon, F</name>
      </author>
      <author>
        <name>Nordin, J</name>
      </author>
      <author>
        <name>Pain, R</name>
      </author>
      <author>
        <name>Pecontal, E</name>
      </author>
      <author>
        <name>Pereira, R</name>
      </author>
      <author>
        <name>Perlmutter, S</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Ponder, KA</name>
      </author>
      <author>
        <name>Rabinowitz, D</name>
      </author>
      <author>
        <name>Rigault, M</name>
      </author>
      <author>
        <name>Rubin, D</name>
        <uri>https://orcid.org/0000-0001-5402-4647</uri>
      </author>
      <author>
        <name>Runge, K</name>
      </author>
      <author>
        <name>Saunders, C</name>
      </author>
      <author>
        <name>Suzuki, N</name>
      </author>
      <author>
        <name>Tao, C</name>
      </author>
      <author>
        <name>Taubenberger, S</name>
      </author>
      <author>
        <name>Thomas, RC</name>
      </author>
      <author>
        <name>Vincenzi, M</name>
      </author>
    </item>
    <item>
      <title>Sequential membrane- and protein-bound organelles compartmentalize genomes during phage infection</title>
      <link>https://escholarship.org/uc/item/10h0243m</link>
      <description>Many eukaryotic viruses require membrane-bound compartments for replication, but no such organelles are known to be formed by prokaryotic viruses. Bacteriophages of the Chimalliviridae family sequester their genomes within a phage-generated organelle, the phage nucleus, which is enclosed by a lattice of the viral protein ChmA. We show that inhibiting phage nucleus formation arrests infections at an early stage in which the injected phage genome is enclosed within a membrane-bound early phage infection (EPI) vesicle. Early phage genes are expressed from the EPI vesicle, demonstrating its functionality as a prokaryotic, transcriptionally active, membrane-bound organelle. We also show that the phage nucleus is essential, with genome replication beginning after the injected DNA is transferred from the EPI vesicle to the phage nucleus. Our results show that Chimalliviridae require two sophisticated subcellular compartments of distinct compositions and functions that facilitate successive...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/10h0243m</guid>
      <pubDate>Mon, 12 May 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Armbruster, Emily G</name>
      </author>
      <author>
        <name>Rani, Phoolwanti</name>
      </author>
      <author>
        <name>Lee, Jina</name>
      </author>
      <author>
        <name>Klusch, Niklas</name>
      </author>
      <author>
        <name>Hutchings, Joshua</name>
      </author>
      <author>
        <name>Hoffman, Lizbeth Y</name>
      </author>
      <author>
        <name>Buschkaemper, Hannah</name>
      </author>
      <author>
        <name>Enustun, Eray</name>
      </author>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Inlow, Koe</name>
        <uri>https://orcid.org/0000-0002-2535-9613</uri>
      </author>
      <author>
        <name>VanderWal, Arica R</name>
      </author>
      <author>
        <name>Hoffman, Madelynn Y</name>
      </author>
      <author>
        <name>Daksh, Daksh</name>
      </author>
      <author>
        <name>Aindow, Ann</name>
      </author>
      <author>
        <name>Deep, Amar</name>
      </author>
      <author>
        <name>Rodriguez, Zaida K</name>
      </author>
      <author>
        <name>Morgan, Chase J</name>
      </author>
      <author>
        <name>Ghassemian, Majid</name>
        <uri>https://orcid.org/0000-0003-1026-5152</uri>
      </author>
      <author>
        <name>Laughlin, Thomas G</name>
      </author>
      <author>
        <name>Charles, Emeric</name>
      </author>
      <author>
        <name>Cress, Brady F</name>
        <uri>https://orcid.org/0000-0002-2948-2846</uri>
      </author>
      <author>
        <name>Savage, David F</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Pogliano, Kit</name>
      </author>
      <author>
        <name>Corbett, Kevin D</name>
        <uri>https://orcid.org/0000-0001-5854-2388</uri>
      </author>
      <author>
        <name>Villa, Elizabeth</name>
        <uri>https://orcid.org/0000-0003-4677-9809</uri>
      </author>
      <author>
        <name>Pogliano, Joe</name>
      </author>
    </item>
    <item>
      <title>Dynamic basis of supercoiling-dependent DNA interrogation by Cas12a via R-loop intermediates</title>
      <link>https://escholarship.org/uc/item/3x49q1fn</link>
      <description>The sequence specificity and programmability of DNA binding and cleavage have enabled widespread applications of CRISPR-Cas12a in genetic engineering. As an RNA-guided CRISPR endonuclease, Cas12a engages a 20-base pair (bp) DNA segment by forming a three-stranded R-loop structure in which the guide RNA hybridizes to the DNA target. Here we use single-molecule torque spectroscopy to investigate the dynamics and mechanics of R-loop formation of two widely used Cas12a orthologs at base-pair resolution. We directly observe kinetic intermediates corresponding to a ~5 bp initial RNA-DNA hybridization and a ~17 bp intermediate preceding R-loop completion, followed by transient DNA unwinding that extends beyond the 20 bp R-loop. The complex multistate landscape of R-loop formation is ortholog-dependent and shaped by target sequence, mismatches, and DNA supercoiling. A four-state kinetic model captures essential features of Cas12a R-loop dynamics and provides a biophysical framework for...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/3x49q1fn</guid>
      <pubDate>Fri, 4 Apr 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Aris, Kevin DP</name>
      </author>
      <author>
        <name>Cofsky, Joshua C</name>
      </author>
      <author>
        <name>Shi, Honglue</name>
      </author>
      <author>
        <name>Al-Sayyad, Noor</name>
      </author>
      <author>
        <name>Ivanov, Ivan E</name>
      </author>
      <author>
        <name>Balaji, Ashwin</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Bryant, Zev</name>
      </author>
    </item>
    <item>
      <title>CRISPRi-ART enables functional genomics of diverse bacteriophages using RNA-binding dCas13d</title>
      <link>https://escholarship.org/uc/item/8h51343z</link>
      <description>Bacteriophages constitute one of the largest reservoirs of genes of unknown function in the biosphere. Even in well-characterized phages, the functions of most genes remain unknown. Experimental approaches to study phage gene fitness and function at genome scale are lacking, partly because phages subvert many modern functional genomics tools. Here we leverage RNA-targeting dCas13d to selectively interfere with protein translation and to measure phage gene fitness at a transcriptome-wide scale. We find CRISPR Interference through Antisense RNA-Targeting (CRISPRi-ART) to be effective across phage phylogeny, from model ssRNA, ssDNA and dsDNA phages to nucleus-forming jumbo phages. Using CRISPRi-ART, we determine a conserved role of diverse rII homologues in subverting phage Lambda RexAB-mediated immunity to superinfection and identify genes critical for phage fitness. CRISPRi-ART establishes a broad-spectrum phage functional genomics platform, revealing more than 90 previously unknown...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/8h51343z</guid>
      <pubDate>Mon, 31 Mar 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Al-Shimary, Muntathar J</name>
      </author>
      <author>
        <name>Patel, Jaymin R</name>
      </author>
      <author>
        <name>Armbruster, Emily G</name>
      </author>
      <author>
        <name>Colognori, David</name>
      </author>
      <author>
        <name>Charles, Emeric J</name>
      </author>
      <author>
        <name>Miller, Kate V</name>
      </author>
      <author>
        <name>Lahiri, Arushi</name>
      </author>
      <author>
        <name>Cui, Michael L</name>
      </author>
      <author>
        <name>Oromí-Bosch, Agnès</name>
      </author>
      <author>
        <name>Voelker, Angela</name>
      </author>
      <author>
        <name>Trinidad, Marena</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Lee, Jina</name>
      </author>
      <author>
        <name>Beurnier, Sebastien</name>
      </author>
      <author>
        <name>Boger, Ron</name>
      </author>
      <author>
        <name>Nomburg, Jason</name>
      </author>
      <author>
        <name>Barrangou, Rodolphe</name>
      </author>
      <author>
        <name>Mutalik, Vivek K</name>
        <uri>https://orcid.org/0000-0001-7934-0400</uri>
      </author>
      <author>
        <name>Schoeniger, Joseph S</name>
      </author>
      <author>
        <name>Pogliano, Joseph A</name>
      </author>
      <author>
        <name>Savage, David F</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Cress, Brady F</name>
        <uri>https://orcid.org/0000-0002-2948-2846</uri>
      </author>
    </item>
    <item>
      <title>Author Correction: Birth of protein folds and functions in the virome</title>
      <link>https://escholarship.org/uc/item/3pf7h36z</link>
      <description>Correction to: Naturehttps://doi.org/10.1038/s41586-024-07809-y Published online 26 August 2024 In the version of the article initially published, in the “Similarity to non-viral proteins” section, the sentence originally reading “…the AlphaFold database, which contains more than 300,000 proteins from 21 organisms” has now been corrected to “the AlphaFold database, which contains more than 500,000 proteins from 48 organisms”. Additionally, in the Methods, in the “Structural alignments against the AlphaFold databases” section, the text “(downloadable via the Foldseek command ‘foldseek databases Alphafold/Proteome afdb tmp’)” has now been added. These corrections have been made to the HTML and PDF versions of the article.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/3pf7h36z</guid>
      <pubDate>Mon, 31 Mar 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Nomburg, Jason</name>
      </author>
      <author>
        <name>Doherty, Erin E</name>
        <uri>https://orcid.org/0000-0002-1555-4124</uri>
      </author>
      <author>
        <name>Price, Nathan</name>
      </author>
      <author>
        <name>Bellieny-Rabelo, Daniel</name>
      </author>
      <author>
        <name>Zhu, Yong K</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Packaged delivery of CRISPR–Cas9 ribonucleoproteins accelerates genome editing</title>
      <link>https://escholarship.org/uc/item/31t3w915</link>
      <description>Effective genome editing requires a sufficient dose of CRISPR-Cas9 ribonucleoproteins (RNPs) to enter the target cell while minimizing immune responses, off-target editing, and cytotoxicity. Clinical use of Cas9 RNPs currently entails electroporation into cells ex vivo, but no systematic comparison of this method to packaged RNP delivery has been made. Here we compared two delivery strategies, electroporation and enveloped delivery vehicles (EDVs), to investigate the Cas9 dosage requirements for genome editing. Using fluorescence correlation spectroscopy, we determined that&amp;nbsp;&amp;gt;1300 Cas9 RNPs per nucleus are typically required for productive genome editing. EDV-mediated editing was&amp;nbsp;&amp;gt;30-fold more efficient than electroporation, and editing occurs at least 2-fold faster for EDV delivery at comparable total Cas9 RNP doses. We hypothesize that differences in efficacy between these methods result in part from the increased duration of RNP nuclear residence resulting from...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/31t3w915</guid>
      <pubDate>Mon, 31 Mar 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Karp, Hannah</name>
      </author>
      <author>
        <name>Zoltek, Madeline</name>
      </author>
      <author>
        <name>Wasko, Kevin</name>
      </author>
      <author>
        <name>Vazquez, Angel Luis</name>
      </author>
      <author>
        <name>Brim, Jinna</name>
      </author>
      <author>
        <name>Ngo, Wayne</name>
      </author>
      <author>
        <name>Schepartz, Alanna</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>CRISPR-Cas12a bends DNA to destabilize base pairs during target interrogation</title>
      <link>https://escholarship.org/uc/item/7bn1f54g</link>
      <description>RNA-guided endonucleases are involved in processes ranging from adaptive immunity to site-specific transposition and have revolutionized genome editing. CRISPR-Cas9, -Cas12 and related proteins use guide RNAs to recognize ∼20-nucleotide target sites within genomic DNA by mechanisms that are not yet fully understood. We used structural and biochemical methods to assess early steps in DNA recognition by Cas12a protein-guide RNA complexes. We show here that Cas12a initiates DNA target recognition by bending DNA to induce transient nucleotide flipping that exposes nucleobases for DNA-RNA hybridization. Cryo-EM structural analysis of a trapped Cas12a-RNA-DNA surveillance complex and fluorescence-based conformational probing show that Cas12a-induced DNA helix destabilization enables target discovery and engagement. This mechanism of initial DNA interrogation resembles that of CRISPR-Cas9 despite distinct evolutionary origins and different RNA-DNA hybridization directionality of these...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7bn1f54g</guid>
      <pubDate>Fri, 7 Feb 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Soczek, Katarzyna M</name>
      </author>
      <author>
        <name>Cofsky, Joshua C</name>
      </author>
      <author>
        <name>Tuck, Owen T</name>
      </author>
      <author>
        <name>Shi, Honglue</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Mechanism-guided engineering of a minimal biological particle for genome editing</title>
      <link>https://escholarship.org/uc/item/8538g0dt</link>
      <description>The widespread application of genome editing to treat and cure disease requires the delivery of genome editors into the nucleus of target cells. Enveloped delivery vehicles (EDVs) are engineered virally derived particles capable of packaging and delivering CRISPR-Cas9 ribonucleoproteins (RNPs). However, the presence of lentiviral genome encapsulation and replication proteins in EDVs has obscured the underlying delivery mechanism and precluded particle optimization. Here, we show that Cas9 RNP nuclear delivery is independent of the native lentiviral capsid structure. Instead, EDV-mediated genome editing activity corresponds directly to the number of nuclear localization sequences on the Cas9 enzyme. EDV structural analysis using cryo-electron tomography and small molecule inhibitors guided the removal of ~80% of viral residues, creating a minimal EDV (miniEDV) that retains full RNP delivery capability. MiniEDVs are 25% smaller yet package equivalent amounts of Cas9 RNPs relative...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/8538g0dt</guid>
      <pubDate>Fri, 17 Jan 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Ngo, Wayne</name>
      </author>
      <author>
        <name>Peukes, Julia</name>
      </author>
      <author>
        <name>Baldwin, Alisha</name>
      </author>
      <author>
        <name>Xue, Zhiwei Wayne</name>
      </author>
      <author>
        <name>Hwang, Sidney</name>
      </author>
      <author>
        <name>Stickels, Robert R</name>
      </author>
      <author>
        <name>Lin, Zhi</name>
      </author>
      <author>
        <name>Satpathy, Ansuman T</name>
      </author>
      <author>
        <name>Wells, James A</name>
      </author>
      <author>
        <name>Schekman, Randy</name>
      </author>
      <author>
        <name>Nogales, Eva</name>
        <uri>https://orcid.org/0000-0001-9816-3681</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Functional protein mining with conformal guarantees</title>
      <link>https://escholarship.org/uc/item/3br9k1dr</link>
      <description>Molecular structure prediction and homology detection offer promising paths to discovering protein function and evolutionary relationships. However, current approaches lack statistical reliability assurances, limiting their practical utility for selecting proteins for further experimental and in-silico characterization. To address this challenge, we introduce a statistically principled approach to protein search leveraging principles from conformal prediction, offering a framework that ensures statistical guarantees with user-specified risk and provides calibrated probabilities (rather than raw ML scores) for any protein search model. Our method (1) lets users select many biologically-relevant loss metrics (i.e. false discovery rate) and assigns reliable functional probabilities for annotating genes of unknown function; (2) achieves state-of-the-art performance in enzyme classification without training new models; and (3) robustly and rapidly pre-filters proteins for computationally...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/3br9k1dr</guid>
      <pubDate>Fri, 10 Jan 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Boger, Ron S</name>
      </author>
      <author>
        <name>Chithrananda, Seyone</name>
      </author>
      <author>
        <name>Angelopoulos, Anastasios N</name>
      </author>
      <author>
        <name>Yoon, Peter H</name>
      </author>
      <author>
        <name>Jordan, Michael I</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Genome integrity sensing by the broad-spectrum Hachiman antiphage defense complex</title>
      <link>https://escholarship.org/uc/item/178372n6</link>
      <description>Hachiman is a broad-spectrum antiphage defense system of unknown function. We show here that Hachiman is a heterodimeric nuclease-helicase complex, HamAB. HamA, previously a protein of unknown function, is the effector nuclease. HamB is the sensor helicase. HamB constrains HamA activity during surveillance of intact double-stranded DNA (dsDNA). When the HamAB complex detects DNA damage, HamB helicase activity activates HamA, unleashing nuclease activity. Hachiman activation degrades all DNA in the cell, creating "phantom" cells devoid of both phage and host DNA. We demonstrate Hachiman activation in the absence of phage by treatment with DNA-damaging agents, suggesting that Hachiman responds to aberrant DNA states. Phylogenetic similarities between the Hachiman helicase and enzymes from eukaryotes and archaea suggest deep functional symmetries with other important helicases across domains of life.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/178372n6</guid>
      <pubDate>Wed, 8 Jan 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Tuck, Owen T</name>
      </author>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Armbruster, Emily G</name>
      </author>
      <author>
        <name>Lahiri, Arushi</name>
      </author>
      <author>
        <name>Hu, Jason J</name>
      </author>
      <author>
        <name>Zhou, Julia</name>
      </author>
      <author>
        <name>Pogliano, Joe</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Lung and liver editing by lipid nanoparticle delivery of a stable CRISPR–Cas9 ribonucleoprotein</title>
      <link>https://escholarship.org/uc/item/7mv642q6</link>
      <description>Lipid nanoparticle (LNP) delivery of clustered regularly interspaced short palindromic repeat (CRISPR) ribonucleoproteins (RNPs) could enable high-efficiency, low-toxicity and scalable in vivo genome editing if efficacious RNP–LNP complexes can be reliably produced. Here we engineer a thermostable Cas9 from Geobacillus stearothermophilus (GeoCas9) to generate iGeoCas9 variants capable of &amp;gt;100× more genome editing of cells and organs compared with the native GeoCas9 enzyme. Furthermore, iGeoCas9 RNP–LNP complexes edit a variety of cell types and induce homology-directed repair in cells receiving codelivered single-stranded DNA templates. Using tissue-selective LNP formulations, we observe genome-editing levels of 16‒37% in the liver and lungs of reporter mice that receive single intravenous injections of iGeoCas9 RNP–LNPs. In addition, iGeoCas9 RNPs complexed to biodegradable LNPs edit the disease-causing SFTPC gene in lung tissue with 19% average efficiency, representing a...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7mv642q6</guid>
      <pubDate>Thu, 2 Jan 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Chen, Kai</name>
      </author>
      <author>
        <name>Han, Hesong</name>
      </author>
      <author>
        <name>Zhao, Sheng</name>
      </author>
      <author>
        <name>Xu, Bryant</name>
      </author>
      <author>
        <name>Yin, Boyan</name>
        <uri>https://orcid.org/0000-0002-9023-6265</uri>
      </author>
      <author>
        <name>Lawanprasert, Atip</name>
      </author>
      <author>
        <name>Trinidad, Marena</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Burgstone, Benjamin W</name>
      </author>
      <author>
        <name>Murthy, Niren</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Structural basis of TRPV1 modulation by endogenous bioactive lipids</title>
      <link>https://escholarship.org/uc/item/5cs873sp</link>
      <description>TRP ion channels are modulated by phosphoinositide lipids, but the underlying structural mechanisms remain unclear. The capsaicin- and heat-activated receptor, TRPV1, has served as a model for deciphering lipid modulation, which is relevant to understanding how pro-algesic agents enhance channel activity in the setting of inflammatory pain. Identification of a pocket within the TRPV1 transmembrane core has provided initial clues as to how phosphoinositide lipids bind to and regulate the channel. Here we show that this regulatory pocket in rat TRPV1 can accommodate diverse lipid species, including the inflammatory lipid lysophosphatidic acid, whose actions are determined by their specific modes of binding. Furthermore, we show that an empty-pocket channel lacking an endogenous phosphoinositide lipid assumes an agonist-like state, even at low temperature, substantiating the concept that phosphoinositide lipids serve as negative TRPV1 modulators whose ejection from the binding pocket...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5cs873sp</guid>
      <pubDate>Thu, 2 Jan 2025 00:00:00 +0000</pubDate>
      <author>
        <name>Arnold, William R</name>
      </author>
      <author>
        <name>Mancino, Adamo</name>
      </author>
      <author>
        <name>Moss, Frank R</name>
      </author>
      <author>
        <name>Frost, Adam</name>
        <uri>https://orcid.org/0000-0003-2231-2577</uri>
      </author>
      <author>
        <name>Julius, David</name>
        <uri>https://orcid.org/0000-0002-6365-4867</uri>
      </author>
      <author>
        <name>Cheng, Yifan</name>
        <uri>https://orcid.org/0000-0001-9535-0369</uri>
      </author>
    </item>
    <item>
      <title>Previous exposure to Spike-providing parental strains confers neutralizing immunity to XBB lineage and other SARS-CoV-2 recombinants in the context of vaccination</title>
      <link>https://escholarship.org/uc/item/5d78j63x</link>
      <description>The emergence of SARS-CoV-2 recombinants is of particular concern as they can result in a sudden increase in immune evasion due to antigenic shift. Recent recombinants XBB and XBB.1.5 have higher transmissibility than previous recombinants such as "Deltacron." We hypothesized that immunity to a SARS-CoV-2 recombinant depends on prior exposure to its parental strains. To test this hypothesis, we examined whether Delta or Omicron (BA.1 or BA.2) immunity conferred through infection, vaccination, or breakthrough infection could neutralize Deltacron and XBB/XBB.1.5 recombinants. We found that Delta, BA.1, or BA.2 breakthrough infections provided better immune protection against Deltacron and its parental strains than did the vaccine booster. None of the sera were effective at neutralizing the XBB lineage or its parent BA.2.75.2, except for the sera from the BA.2 breakthrough group. These results support our hypothesis. In turn, our findings underscore the importance of multivalent...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5d78j63x</guid>
      <pubDate>Thu, 19 Dec 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Suryawanshi, Rahul K</name>
      </author>
      <author>
        <name>Taha, Taha Y</name>
      </author>
      <author>
        <name>McCavitt-Malvido, Maria</name>
      </author>
      <author>
        <name>Silva, Ines</name>
      </author>
      <author>
        <name>Khalid, Mir M</name>
      </author>
      <author>
        <name>Syed, Abdullah M</name>
      </author>
      <author>
        <name>Chen, Irene P</name>
      </author>
      <author>
        <name>Saldhi, Prachi</name>
      </author>
      <author>
        <name>Sreekumar, Bharath</name>
      </author>
      <author>
        <name>Montano, Mauricio</name>
      </author>
      <author>
        <name>Foresythe, Kafaya</name>
      </author>
      <author>
        <name>Tabata, Takako</name>
      </author>
      <author>
        <name>Kumar, G Renuka</name>
      </author>
      <author>
        <name>Sotomayor-Gonzalez, Alicia</name>
      </author>
      <author>
        <name>Servellita, Venice</name>
      </author>
      <author>
        <name>Gliwa, Amelia</name>
      </author>
      <author>
        <name>Nguyen, Jenny</name>
      </author>
      <author>
        <name>Kojima, Noah</name>
        <uri>https://orcid.org/0000-0002-3667-9719</uri>
      </author>
      <author>
        <name>Arellanor, Teresa</name>
      </author>
      <author>
        <name>Bussanich, Aallyah</name>
      </author>
      <author>
        <name>Hess, Victoria</name>
      </author>
      <author>
        <name>Shacreaw, Maria</name>
      </author>
      <author>
        <name>Lopez, Lauren</name>
      </author>
      <author>
        <name>Brobeck, Matthew</name>
      </author>
      <author>
        <name>Turner, Fred</name>
      </author>
      <author>
        <name>Wang, Yuzhu</name>
      </author>
      <author>
        <name>Ghazarian, Sydney</name>
      </author>
      <author>
        <name>Davis, Gregg</name>
      </author>
      <author>
        <name>Rodriguez, Diviana</name>
      </author>
      <author>
        <name>Doudna, Jennifer</name>
      </author>
      <author>
        <name>Spraggon, Lee</name>
      </author>
      <author>
        <name>Chiu, Charles Y</name>
        <uri>https://orcid.org/0000-0003-2915-2094</uri>
      </author>
      <author>
        <name>Ott, Melanie</name>
      </author>
    </item>
    <item>
      <title>Evidence of environmental dependencies of Type Ia supernovae from the Nearby Supernova Factory indicated by local Hα⋆</title>
      <link>https://escholarship.org/uc/item/8mc9d910</link>
      <description>Context. Use of Type Ia supernovae (SNe Ia) as distance indicators has proven to be a powerful technique for measuring the dark-energy equation of state. However, recent studies have highlighted potential biases correlated with the global properties of their host galaxies, large enough to induce systematic errors into such cosmological measurements if not properly treated. Aims. We study the host galaxy regions in close proximity to SNe Ia in order to analyze relations between the properties of SN Ia events and environments where their progenitors most likely formed. In this paper we focus on local Hα emission as an indicator of young progenitor environments. Methods. The Nearby Supernova Factory has obtained flux-calibrated spectral timeseries for SNe Ia using integral field spectroscopy. These observations enabled the simultaneous measurement of the SN and its immediate vicinity. For 89 SNe Ia we measured or set limits on Hα emission, used as a tracer of ongoing star formation,...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/8mc9d910</guid>
      <pubDate>Wed, 18 Dec 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Rigault, M</name>
      </author>
      <author>
        <name>Copin, Y</name>
      </author>
      <author>
        <name>Aldering, G</name>
      </author>
      <author>
        <name>Antilogus, P</name>
      </author>
      <author>
        <name>Aragon, C</name>
      </author>
      <author>
        <name>Bailey, S</name>
        <uri>https://orcid.org/0000-0003-4162-6619</uri>
      </author>
      <author>
        <name>Baltay, C</name>
      </author>
      <author>
        <name>Bongard, S</name>
      </author>
      <author>
        <name>Buton, C</name>
      </author>
      <author>
        <name>Canto, A</name>
      </author>
      <author>
        <name>Cellier-Holzem, F</name>
      </author>
      <author>
        <name>Childress, M</name>
      </author>
      <author>
        <name>Chotard, N</name>
      </author>
      <author>
        <name>Fakhouri, HK</name>
      </author>
      <author>
        <name>Feindt, U</name>
      </author>
      <author>
        <name>Fleury, M</name>
      </author>
      <author>
        <name>Gangler, E</name>
      </author>
      <author>
        <name>Greskovic, P</name>
      </author>
      <author>
        <name>Guy, J</name>
        <uri>https://orcid.org/0000-0001-9822-6793</uri>
      </author>
      <author>
        <name>Kim, AG</name>
        <uri>https://orcid.org/0000-0001-6315-8743</uri>
      </author>
      <author>
        <name>Kowalski, M</name>
      </author>
      <author>
        <name>Lombardo, S</name>
      </author>
      <author>
        <name>Nordin, J</name>
      </author>
      <author>
        <name>Nugent, P</name>
        <uri>https://orcid.org/0000-0002-3389-0586</uri>
      </author>
      <author>
        <name>Pain, R</name>
      </author>
      <author>
        <name>Pécontal, E</name>
      </author>
      <author>
        <name>Pereira, R</name>
      </author>
      <author>
        <name>Perlmutter, S</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Rabinowitz, D</name>
      </author>
      <author>
        <name>Runge, K</name>
      </author>
      <author>
        <name>Saunders, C</name>
      </author>
      <author>
        <name>Scalzo, R</name>
      </author>
      <author>
        <name>Smadja, G</name>
      </author>
      <author>
        <name>Tao, C</name>
      </author>
      <author>
        <name>Thomas, RC</name>
      </author>
      <author>
        <name>Weaver, BA</name>
      </author>
    </item>
    <item>
      <title>Measuring cosmic bulk flows with Type Ia supernovae from the Nearby Supernova Factory</title>
      <link>https://escholarship.org/uc/item/1tp0p4d7</link>
      <description>Context. Our Local Group of galaxies appears to be moving relative to the cosmic microwave background with the source of the peculiar motion still uncertain. While in the past this has been studied mostly using galaxies as distance indicators, the weight of Type Ia supernovae (SNe Ia) has increased recently with the continuously improving statistics of available low-redshift supernovae. Aims. We measured the bulk flow in the nearby universe (0.015 &amp;lt; z &amp;lt; 0.1) using 117 SNe Ia observed by the Nearby Supernova Factory, as well as the Union2 compilation of SN Ia data already in the literature. Methods. The bulk flow velocity was determined from SN data binned in redshift shells by including a coherent motion (dipole) in a cosmological fit. Additionally, a method of spatially smoothing the Hubble residuals was used to verify the results of the dipole fit. To constrain the location and mass of a potential mass concentration (e.g., the Shapley supercluster) responsible for the...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/1tp0p4d7</guid>
      <pubDate>Wed, 18 Dec 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Feindt, U</name>
      </author>
      <author>
        <name>Kerschhaggl, M</name>
      </author>
      <author>
        <name>Kowalski, M</name>
      </author>
      <author>
        <name>Aldering, G</name>
      </author>
      <author>
        <name>Antilogus, P</name>
      </author>
      <author>
        <name>Aragon, C</name>
      </author>
      <author>
        <name>Bailey, S</name>
        <uri>https://orcid.org/0000-0003-4162-6619</uri>
      </author>
      <author>
        <name>Baltay, C</name>
      </author>
      <author>
        <name>Bongard, S</name>
      </author>
      <author>
        <name>Buton, C</name>
      </author>
      <author>
        <name>Canto, A</name>
      </author>
      <author>
        <name>Cellier-Holzem, F</name>
      </author>
      <author>
        <name>Childress, M</name>
      </author>
      <author>
        <name>Chotard, N</name>
      </author>
      <author>
        <name>Copin, Y</name>
      </author>
      <author>
        <name>Fakhouri, HK</name>
      </author>
      <author>
        <name>Gangler, E</name>
      </author>
      <author>
        <name>Guy, J</name>
        <uri>https://orcid.org/0000-0001-9822-6793</uri>
      </author>
      <author>
        <name>Kim, A</name>
        <uri>https://orcid.org/0000-0001-6315-8743</uri>
      </author>
      <author>
        <name>Nugent, P</name>
        <uri>https://orcid.org/0000-0002-3389-0586</uri>
      </author>
      <author>
        <name>Nordin, J</name>
      </author>
      <author>
        <name>Paech, K</name>
      </author>
      <author>
        <name>Pain, R</name>
      </author>
      <author>
        <name>Pecontal, E</name>
      </author>
      <author>
        <name>Pereira, R</name>
      </author>
      <author>
        <name>Perlmutter, S</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Rabinowitz, D</name>
      </author>
      <author>
        <name>Rigault, M</name>
      </author>
      <author>
        <name>Runge, K</name>
      </author>
      <author>
        <name>Saunders, C</name>
      </author>
      <author>
        <name>Scalzo, R</name>
      </author>
      <author>
        <name>Smadja, G</name>
      </author>
      <author>
        <name>Tao, C</name>
      </author>
      <author>
        <name>Thomas, RC</name>
      </author>
      <author>
        <name>Weaver, BA</name>
      </author>
      <author>
        <name>Wu, C</name>
      </author>
    </item>
    <item>
      <title>SARS-CoV-2 evolution balances conflicting roles of N protein phosphorylation</title>
      <link>https://escholarship.org/uc/item/62t2562x</link>
      <description>All lineages of SARS-CoV-2, the coronavirus responsible for the COVID-19 pandemic, contain mutations between amino acids 199 and 205 in the nucleocapsid (N) protein that are associated with increased infectivity. The effects of these mutations have been difficult to determine because N protein contributes to both viral replication and viral particle assembly during infection. Here, we used single-cycle infection and virus-like particle assays to show that N protein phosphorylation has opposing effects on viral assembly and genome replication. Ancestral SARS-CoV-2 N protein is densely phosphorylated, leading to higher levels of genome replication but 10-fold lower particle assembly compared to evolved variants with low N protein phosphorylation, such as Delta (N:R203M), Iota (N:S202R), and B.1.2 (N:P199L). A new open reading frame encoding a truncated N protein called N*, which occurs in the B.1.1 lineage and subsequent lineages of the Alpha, Gamma, and Omicron variants, supports...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/62t2562x</guid>
      <pubDate>Thu, 12 Dec 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Syed, Abdullah M</name>
      </author>
      <author>
        <name>Ciling, Alison</name>
      </author>
      <author>
        <name>Chen, Irene P</name>
      </author>
      <author>
        <name>Carlson, Christopher R</name>
      </author>
      <author>
        <name>Adly, Armin N</name>
      </author>
      <author>
        <name>Martin, Hannah S</name>
      </author>
      <author>
        <name>Taha, Taha Y</name>
      </author>
      <author>
        <name>Khalid, Mir M</name>
      </author>
      <author>
        <name>Price, Nathan</name>
      </author>
      <author>
        <name>Bouhaddou, Mehdi</name>
        <uri>https://orcid.org/0000-0002-9526-1427</uri>
      </author>
      <author>
        <name>Ummadi, Manisha R</name>
      </author>
      <author>
        <name>Moen, Jack M</name>
      </author>
      <author>
        <name>Krogan, Nevan J</name>
      </author>
      <author>
        <name>Morgan, David O</name>
      </author>
      <author>
        <name>Ott, Melanie</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>RNA language models predict mutations that improve RNA function</title>
      <link>https://escholarship.org/uc/item/4qv857ns</link>
      <description>Structured RNA lies at the heart of many central biological processes, from gene expression to catalysis. RNA structure prediction is not yet possible due to a lack of high-quality reference data associated with organismal phenotypes that could inform RNA function. We present GARNET (Gtdb Acquired RNa with Environmental Temperatures), a new database for RNA structural and functional analysis anchored to the Genome Taxonomy Database (GTDB). GARNET links RNA sequences to experimental and predicted optimal growth temperatures of GTDB reference organisms. Using GARNET, we develop sequence- and structure-aware RNA generative models, with overlapping triplet tokenization providing optimal encoding for a GPT-like model. Leveraging hyperthermophilic RNAs in GARNET and these RNA generative models, we identify mutations in ribosomal RNA that confer increased thermostability to the Escherichia coli ribosome. The GTDB-derived data and deep learning models presented here provide a foundation...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/4qv857ns</guid>
      <pubDate>Thu, 12 Dec 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Shulgina, Yekaterina</name>
      </author>
      <author>
        <name>Trinidad, Marena I</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Langeberg, Conner J</name>
        <uri>https://orcid.org/0000-0002-5609-3758</uri>
      </author>
      <author>
        <name>Nisonoff, Hunter</name>
      </author>
      <author>
        <name>Chithrananda, Seyone</name>
      </author>
      <author>
        <name>Skopintsev, Petr</name>
      </author>
      <author>
        <name>Nissley, Amos J</name>
      </author>
      <author>
        <name>Patel, Jaymin</name>
      </author>
      <author>
        <name>Boger, Ron S</name>
      </author>
      <author>
        <name>Shi, Honglue</name>
      </author>
      <author>
        <name>Yoon, Peter H</name>
      </author>
      <author>
        <name>Doherty, Erin E</name>
        <uri>https://orcid.org/0000-0002-1555-4124</uri>
      </author>
      <author>
        <name>Pande, Tara</name>
        <uri>https://orcid.org/0000-0001-9440-4492</uri>
      </author>
      <author>
        <name>Iyer, Aditya M</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Cate, Jamie HD</name>
      </author>
    </item>
    <item>
      <title>Mechanistic basis of atypical TERT promoter mutations</title>
      <link>https://escholarship.org/uc/item/15p1s5zg</link>
      <description>Non-coding mutations in the TERT promoter (TERTp), typically at one of two bases −124 and −146 bp upstream of the start codon, are among the most prevalent driver mutations in human cancer. Several additional recurrent TERTp mutations have been reported but their functions and origins remain largely unexplained. Here, we show that atypical TERTp mutations arise secondary to canonical TERTp mutations in a two-step process. Canonical TERTp mutations create de novo binding sites for ETS family transcription factors that induce favourable conditions for DNA damage formation by UV light, thus creating a hotspot effect but only after a first mutational hit. In agreement, atypical TERTp mutations co-occur with canonical driver mutations in large cancer cohorts and arise subclonally specifically on the TERTp driver mutant chromosome homolog of melanoma cells treated with UV light in vitro. Our study gives an in-depth view of TERTp mutations in cancer and provides a mechanistic explanation...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/15p1s5zg</guid>
      <pubDate>Thu, 28 Nov 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Elliott, Kerryn</name>
      </author>
      <author>
        <name>Singh, Vinod Kumar</name>
      </author>
      <author>
        <name>Bäckerholm, Alan</name>
      </author>
      <author>
        <name>Ögren, Linnea</name>
      </author>
      <author>
        <name>Lindberg, Markus</name>
      </author>
      <author>
        <name>Soczek, Katarzyna M</name>
      </author>
      <author>
        <name>Hoberg, Emily</name>
      </author>
      <author>
        <name>Luijts, Tom</name>
      </author>
      <author>
        <name>Van den Eynden, Jimmy</name>
      </author>
      <author>
        <name>Falkenberg, Maria</name>
      </author>
      <author>
        <name>Doudna, Jennifer</name>
      </author>
      <author>
        <name>Ståhlberg, Anders</name>
      </author>
      <author>
        <name>Larsson, Erik</name>
      </author>
    </item>
    <item>
      <title>SARS-CoV-2 variants evolve convergent strategies to remodel the host response</title>
      <link>https://escholarship.org/uc/item/6sg1f857</link>
      <description>SARS-CoV-2 variants of concern (VOCs) emerged during the COVID-19 pandemic. Here, we used unbiased systems approaches to study the host-selective forces driving VOC evolution. We discovered that VOCs evolved convergent strategies to remodel the host by modulating viral RNA and protein levels, altering viral and host protein phosphorylation, and rewiring virus-host protein-protein interactions. Integrative computational analyses revealed that although Alpha, Beta, Gamma, and Delta ultimately converged to suppress interferon-stimulated genes (ISGs), Omicron BA.1 did not. ISG suppression correlated with the expression of viral innate immune antagonist proteins, including Orf6, N, and Orf9b, which we mapped to specific mutations. Later Omicron subvariants BA.4 and BA.5 more potently suppressed innate immunity than early subvariant BA.1, which correlated with Orf6 levels, although muted in BA.4 by a mutation that disrupts the Orf6-nuclear pore interaction. Our findings suggest that...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/6sg1f857</guid>
      <pubDate>Wed, 13 Nov 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Bouhaddou, Mehdi</name>
        <uri>https://orcid.org/0000-0002-9526-1427</uri>
      </author>
      <author>
        <name>Reuschl, Ann-Kathrin</name>
      </author>
      <author>
        <name>Polacco, Benjamin J</name>
      </author>
      <author>
        <name>Thorne, Lucy G</name>
      </author>
      <author>
        <name>Ummadi, Manisha R</name>
      </author>
      <author>
        <name>Ye, Chengjin</name>
      </author>
      <author>
        <name>Rosales, Romel</name>
      </author>
      <author>
        <name>Pelin, Adrian</name>
      </author>
      <author>
        <name>Batra, Jyoti</name>
      </author>
      <author>
        <name>Jang, Gwendolyn M</name>
      </author>
      <author>
        <name>Xu, Jiewei</name>
      </author>
      <author>
        <name>Moen, Jack M</name>
      </author>
      <author>
        <name>Richards, Alicia L</name>
      </author>
      <author>
        <name>Zhou, Yuan</name>
      </author>
      <author>
        <name>Harjai, Bhavya</name>
      </author>
      <author>
        <name>Stevenson, Erica</name>
      </author>
      <author>
        <name>Rojc, Ajda</name>
      </author>
      <author>
        <name>Ragazzini, Roberta</name>
      </author>
      <author>
        <name>Whelan, Matthew VX</name>
      </author>
      <author>
        <name>Furnon, Wilhelm</name>
      </author>
      <author>
        <name>De Lorenzo, Giuditta</name>
      </author>
      <author>
        <name>Cowton, Vanessa</name>
      </author>
      <author>
        <name>Syed, Abdullah M</name>
      </author>
      <author>
        <name>Ciling, Alison</name>
      </author>
      <author>
        <name>Deutsch, Noa</name>
      </author>
      <author>
        <name>Pirak, Daniel</name>
      </author>
      <author>
        <name>Dowgier, Giulia</name>
      </author>
      <author>
        <name>Mesner, Dejan</name>
      </author>
      <author>
        <name>Turner, Jane L</name>
      </author>
      <author>
        <name>McGovern, Briana L</name>
      </author>
      <author>
        <name>Rodriguez, M Luis</name>
      </author>
      <author>
        <name>Leiva-Rebollo, Rocio</name>
      </author>
      <author>
        <name>Dunham, Alistair S</name>
      </author>
      <author>
        <name>Zhong, Xiaofang</name>
      </author>
      <author>
        <name>Eckhardt, Manon</name>
      </author>
      <author>
        <name>Fossati, Andrea</name>
        <uri>https://orcid.org/0000-0001-5170-4903</uri>
      </author>
      <author>
        <name>Liotta, Nicholas F</name>
      </author>
      <author>
        <name>Kehrer, Thomas</name>
      </author>
      <author>
        <name>Cupic, Anastasija</name>
      </author>
      <author>
        <name>Rutkowska, Magdalena</name>
      </author>
      <author>
        <name>Mena, Ignacio</name>
      </author>
      <author>
        <name>Aslam, Sadaf</name>
      </author>
      <author>
        <name>Hoffert, Alyssa</name>
      </author>
      <author>
        <name>Foussard, Helene</name>
      </author>
      <author>
        <name>Olwal, Charles Ochieng'</name>
      </author>
      <author>
        <name>Huang, Weiqing</name>
      </author>
      <author>
        <name>Zwaka, Thomas</name>
      </author>
      <author>
        <name>Pham, John</name>
      </author>
      <author>
        <name>Lyons, Molly</name>
      </author>
      <author>
        <name>Donohue, Laura</name>
      </author>
      <author>
        <name>Griffin, Aliesha</name>
      </author>
      <author>
        <name>Nugent, Rebecca</name>
      </author>
      <author>
        <name>Holden, Kevin</name>
      </author>
      <author>
        <name>Deans, Robert</name>
      </author>
      <author>
        <name>Aviles, Pablo</name>
      </author>
      <author>
        <name>Lopez-Martin, Jose A</name>
      </author>
      <author>
        <name>Jimeno, Jose M</name>
      </author>
      <author>
        <name>Obernier, Kirsten</name>
        <uri>https://orcid.org/0000-0002-4025-1299</uri>
      </author>
      <author>
        <name>Fabius, Jacqueline M</name>
      </author>
      <author>
        <name>Soucheray, Margaret</name>
        <uri>https://orcid.org/0000-0002-0370-6653</uri>
      </author>
      <author>
        <name>Hüttenhain, Ruth</name>
      </author>
      <author>
        <name>Jungreis, Irwin</name>
      </author>
      <author>
        <name>Kellis, Manolis</name>
      </author>
      <author>
        <name>Echeverria, Ignacia</name>
      </author>
      <author>
        <name>Verba, Kliment</name>
      </author>
      <author>
        <name>Bonfanti, Paola</name>
      </author>
      <author>
        <name>Beltrao, Pedro</name>
      </author>
      <author>
        <name>Sharan, Roded</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Martinez-Sobrido, Luis</name>
      </author>
      <author>
        <name>Patel, Arvind H</name>
      </author>
      <author>
        <name>Palmarini, Massimo</name>
      </author>
      <author>
        <name>Miorin, Lisa</name>
      </author>
      <author>
        <name>White, Kris</name>
      </author>
      <author>
        <name>Swaney, Danielle L</name>
      </author>
      <author>
        <name>Garcia-Sastre, Adolfo</name>
      </author>
      <author>
        <name>Jolly, Clare</name>
      </author>
      <author>
        <name>Zuliani-Alvarez, Lorena</name>
      </author>
      <author>
        <name>Towers, Greg J</name>
      </author>
      <author>
        <name>Krogan, Nevan J</name>
      </author>
    </item>
    <item>
      <title>Rapid DNA unwinding accelerates genome editing by engineered CRISPR-Cas9</title>
      <link>https://escholarship.org/uc/item/0s58c79k</link>
      <description>Thermostable clustered regularly interspaced short palindromic repeats (CRISPR) and CRISPR-associated (Cas9) enzymes could improve genome-editing efficiency and delivery due to extended protein lifetimes. However, initial experimentation demonstrated Geobacillus stearothermophilus Cas9 (GeoCas9) to be virtually inactive when used in cultured human cells. Laboratory-evolved variants of GeoCas9 overcome this natural limitation by acquiring mutations in the wedge (WED) domain that produce &amp;gt;100-fold-higher genome-editing levels. Cryoelectron microscopy (cryo-EM) structures of the wild-type and improved GeoCas9 (iGeoCas9) enzymes reveal extended contacts between the WED domain of iGeoCas9 and DNA substrates. Biochemical analysis shows that iGeoCas9 accelerates DNA unwinding to capture substrates under the magnesium-restricted conditions typical of mammalian but not bacterial cells. These findings enabled rational engineering of other Cas9 orthologs to enhance genome-editing levels,...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/0s58c79k</guid>
      <pubDate>Thu, 19 Sep 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Eggers, Amy R</name>
      </author>
      <author>
        <name>Chen, Kai</name>
      </author>
      <author>
        <name>Soczek, Katarzyna M</name>
      </author>
      <author>
        <name>Tuck, Owen T</name>
      </author>
      <author>
        <name>Doherty, Erin E</name>
        <uri>https://orcid.org/0000-0002-1555-4124</uri>
      </author>
      <author>
        <name>Xu, Bryant</name>
      </author>
      <author>
        <name>Trinidad, Marena I</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Thornton, Brittney W</name>
      </author>
      <author>
        <name>Yoon, Peter H</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Birth of protein folds and functions in the virome</title>
      <link>https://escholarship.org/uc/item/7fv2s3sn</link>
      <description>The rapid evolution of viruses generates proteins that are essential for infectivity and replication but with unknown functions, due to extreme sequence divergence1. Here, using a database of 67,715 newly predicted protein structures from 4,463 eukaryotic viral species, we found that 62% of viral proteins are structurally distinct and lack homologues in the AlphaFold database2,3. Among the remaining 38% of viral proteins, many have non-viral structural analogues that revealed surprising similarities between human pathogens and their eukaryotic hosts. Structural comparisons suggested putative functions for up to 25% of unannotated viral proteins, including those with roles in the evasion of innate immunity. In particular, RNA ligase T-like phosphodiesterases were found to resemble phage-encoded proteins that hydrolyse the host immune-activating cyclic dinucleotides 3′,3′- and 2′,3′-cyclic GMP-AMP (cGAMP). Experimental analysis showed that RNA ligase T homologues encoded by avian...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7fv2s3sn</guid>
      <pubDate>Tue, 10 Sep 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Nomburg, Jason</name>
      </author>
      <author>
        <name>Doherty, Erin E</name>
        <uri>https://orcid.org/0000-0002-1555-4124</uri>
      </author>
      <author>
        <name>Price, Nathan</name>
      </author>
      <author>
        <name>Bellieny-Rabelo, Daniel</name>
      </author>
      <author>
        <name>Zhu, Yong K</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Cas9 interrogates DNA in discrete steps modulated by mismatches and supercoiling</title>
      <link>https://escholarship.org/uc/item/9xk419fj</link>
      <description>The CRISPR-Cas9 nuclease has been widely repurposed as a molecular and cell biology tool for its ability to programmably target and cleave DNA. Cas9 recognizes its target site by unwinding the DNA double helix and hybridizing a 20-nucleotide section of its associated guide RNA to one DNA strand, forming an R-loop structure. A dynamic and mechanical description of R-loop formation is needed to understand the biophysics of target searching and develop rational approaches for mitigating off-target activity while accounting for the influence of torsional strain in the genome. Here we investigate the dynamics of Cas9 R-loop formation and collapse using rotor bead tracking (RBT), a single-molecule technique that can simultaneously monitor DNA unwinding with base-pair resolution and binding of fluorescently labeled macromolecules in real time. By measuring changes in torque upon unwinding of the double helix, we find that R-loop formation and collapse proceed via a transient discrete...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/9xk419fj</guid>
      <pubDate>Sun, 18 Aug 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Ivanov, Ivan E</name>
      </author>
      <author>
        <name>Wright, Addison V</name>
      </author>
      <author>
        <name>Cofsky, Joshua C</name>
      </author>
      <author>
        <name>Aris, Kevin D Palacio</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Bryant, Zev</name>
      </author>
    </item>
    <item>
      <title>Clades of huge phages from across Earth’s ecosystems</title>
      <link>https://escholarship.org/uc/item/5br7d58g</link>
      <description>Bacteriophages typically have small genomes1 and depend on their bacterial hosts for replication2. Here we sequenced DNA from diverse ecosystems and found hundreds of phage genomes with lengths of more than 200&amp;nbsp;kilobases (kb), including a genome of 735&amp;nbsp;kb, which is—to our knowledge—the largest phage genome to be described to date. Thirty-five genomes were manually curated to completion (circular and no gaps). Expanded genetic repertoires include diverse and previously undescribed CRISPR–Cas systems, transfer RNAs (tRNAs), tRNA synthetases, tRNA-modification enzymes, translation-initiation and elongation factors, and ribosomal proteins. The CRISPR–Cas systems of phages have the capacity to silence host transcription factors and translational genes, potentially as part of a larger interaction network that intercepts translation to redirect biosynthesis to phage-encoded functions. In addition, some phages may repurpose bacterial CRISPR–Cas systems to eliminate competing...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5br7d58g</guid>
      <pubDate>Sun, 18 Aug 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Al-Shayeb, Basem</name>
      </author>
      <author>
        <name>Sachdeva, Rohan</name>
      </author>
      <author>
        <name>Chen, Lin-Xing</name>
      </author>
      <author>
        <name>Ward, Fred</name>
      </author>
      <author>
        <name>Munk, Patrick</name>
      </author>
      <author>
        <name>Devoto, Audra</name>
      </author>
      <author>
        <name>Castelle, Cindy J</name>
      </author>
      <author>
        <name>Olm, Matthew R</name>
      </author>
      <author>
        <name>Bouma-Gregson, Keith</name>
      </author>
      <author>
        <name>Amano, Yuki</name>
      </author>
      <author>
        <name>He, Christine</name>
      </author>
      <author>
        <name>Méheust, Raphaël</name>
      </author>
      <author>
        <name>Brooks, Brandon</name>
      </author>
      <author>
        <name>Thomas, Alex</name>
      </author>
      <author>
        <name>Lavy, Adi</name>
      </author>
      <author>
        <name>Matheus-Carnevali, Paula</name>
      </author>
      <author>
        <name>Sun, Christine</name>
      </author>
      <author>
        <name>Goltsman, Daniela SA</name>
      </author>
      <author>
        <name>Borton, Mikayla A</name>
      </author>
      <author>
        <name>Sharrar, Allison</name>
      </author>
      <author>
        <name>Jaffe, Alexander L</name>
      </author>
      <author>
        <name>Nelson, Tara C</name>
      </author>
      <author>
        <name>Kantor, Rose</name>
      </author>
      <author>
        <name>Keren, Ray</name>
      </author>
      <author>
        <name>Lane, Katherine R</name>
      </author>
      <author>
        <name>Farag, Ibrahim F</name>
      </author>
      <author>
        <name>Lei, Shufei</name>
      </author>
      <author>
        <name>Finstad, Kari</name>
      </author>
      <author>
        <name>Amundson, Ronald</name>
        <uri>https://orcid.org/0000-0003-1510-7313</uri>
      </author>
      <author>
        <name>Anantharaman, Karthik</name>
      </author>
      <author>
        <name>Zhou, Jinglie</name>
      </author>
      <author>
        <name>Probst, Alexander J</name>
      </author>
      <author>
        <name>Power, Mary E</name>
      </author>
      <author>
        <name>Tringe, Susannah G</name>
        <uri>https://orcid.org/0000-0001-6479-8427</uri>
      </author>
      <author>
        <name>Li, Wen-Jun</name>
      </author>
      <author>
        <name>Wrighton, Kelly</name>
      </author>
      <author>
        <name>Harrison, Sue</name>
      </author>
      <author>
        <name>Morowitz, Michael</name>
      </author>
      <author>
        <name>Relman, David A</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Lehours, Anne-Catherine</name>
      </author>
      <author>
        <name>Warren, Lesley</name>
      </author>
      <author>
        <name>Cate, Jamie HD</name>
      </author>
      <author>
        <name>Santini, Joanne M</name>
      </author>
      <author>
        <name>Banfield, Jillian F</name>
      </author>
    </item>
    <item>
      <title>Potent CRISPR-Cas9 inhibitors from Staphylococcus genomes</title>
      <link>https://escholarship.org/uc/item/0cd9n070</link>
      <description>Anti-CRISPRs (Acrs) are small proteins that inhibit the RNA-guided DNA targeting activity of CRISPR-Cas enzymes. Encoded by bacteriophage and phage-derived bacterial genes, Acrs prevent CRISPR-mediated inhibition of phage infection and can also block CRISPR-Cas-mediated genome editing in eukaryotic cells. To identify Acrs capable of inhibiting &lt;i&gt;Staphylococcus aureus&lt;/i&gt; Cas9 (SauCas9), an alternative to the most commonly used genome editing protein &lt;i&gt;Streptococcus pyogenes&lt;/i&gt; Cas9 (SpyCas9), we used both self-targeting CRISPR screening and guilt-by-association genomic search strategies. Here we describe three potent inhibitors of SauCas9 that we name AcrIIA13, AcrIIA14, and AcrIIA15. These inhibitors share a conserved N-terminal sequence that is dispensable for DNA cleavage inhibition and have divergent C termini that are required in each case for inhibition of SauCas9-catalyzed DNA cleavage. In human cells, we observe robust inhibition of SauCas9-induced genome editing by...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/0cd9n070</guid>
      <pubDate>Sun, 18 Aug 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Watters, Kyle E</name>
      </author>
      <author>
        <name>Shivram, Haridha</name>
      </author>
      <author>
        <name>Fellmann, Christof</name>
      </author>
      <author>
        <name>Lew, Rachel J</name>
      </author>
      <author>
        <name>McMahon, Blake</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Protecting scientific integrity in an age of generative AI</title>
      <link>https://escholarship.org/uc/item/78t9x9r0</link>
      <description>Protecting scientific integrity in an age of generative AI</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/78t9x9r0</guid>
      <pubDate>Wed, 10 Jul 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Blau, Wolfgang</name>
      </author>
      <author>
        <name>Cerf, Vinton G</name>
      </author>
      <author>
        <name>Enriquez, Juan</name>
      </author>
      <author>
        <name>Francisco, Joseph S</name>
      </author>
      <author>
        <name>Gasser, Urs</name>
      </author>
      <author>
        <name>Gray, Mary L</name>
      </author>
      <author>
        <name>Greaves, Mark</name>
      </author>
      <author>
        <name>Grosz, Barbara J</name>
      </author>
      <author>
        <name>Jamieson, Kathleen Hall</name>
      </author>
      <author>
        <name>Haug, Gerald H</name>
      </author>
      <author>
        <name>Hennessy, John L</name>
      </author>
      <author>
        <name>Horvitz, Eric</name>
      </author>
      <author>
        <name>Kaiser, David I</name>
      </author>
      <author>
        <name>London, Alex John</name>
      </author>
      <author>
        <name>Lovell-Badge, Robin</name>
      </author>
      <author>
        <name>McNutt, Marcia K</name>
      </author>
      <author>
        <name>Minow, Martha</name>
      </author>
      <author>
        <name>Mitchell, Tom M</name>
      </author>
      <author>
        <name>Ness, Susan</name>
      </author>
      <author>
        <name>Parthasarathy, Shobita</name>
      </author>
      <author>
        <name>Perlmutter, Saul</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Press, William H</name>
      </author>
      <author>
        <name>Wing, Jeannette M</name>
      </author>
      <author>
        <name>Witherell, Michael</name>
      </author>
    </item>
    <item>
      <title>Author Correction: Engineering self-deliverable ribonucleoproteins for genome editing in the brain</title>
      <link>https://escholarship.org/uc/item/5xb1z8tw</link>
      <description>Correction to: Nature Communicationshttps://doi.org/10.1038/s41467-024-45998-2, published online 26 February 2024 In the Acknowledgements section of this article, the grant number relating to National Institutes of Health funding to J.A.D. was incorrectly given as RM1HG009490 and should have been U19NS132303. The grant number 2334028 relating to the National Science Foundation funding to J.A.D. was omitted. Funding from Hampton University Summer Undergraduate Research Program, Mr. Li Ka Shing, Emerson Collective and the Innovative Genomics Institute (IGI) were omitted. The original article has been corrected.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5xb1z8tw</guid>
      <pubDate>Wed, 10 Jul 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Chen, Kai</name>
      </author>
      <author>
        <name>Stahl, Elizabeth C</name>
      </author>
      <author>
        <name>Kang, Min Hyung</name>
      </author>
      <author>
        <name>Xu, Bryant</name>
      </author>
      <author>
        <name>Allen, Ryan</name>
      </author>
      <author>
        <name>Trinidad, Marena</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Seasonal variation of peripheral blood leukocyte telomere length in Costa Rica: A population‐based observational study</title>
      <link>https://escholarship.org/uc/item/91t423xn</link>
      <description>OBJECTIVES: Peripheral blood leukocyte telomere length (LTL) is increasingly being used as a biomarker of aging, but its natural variation in human populations is not well understood. Several other biomarkers show seasonal variation, as do several determinants of LTL. We examined whether there was monthly variation in LTL in Costa Rica, a country with strong seasonal differences in precipitation and infection.
METHODS: We examined a longitudinal population-based cohort of 581 Costa Rican adults age 60 and above, from which blood samples were drawn between October 2006 and July 2008. LTL was assayed from these samples using the quantitative PCR method. Multivariate regression models were used to examine correlations between month of blood draw and LTL.
RESULTS: Telomere length from peripheral blood leukocytes varied by as much as 200 base pairs depending on month of blood draw, and this difference is not likely to be due to random variation. A moderate proportion of this association...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/91t423xn</guid>
      <pubDate>Mon, 17 Jun 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Rehkopf, David H</name>
      </author>
      <author>
        <name>Dow, William H</name>
        <uri>https://orcid.org/0000-0002-4080-1668</uri>
      </author>
      <author>
        <name>Rosero‐Bixby, Luis</name>
      </author>
      <author>
        <name>Lin, Jue</name>
        <uri>https://orcid.org/0000-0001-7216-1610</uri>
      </author>
      <author>
        <name>Epel, Elissa S</name>
      </author>
      <author>
        <name>Blackburn, Elizabeth H</name>
      </author>
    </item>
    <item>
      <title>Validation of human telomere length multi-ancestry meta-analysis association signals identifies POP5 and KBTBD6 as human telomere length regulation genes</title>
      <link>https://escholarship.org/uc/item/6gg7t188</link>
      <description>Genome-wide association studies (GWAS) have become well-powered to detect loci associated with telomere length. However, no prior work has validated genes nominated by GWAS to examine their role in telomere length regulation. We conducted a multi-ancestry meta-analysis of 211,369 individuals and identified five novel association signals. Enrichment analyses of chromatin state and cell-type heritability suggested that blood/immune cells are the most relevant cell type to examine telomere length association signals. We validated specific GWAS associations by overexpressing KBTBD6 or POP5 and demonstrated that both lengthened telomeres. CRISPR/Cas9 deletion of the predicted causal regions in K562 blood cells reduced expression of these genes, demonstrating that these loci are related to transcriptional regulation of KBTBD6 and POP5. Our results demonstrate the utility of telomere length GWAS in the identification of telomere length regulation mechanisms and validate KBTBD6 and POP5...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/6gg7t188</guid>
      <pubDate>Wed, 12 Jun 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Keener, Rebecca</name>
      </author>
      <author>
        <name>Chhetri, Surya B</name>
      </author>
      <author>
        <name>Connelly, Carla J</name>
      </author>
      <author>
        <name>Taub, Margaret A</name>
      </author>
      <author>
        <name>Conomos, Matthew P</name>
      </author>
      <author>
        <name>Weinstock, Joshua</name>
      </author>
      <author>
        <name>Ni, Bohan</name>
      </author>
      <author>
        <name>Strober, Benjamin</name>
      </author>
      <author>
        <name>Aslibekyan, Stella</name>
      </author>
      <author>
        <name>Auer, Paul L</name>
      </author>
      <author>
        <name>Barwick, Lucas</name>
      </author>
      <author>
        <name>Becker, Lewis C</name>
      </author>
      <author>
        <name>Blangero, John</name>
      </author>
      <author>
        <name>Bleecker, Eugene R</name>
      </author>
      <author>
        <name>Brody, Jennifer A</name>
      </author>
      <author>
        <name>Cade, Brian E</name>
      </author>
      <author>
        <name>Celedon, Juan C</name>
      </author>
      <author>
        <name>Chang, Yi-Cheng</name>
      </author>
      <author>
        <name>Cupples, L Adrienne</name>
      </author>
      <author>
        <name>Custer, Brian</name>
      </author>
      <author>
        <name>Freedman, Barry I</name>
      </author>
      <author>
        <name>Gladwin, Mark T</name>
      </author>
      <author>
        <name>Heckbert, Susan R</name>
      </author>
      <author>
        <name>Hou, Lifang</name>
      </author>
      <author>
        <name>Irvin, Marguerite R</name>
      </author>
      <author>
        <name>Isasi, Carmen R</name>
      </author>
      <author>
        <name>Johnsen, Jill M</name>
      </author>
      <author>
        <name>Kenny, Eimear E</name>
      </author>
      <author>
        <name>Kooperberg, Charles</name>
      </author>
      <author>
        <name>Minster, Ryan L</name>
      </author>
      <author>
        <name>Naseri, Take</name>
      </author>
      <author>
        <name>Viali, Satupa’itea</name>
      </author>
      <author>
        <name>Nekhai, Sergei</name>
      </author>
      <author>
        <name>Pankratz, Nathan</name>
      </author>
      <author>
        <name>Peyser, Patricia A</name>
      </author>
      <author>
        <name>Taylor, Kent D</name>
      </author>
      <author>
        <name>Telen, Marilyn J</name>
      </author>
      <author>
        <name>Wu, Baojun</name>
      </author>
      <author>
        <name>Yanek, Lisa R</name>
      </author>
      <author>
        <name>Yang, Ivana V</name>
      </author>
      <author>
        <name>Albert, Christine</name>
      </author>
      <author>
        <name>Arnett, Donna K</name>
      </author>
      <author>
        <name>Ashley-Koch, Allison E</name>
      </author>
      <author>
        <name>Barnes, Kathleen C</name>
      </author>
      <author>
        <name>Bis, Joshua C</name>
      </author>
      <author>
        <name>Blackwell, Thomas W</name>
      </author>
      <author>
        <name>Boerwinkle, Eric</name>
      </author>
      <author>
        <name>Burchard, Esteban G</name>
      </author>
      <author>
        <name>Carson, April P</name>
      </author>
      <author>
        <name>Chen, Zhanghua</name>
      </author>
      <author>
        <name>Chen, Yii-Der Ida</name>
      </author>
      <author>
        <name>Darbar, Dawood</name>
      </author>
      <author>
        <name>de Andrade, Mariza</name>
      </author>
      <author>
        <name>Ellinor, Patrick T</name>
      </author>
      <author>
        <name>Fornage, Myriam</name>
      </author>
      <author>
        <name>Gelb, Bruce D</name>
      </author>
      <author>
        <name>Gilliland, Frank D</name>
      </author>
      <author>
        <name>He, Jiang</name>
      </author>
      <author>
        <name>Islam, Talat</name>
      </author>
      <author>
        <name>Kaab, Stefan</name>
      </author>
      <author>
        <name>Kardia, Sharon LR</name>
      </author>
      <author>
        <name>Kelly, Shannon</name>
      </author>
      <author>
        <name>Konkle, Barbara A</name>
      </author>
      <author>
        <name>Kumar, Rajesh</name>
      </author>
      <author>
        <name>Loos, Ruth JF</name>
      </author>
      <author>
        <name>Martinez, Fernando D</name>
      </author>
      <author>
        <name>McGarvey, Stephen T</name>
      </author>
      <author>
        <name>Meyers, Deborah A</name>
      </author>
      <author>
        <name>Mitchell, Braxton D</name>
      </author>
      <author>
        <name>Montgomery, Courtney G</name>
      </author>
      <author>
        <name>North, Kari E</name>
      </author>
      <author>
        <name>Palmer, Nicholette D</name>
      </author>
      <author>
        <name>Peralta, Juan M</name>
      </author>
      <author>
        <name>Raby, Benjamin A</name>
      </author>
      <author>
        <name>Redline, Susan</name>
      </author>
      <author>
        <name>Rich, Stephen S</name>
      </author>
      <author>
        <name>Roden, Dan</name>
      </author>
      <author>
        <name>Rotter, Jerome I</name>
        <uri>https://orcid.org/0000-0001-7191-1723</uri>
      </author>
      <author>
        <name>Ruczinski, Ingo</name>
      </author>
      <author>
        <name>Schwartz, David</name>
      </author>
      <author>
        <name>Sciurba, Frank</name>
      </author>
      <author>
        <name>Shoemaker, M Benjamin</name>
      </author>
      <author>
        <name>Silverman, Edwin K</name>
      </author>
      <author>
        <name>Sinner, Moritz F</name>
      </author>
      <author>
        <name>Smith, Nicholas L</name>
      </author>
      <author>
        <name>Smith, Albert V</name>
      </author>
      <author>
        <name>Tiwari, Hemant K</name>
      </author>
      <author>
        <name>Vasan, Ramachandran S</name>
      </author>
      <author>
        <name>Weiss, Scott T</name>
      </author>
      <author>
        <name>Williams, L Keoki</name>
      </author>
      <author>
        <name>Zhang, Yingze</name>
      </author>
      <author>
        <name>Ziv, Elad</name>
      </author>
      <author>
        <name>Raffield, Laura M</name>
      </author>
      <author>
        <name>Reiner, Alexander P</name>
      </author>
      <author>
        <name>Arvanitis, Marios</name>
      </author>
      <author>
        <name>Greider, Carol W</name>
        <uri>https://orcid.org/0000-0002-5494-8126</uri>
      </author>
      <author>
        <name>Mathias, Rasika A</name>
      </author>
      <author>
        <name>Battle, Alexis</name>
      </author>
    </item>
    <item>
      <title>An essential and highly selective protein import pathway encoded by nucleus-forming phage</title>
      <link>https://escholarship.org/uc/item/6tk62335</link>
      <description>Targeting proteins to specific subcellular destinations is essential in prokaryotes, eukaryotes, and the viruses that infect them. Chimalliviridae phages encapsulate their genomes in a nucleus-like replication compartment composed of the protein chimallin (ChmA) that excludes ribosomes and decouples transcription from translation. These phages selectively partition proteins between the phage nucleus and the bacterial cytoplasm. Currently, the genes and signals that govern selective protein import into the phage nucleus are unknown. Here, we identify two components of this protein import pathway: a species-specific surface-exposed region of a phage intranuclear protein required for nuclear entry and a conserved protein, PicA (Protein importer of chimalliviruses A), that facilitates cargo protein trafficking across the phage nuclear shell. We also identify a defective cargo protein that is targeted to PicA on the nuclear periphery but fails to enter the nucleus, providing insight...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/6tk62335</guid>
      <pubDate>Thu, 30 May 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Morgan, Chase J</name>
      </author>
      <author>
        <name>Enustun, Eray</name>
        <uri>https://orcid.org/0000-0001-7550-7752</uri>
      </author>
      <author>
        <name>Armbruster, Emily G</name>
      </author>
      <author>
        <name>Birkholz, Erica A</name>
      </author>
      <author>
        <name>Prichard, Amy</name>
      </author>
      <author>
        <name>Forman, Taylor</name>
      </author>
      <author>
        <name>Aindow, Ann</name>
      </author>
      <author>
        <name>Wannasrichan, Wichanan</name>
      </author>
      <author>
        <name>Peters, Sela</name>
      </author>
      <author>
        <name>Inlow, Koe</name>
        <uri>https://orcid.org/0000-0002-2535-9613</uri>
      </author>
      <author>
        <name>Shepherd, Isabelle L</name>
      </author>
      <author>
        <name>Razavilar, Alma</name>
      </author>
      <author>
        <name>Chaikeeratisak, Vorrapon</name>
      </author>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Cress, Brady F</name>
        <uri>https://orcid.org/0000-0002-2948-2846</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Pogliano, Kit</name>
      </author>
      <author>
        <name>Villa, Elizabeth</name>
        <uri>https://orcid.org/0000-0003-4677-9809</uri>
      </author>
      <author>
        <name>Corbett, Kevin D</name>
        <uri>https://orcid.org/0000-0001-5854-2388</uri>
      </author>
      <author>
        <name>Pogliano, Joe</name>
      </author>
    </item>
    <item>
      <title>A phage nucleus-associated RNA-binding protein is required for jumbo phage infection</title>
      <link>https://escholarship.org/uc/item/4vt1n111</link>
      <description>Large-genome bacteriophages (jumbo phages) of the proposed family Chimalliviridae assemble a nucleus-like compartment bounded by a protein shell that protects the replicating phage genome from host-encoded restriction enzymes and DNA-targeting CRISPR-Cas nucleases. While the nuclear shell provides broad protection against host nucleases, it necessitates transport of mRNA out of the nucleus-like compartment for translation by host ribosomes, and transport of specific proteins into the nucleus-like compartment to support DNA replication and mRNA transcription. Here, we identify a conserved phage nuclear shell-associated protein that we term Chimallin C (ChmC), which adopts a nucleic acid-binding fold, binds RNA with high affinity in vitro, and binds phage mRNAs in infected cells. ChmC also forms phase-separated condensates with RNA in vitro. Targeted knockdown of ChmC using mRNA-targeting dCas13d results in accumulation of phage-encoded mRNAs in the phage nucleus, reduces phage...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/4vt1n111</guid>
      <pubDate>Tue, 14 May 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Enustun, Eray</name>
        <uri>https://orcid.org/0000-0001-7550-7752</uri>
      </author>
      <author>
        <name>Armbruster, Emily G</name>
      </author>
      <author>
        <name>Lee, Jina</name>
      </author>
      <author>
        <name>Zhang, Sitao</name>
      </author>
      <author>
        <name>Yee, Brian A</name>
      </author>
      <author>
        <name>Malukhina, Kseniya</name>
      </author>
      <author>
        <name>Gu, Yajie</name>
      </author>
      <author>
        <name>Deep, Amar</name>
      </author>
      <author>
        <name>Naritomi, Jack T</name>
      </author>
      <author>
        <name>Liang, Qishan</name>
      </author>
      <author>
        <name>Aigner, Stefan</name>
        <uri>https://orcid.org/0000-0002-9511-3328</uri>
      </author>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Cress, Brady F</name>
        <uri>https://orcid.org/0000-0002-2948-2846</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Chaikeeratisak, Vorrapon</name>
      </author>
      <author>
        <name>Cleveland, Don W</name>
      </author>
      <author>
        <name>Ghassemian, Majid</name>
        <uri>https://orcid.org/0000-0003-1026-5152</uri>
      </author>
      <author>
        <name>Bintu, Bogdan</name>
      </author>
      <author>
        <name>Yeo, Gene W</name>
      </author>
      <author>
        <name>Pogliano, Joe</name>
      </author>
      <author>
        <name>Corbett, Kevin D</name>
        <uri>https://orcid.org/0000-0001-5854-2388</uri>
      </author>
    </item>
    <item>
      <title>In vivo human T cell engineering with enveloped delivery vehicles</title>
      <link>https://escholarship.org/uc/item/5hs3n5zd</link>
      <description>Viruses and virally derived particles have the intrinsic capacity to deliver molecules to cells, but the difficulty of readily altering cell-type selectivity has hindered their use for therapeutic delivery. Here, we show that cell surface marker recognition by antibody fragments displayed on membrane-derived particles encapsulating CRISPR–Cas9 protein and guide RNA can deliver genome editing tools to specific cells. Compared to conventional vectors like adeno-associated virus that rely on evolved capsid tropisms to deliver virally encoded cargo, these Cas9-packaging enveloped delivery vehicles (Cas9-EDVs) leverage predictable antibody–antigen interactions to transiently deliver genome editing machinery selectively to cells of interest. Antibody-targeted Cas9-EDVs preferentially confer genome editing in cognate target cells over bystander cells in mixed populations, both ex vivo and in vivo. By using multiplexed targeting molecules to direct delivery to human T cells, Cas9-EDVs...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5hs3n5zd</guid>
      <pubDate>Tue, 16 Apr 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Hamilton, Jennifer R</name>
      </author>
      <author>
        <name>Chen, Evelyn</name>
      </author>
      <author>
        <name>Perez, Barbara S</name>
      </author>
      <author>
        <name>Sandoval Espinoza, Cindy R</name>
      </author>
      <author>
        <name>Kang, Min Hyung</name>
      </author>
      <author>
        <name>Trinidad, Marena</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Ngo, Wayne</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Regularized 3D spectroscopy with CubeFit: Method and application to the Galactic Center circumnuclear disk★★★</title>
      <link>https://escholarship.org/uc/item/9w82q28d</link>
      <description>Context. The Galactic Center black hole and the nuclear star cluster are surrounded by a clumpy ring of gas and dust, the circumnuclear disk (CND), that rotates about them at a standoff distance of ≃1.5 pc. The mass and density of individual clumps in the CND are disputed.   Aims. We seek to use H 2 to characterize the clump size distribution and to investigate the morphology and dynamics of the interface between the ionized interior layer of the CND and the molecular reservoir lying farther out (corresponding to the inner rim of the CND, illuminated in ultraviolet light by the central star cluster).   Methods. We have observed two fields of approximately 20″ × 20″ in the CND at near-infrared wavelengths with the OSIRIS spectro-imager at the Keck Observatory. These two fields, located at the approaching and receding nodes of the CND, best display this interface. Our data cover two H 2 lines as well as the Br γ line (tracing H II). We have developed the tool CubeFit, an original...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/9w82q28d</guid>
      <pubDate>Wed, 10 Apr 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Paumard, Thibaut</name>
      </author>
      <author>
        <name>Ciurlo, Anna</name>
        <uri>https://orcid.org/0000-0001-5800-3093</uri>
      </author>
      <author>
        <name>Morris, Mark R</name>
        <uri>https://orcid.org/0000-0002-6753-2066</uri>
      </author>
      <author>
        <name>Do, Tuan</name>
        <uri>https://orcid.org/0000-0001-9554-6062</uri>
      </author>
      <author>
        <name>Ghez, Andrea M</name>
      </author>
    </item>
    <item>
      <title>Gut enterochromaffin cells drive visceral pain and anxiety</title>
      <link>https://escholarship.org/uc/item/6988x5gg</link>
      <description>Gastrointestinal (GI) discomfort is a hallmark of most gut disorders and represents an important component of chronic visceral pain1. For the growing population afflicted by irritable bowel syndrome, GI hypersensitivity and pain persist long after tissue injury has resolved2. Irritable bowel syndrome also exhibits a strong sex bias, afflicting women three times more than men1. Here, we focus on enterochromaffin (EC) cells, which are rare excitable, serotonergic neuroendocrine cells in the gut epithelium3–5. EC cells detect and transduce noxious stimuli to nearby mucosal nerve endings3,6 but involvement of this signalling pathway in visceral pain and attendant sex differences has not been assessed. By enhancing or suppressing EC cell function in vivo, we show that these cells are sufficient to elicit hypersensitivity to gut distension and necessary for the sensitizing actions of isovalerate, a bacterial short-chain fatty acid associated with GI inflammation7,8. Remarkably, prolonged...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/6988x5gg</guid>
      <pubDate>Tue, 9 Apr 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Bayrer, James R</name>
        <uri>https://orcid.org/0000-0002-7534-3329</uri>
      </author>
      <author>
        <name>Castro, Joel</name>
      </author>
      <author>
        <name>Venkataraman, Archana</name>
      </author>
      <author>
        <name>Touhara, Kouki K</name>
      </author>
      <author>
        <name>Rossen, Nathan D</name>
      </author>
      <author>
        <name>Morrie, Ryan D</name>
      </author>
      <author>
        <name>Maddern, Jessica</name>
      </author>
      <author>
        <name>Hendry, Aenea</name>
      </author>
      <author>
        <name>Braverman, Kristina N</name>
      </author>
      <author>
        <name>Garcia-Caraballo, Sonia</name>
      </author>
      <author>
        <name>Schober, Gudrun</name>
      </author>
      <author>
        <name>Brizuela, Mariana</name>
      </author>
      <author>
        <name>Castro Navarro, Fernanda M</name>
      </author>
      <author>
        <name>Bueno-Silva, Carla</name>
      </author>
      <author>
        <name>Ingraham, Holly A</name>
        <uri>https://orcid.org/0000-0001-6739-2967</uri>
      </author>
      <author>
        <name>Brierley, Stuart M</name>
      </author>
      <author>
        <name>Julius, David</name>
        <uri>https://orcid.org/0000-0002-6365-4867</uri>
      </author>
    </item>
    <item>
      <title>CRISPR-Cas12a exploits R-loop asymmetry to form double-strand breaks</title>
      <link>https://escholarship.org/uc/item/2d03c4w3</link>
      <description>Type V CRISPR-Cas interference proteins use a single RuvC active site to make RNA-guided breaks in double-stranded DNA substrates, an activity essential for both bacterial immunity and genome editing. The best-studied of these enzymes, Cas12a, initiates DNA cutting by forming a 20-nucleotide R-loop in which the guide RNA displaces one strand of a double-helical DNA substrate, positioning the DNase active site for first-strand cleavage. However, crystal structures and biochemical data have not explained how the second strand is cut to complete the double-strand break. Here, we detect intrinsic instability in DNA flanking the RNA-3' side of R-loops, which Cas12a can exploit to expose second-strand DNA for cutting. Interestingly, DNA flanking the RNA-5' side of R-loops is not intrinsically unstable. This asymmetry in R-loop structure may explain the uniformity of guide RNA architecture and the single-active-site cleavage mechanism that are fundamental features of all type V CRISPR-Cas...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/2d03c4w3</guid>
      <pubDate>Mon, 8 Apr 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Cofsky, Joshua C</name>
      </author>
      <author>
        <name>Karandur, Deepti</name>
      </author>
      <author>
        <name>Huang, Carolyn J</name>
      </author>
      <author>
        <name>Witte, Isaac P</name>
      </author>
      <author>
        <name>Kuriyan, John</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Phage-assisted evolution of an adenine base editor with improved Cas domain compatibility and activity</title>
      <link>https://escholarship.org/uc/item/05c4c9s6</link>
      <description>Applications of adenine base editors (ABEs) have been constrained by the limited compatibility of the deoxyadenosine deaminase component with Cas homologs other than SpCas9. We evolved the deaminase component of ABE7.10 using phage-assisted non-continuous and continuous evolution (PANCE and PACE), which resulted in ABE8e. ABE8e contains eight additional mutations that increase activity (kapp) 590-fold compared with that of ABE7.10. ABE8e offers substantially improved editing efficiencies when paired with a variety of Cas9 or Cas12 homologs. ABE8e is more processive than ABE7.10, which could benefit screening, disruption of regulatory regions and multiplex base editing applications. A modest increase in Cas9-dependent and -independent DNA off-target editing, and in transcriptome-wide RNA off-target editing can be ameliorated by the introduction of an additional mutation in the TadA-8e domain. Finally, we show that ABE8e can efficiently install natural mutations that upregulate...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/05c4c9s6</guid>
      <pubDate>Sun, 7 Apr 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Richter, Michelle F</name>
      </author>
      <author>
        <name>Zhao, Kevin T</name>
      </author>
      <author>
        <name>Eton, Elliot</name>
      </author>
      <author>
        <name>Lapinaite, Audrone</name>
        <uri>https://orcid.org/0000-0002-9427-9342</uri>
      </author>
      <author>
        <name>Newby, Gregory A</name>
      </author>
      <author>
        <name>Thuronyi, BW</name>
      </author>
      <author>
        <name>Wilson, Christopher</name>
      </author>
      <author>
        <name>Koblan, Luke W</name>
      </author>
      <author>
        <name>Zeng, Jing</name>
      </author>
      <author>
        <name>Bauer, Daniel E</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Liu, David R</name>
      </author>
    </item>
    <item>
      <title>Targeted nonviral delivery of genome editors in vivo</title>
      <link>https://escholarship.org/uc/item/285865gb</link>
      <description>Cell-type-specific in vivo delivery of genome editing molecules is the next breakthrough that will drive biological discovery and transform the field of cell and gene therapy. Here, we discuss recent advances in the delivery of CRISPR-Cas genome editors either as preassembled ribonucleoproteins or encoded in mRNA. Both strategies avoid pitfalls of viral vector-mediated delivery and offer advantages including transient editor lifetime and potentially streamlined manufacturing capability that are already proving valuable for clinical use. We review current applications and future opportunities of these emerging delivery approaches that could make genome editing more efficacious and accessible in the future.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/285865gb</guid>
      <pubDate>Fri, 5 Apr 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Tsuchida, Connor A</name>
      </author>
      <author>
        <name>Wasko, Kevin M</name>
      </author>
      <author>
        <name>Hamilton, Jennifer R</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Molecular weaving of chicken-wire covalent organic frameworks</title>
      <link>https://escholarship.org/uc/item/9vv8d9dq</link>
      <description>Molecular weaving is the interlacing of covalently linked threads to make extended structures. Although weaving based on 3D networks has been reported, the 2D forms remain largely unexplored. Reticular chemistry uses mutually embracing tetrahedral metal complexes as crossing points, which, when linked, typically lead to 3D woven structures. Realizing 2D weaving patterns requires crossing points with an overall planar geometry. We show that polynuclear helicates composed of multiple metal-complex units, and therefore multiple turns, are well suited in this regard. By reticulating helicate units, we successfully obtained 2D weaving structures based on the familiar chicken-wire pattern.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/9vv8d9dq</guid>
      <pubDate>Fri, 22 Mar 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Han, Xing</name>
      </author>
      <author>
        <name>Ma, Tianqiong</name>
      </author>
      <author>
        <name>Nannenga, Brent L</name>
      </author>
      <author>
        <name>Yao, Xuan</name>
      </author>
      <author>
        <name>Neumann, S Ephraim</name>
      </author>
      <author>
        <name>Kumar, Punit</name>
        <uri>https://orcid.org/0000-0003-3233-8279</uri>
      </author>
      <author>
        <name>Kwon, Junpyo</name>
      </author>
      <author>
        <name>Rong, Zichao</name>
      </author>
      <author>
        <name>Wang, Kaiyu</name>
        <uri>https://orcid.org/0000-0003-2464-2828</uri>
      </author>
      <author>
        <name>Zhang, Yuebiao</name>
      </author>
      <author>
        <name>Navarro, Jorge AR</name>
      </author>
      <author>
        <name>Ritchie, Robert O</name>
        <uri>https://orcid.org/0000-0002-0501-6998</uri>
      </author>
      <author>
        <name>Cui, Yong</name>
      </author>
      <author>
        <name>Yaghi, Omar M</name>
        <uri>https://orcid.org/0000-0002-5611-3325</uri>
      </author>
    </item>
    <item>
      <title>Engineering self-deliverable ribonucleoproteins for genome editing in the brain</title>
      <link>https://escholarship.org/uc/item/744960jw</link>
      <description>The delivery of CRISPR ribonucleoproteins (RNPs) for genome editing in vitro and in vivo has important advantages over other delivery methods, including reduced off-target and immunogenic effects. However, effective delivery of RNPs remains challenging in certain cell types due to low efficiency and cell toxicity. To address these issues, we engineer self-deliverable RNPs that can promote efficient cellular uptake and carry out robust genome editing without the need for helper materials or biomolecules. Screening of cell-penetrating peptides (CPPs) fused to CRISPR-Cas9 protein identifies potent constructs capable of efficient genome editing of neural progenitor cells. Further engineering of these fusion proteins establishes a C-terminal Cas9 fusion with three copies of A22p, a peptide derived from human semaphorin-3a, that exhibits substantially improved editing efficacy compared to other constructs. We find that self-deliverable Cas9 RNPs generate robust genome edits in clinically...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/744960jw</guid>
      <pubDate>Wed, 6 Mar 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Chen, Kai</name>
      </author>
      <author>
        <name>Stahl, Elizabeth C</name>
      </author>
      <author>
        <name>Kang, Min Hyung</name>
      </author>
      <author>
        <name>Xu, Bryant</name>
      </author>
      <author>
        <name>Allen, Ryan</name>
      </author>
      <author>
        <name>Trinidad, Marena</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Steady-state junction current distribution in p-n GaN diodes measured using low-energy electron microscopy (LEEM)</title>
      <link>https://escholarship.org/uc/item/2g97m725</link>
      <description>We report on the measurement of the lateral distribution of the junction current of an electrical biased p-n GaN diode by electron emission microscopy using a low-energy electron microscope. The vacuum level at the surface of the diode was lowered by deposition of cesium to achieve negative electron affinity, allowing overflow electrons at the surface of the biased diodes to be emitted and their spatial distribution imaged. The results were compared to the literature, and a good match with analytical solutions by Joyce and Wemple [J. Appl. Phys. 41, 3818 (1970)] was obtained.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/2g97m725</guid>
      <pubDate>Mon, 12 Feb 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Ho, Wan Ying</name>
      </author>
      <author>
        <name>Johnson, Cameron W</name>
      </author>
      <author>
        <name>Tak, Tanay</name>
      </author>
      <author>
        <name>Sauty, Mylène</name>
      </author>
      <author>
        <name>Chow, Yi Chao</name>
      </author>
      <author>
        <name>Nakamura, Shuji</name>
        <uri>https://orcid.org/0000-0001-6334-2428</uri>
      </author>
      <author>
        <name>Schmid, Andreas</name>
      </author>
      <author>
        <name>Peretti, Jacques</name>
      </author>
      <author>
        <name>Weisbuch, Claude</name>
      </author>
      <author>
        <name>Speck, James S</name>
      </author>
    </item>
    <item>
      <title>CasPEDIA Database: a functional classification system for class 2 CRISPR-Cas enzymes</title>
      <link>https://escholarship.org/uc/item/5ck3v1hw</link>
      <description>CRISPR-Cas enzymes enable RNA-guided bacterial immunity and are widely used for biotechnological applications including genome editing. In particular, the Class 2 CRISPR-associated enzymes (Cas9, Cas12 and Cas13 families), have been deployed for numerous research, clinical and agricultural applications. However, the immense genetic and biochemical diversity of these proteins in the public domain poses a barrier for researchers seeking to leverage their activities. We present CasPEDIA (http://caspedia.org), the Cas Protein Effector Database of Information and Assessment, a curated encyclopedia that integrates enzymatic classification for hundreds of different Cas enzymes across 27 phylogenetic groups spanning the Cas9, Cas12 and Cas13 families, as well as evolutionarily related IscB and TnpB proteins. All enzymes in CasPEDIA were annotated with a standard workflow based on their primary nuclease activity, target requirements and guide-RNA design constraints. Our functional classification...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5ck3v1hw</guid>
      <pubDate>Wed, 10 Jan 2024 00:00:00 +0000</pubDate>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Trinidad, Marena I</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Bellieny-Rabelo, Daniel</name>
      </author>
      <author>
        <name>Zhang, Elaine</name>
      </author>
      <author>
        <name>Karp, Hannah M</name>
      </author>
      <author>
        <name>Skopintsev, Petr</name>
      </author>
      <author>
        <name>Thornton, Brittney W</name>
      </author>
      <author>
        <name>Weissman, Rachel F</name>
      </author>
      <author>
        <name>Yoon, Peter H</name>
      </author>
      <author>
        <name>Chen, LinXing</name>
      </author>
      <author>
        <name>Hessler, Tomas</name>
      </author>
      <author>
        <name>Eggers, Amy R</name>
      </author>
      <author>
        <name>Colognori, David</name>
      </author>
      <author>
        <name>Boger, Ron</name>
      </author>
      <author>
        <name>Doherty, Erin E</name>
        <uri>https://orcid.org/0000-0002-1555-4124</uri>
      </author>
      <author>
        <name>Tsuchida, Connor A</name>
      </author>
      <author>
        <name>Tran, Ryan V</name>
      </author>
      <author>
        <name>Hofman, Laura</name>
      </author>
      <author>
        <name>Shi, Honglue</name>
      </author>
      <author>
        <name>Wasko, Kevin M</name>
      </author>
      <author>
        <name>Zhou, Zehan</name>
      </author>
      <author>
        <name>Xia, Chenglong</name>
      </author>
      <author>
        <name>Al-Shimary, Muntathar J</name>
      </author>
      <author>
        <name>Patel, Jaymin R</name>
      </author>
      <author>
        <name>Thomas, Vienna CJX</name>
      </author>
      <author>
        <name>Pattali, Rithu</name>
      </author>
      <author>
        <name>Kan, Matthew J</name>
      </author>
      <author>
        <name>Vardapetyan, Anna</name>
      </author>
      <author>
        <name>Yang, Alana</name>
      </author>
      <author>
        <name>Lahiri, Arushi</name>
      </author>
      <author>
        <name>Maxwell, Micaela F</name>
      </author>
      <author>
        <name>Murdock, Andrew G</name>
      </author>
      <author>
        <name>Ramit, Glenn C</name>
      </author>
      <author>
        <name>Henderson, Hope R</name>
      </author>
      <author>
        <name>Calvert, Roland W</name>
      </author>
      <author>
        <name>Bamert, Rebecca S</name>
      </author>
      <author>
        <name>Knott, Gavin J</name>
      </author>
      <author>
        <name>Lapinaite, Audrone</name>
        <uri>https://orcid.org/0000-0002-9427-9342</uri>
      </author>
      <author>
        <name>Pausch, Patrick</name>
      </author>
      <author>
        <name>Cofsky, Joshua C</name>
      </author>
      <author>
        <name>Sontheimer, Erik J</name>
      </author>
      <author>
        <name>Wiedenheft, Blake</name>
      </author>
      <author>
        <name>Fineran, Peter C</name>
      </author>
      <author>
        <name>Brouns, Stan JJ</name>
      </author>
      <author>
        <name>Sashital, Dipali G</name>
      </author>
      <author>
        <name>Thomas, Brian C</name>
      </author>
      <author>
        <name>Brown, Christopher T</name>
      </author>
      <author>
        <name>Goltsman, Daniela SA</name>
      </author>
      <author>
        <name>Barrangou, Rodolphe</name>
      </author>
      <author>
        <name>Siksnys, Virginius</name>
      </author>
      <author>
        <name>Banfield, Jillian F</name>
      </author>
      <author>
        <name>Savage, David F</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Eukaryotic RNA-guided endonucleases evolved from a unique clade of bacterial enzymes</title>
      <link>https://escholarship.org/uc/item/8tf902c3</link>
      <description>RNA-guided endonucleases form the crux of diverse biological processes and technologies, including adaptive immunity, transposition, and genome editing. Some of these enzymes are components of insertion sequences (IS) in the IS200/IS605 and IS607 transposon families. Both IS families encode a TnpA transposase and a TnpB nuclease, an RNA-guided enzyme ancestral to CRISPR-Cas12s. In eukaryotes, TnpB homologs occur as two distinct types, Fanzor1s and Fanzor2s. We analyzed the evolutionary relationships between prokaryotic TnpBs and eukaryotic Fanzors, which revealed that both Fanzor1s and Fanzor2s stem from a single lineage of IS607 TnpBs with unusual active site arrangement. The widespread nature of Fanzors implies that the properties of this particular lineage of IS607 TnpBs were particularly suited to adaptation in eukaryotes. Biochemical analysis of an IS607 TnpB and Fanzor1s revealed common strategies employed by TnpBs and Fanzors to co-evolve with their cognate transposases....</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/8tf902c3</guid>
      <pubDate>Wed, 20 Dec 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Yoon, Peter H</name>
      </author>
      <author>
        <name>Skopintsev, Petr</name>
      </author>
      <author>
        <name>Shi, Honglue</name>
      </author>
      <author>
        <name>Chen, LinXing</name>
      </author>
      <author>
        <name>Adler, Benjamin A</name>
      </author>
      <author>
        <name>Al-Shimary, Muntathar</name>
      </author>
      <author>
        <name>Craig, Rory J</name>
      </author>
      <author>
        <name>Loi, Kenneth J</name>
      </author>
      <author>
        <name>DeTurk, Evan C</name>
      </author>
      <author>
        <name>Li, Zheng</name>
      </author>
      <author>
        <name>Amerasekera, Jasmine</name>
      </author>
      <author>
        <name>Trinidad, Marena</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Nisonoff, Hunter</name>
      </author>
      <author>
        <name>Chen, Kai</name>
      </author>
      <author>
        <name>Lahiri, Arushi</name>
      </author>
      <author>
        <name>Boger, Ron</name>
      </author>
      <author>
        <name>Jacobsen, Steve</name>
      </author>
      <author>
        <name>Banfield, Jillian F</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Mitigation of chromosome loss in clinical CRISPR-Cas9-engineered T&amp;nbsp;cells</title>
      <link>https://escholarship.org/uc/item/4111p9q6</link>
      <description>CRISPR-Cas9 genome editing has enabled advanced T&amp;nbsp;cell therapies, but occasional loss of the targeted chromosome remains a safety concern. To investigate whether Cas9-induced chromosome loss is a universal phenomenon and evaluate its clinical significance, we conducted a systematic analysis in primary human T&amp;nbsp;cells. Arrayed and pooled CRISPR screens revealed that chromosome loss was generalizable across the genome and resulted in partial and entire loss of the targeted chromosome, including in preclinical chimeric antigen receptor T&amp;nbsp;cells. T&amp;nbsp;cells with chromosome loss persisted for weeks in culture, implying the potential to interfere with clinical use. A modified cell manufacturing process, employed in our first-in-human clinical trial of Cas9-engineered T&amp;nbsp;cells (NCT03399448), reduced chromosome loss while largely preserving genome editing efficacy. Expression of p53 correlated with protection from chromosome loss observed in this protocol, suggesting...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/4111p9q6</guid>
      <pubDate>Sat, 2 Dec 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Tsuchida, Connor A</name>
      </author>
      <author>
        <name>Brandes, Nadav</name>
        <uri>https://orcid.org/0000-0002-0510-2546</uri>
      </author>
      <author>
        <name>Bueno, Raymund</name>
      </author>
      <author>
        <name>Trinidad, Marena</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Mazumder, Thomas</name>
      </author>
      <author>
        <name>Yu, Bingfei</name>
      </author>
      <author>
        <name>Hwang, Byungjin</name>
      </author>
      <author>
        <name>Chang, Christopher</name>
      </author>
      <author>
        <name>Liu, Jamin</name>
      </author>
      <author>
        <name>Sun, Yang</name>
        <uri>https://orcid.org/0000-0002-9344-8060</uri>
      </author>
      <author>
        <name>Hopkins, Caitlin R</name>
      </author>
      <author>
        <name>Parker, Kevin R</name>
      </author>
      <author>
        <name>Qi, Yanyan</name>
      </author>
      <author>
        <name>Hofman, Laura</name>
      </author>
      <author>
        <name>Satpathy, Ansuman T</name>
      </author>
      <author>
        <name>Stadtmauer, Edward A</name>
      </author>
      <author>
        <name>Cate, Jamie HD</name>
      </author>
      <author>
        <name>Eyquem, Justin</name>
        <uri>https://orcid.org/0000-0001-8262-1190</uri>
      </author>
      <author>
        <name>Fraietta, Joseph A</name>
      </author>
      <author>
        <name>June, Carl H</name>
      </author>
      <author>
        <name>Chang, Howard Y</name>
      </author>
      <author>
        <name>Ye, Chun Jimmie</name>
        <uri>https://orcid.org/0000-0001-6560-3783</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Bump Morphology of the CMAGIC Diagram</title>
      <link>https://escholarship.org/uc/item/50c0g1vx</link>
      <description>We apply the color–magnitude intercept calibration method (CMAGIC) to the Nearby Supernova Factory SNe Ia spectrophotometric data set. The currently existing CMAGIC parameters are the slope and intercept of a straight line fit to the linear region in the color–magnitude diagram, which occurs over a span of approximately 30 days after maximum brightness. We define a new parameter, ω XY , the size of the “bump” feature near maximum brightness for arbitrary filters X and Y. We find a significant correlation between the slope of the linear region, β XY , in the CMAGIC diagram and ω XY . These results may be used to our advantage, as they are less affected by extinction than parameters defined as a function of time. Additionally, ω XY is computed independently of templates. We find that current empirical templates are successful at reproducing the features described in this work, particularly SALT3, which correctly exhibits the negative correlation between slope and “bump” size seen...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/50c0g1vx</guid>
      <pubDate>Wed, 29 Nov 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Aldoroty, L</name>
      </author>
      <author>
        <name>Wang, L</name>
      </author>
      <author>
        <name>Hoeflich, P</name>
      </author>
      <author>
        <name>Yang, J</name>
      </author>
      <author>
        <name>Suntzeff, N</name>
      </author>
      <author>
        <name>Aldering, G</name>
      </author>
      <author>
        <name>Antilogus, P</name>
      </author>
      <author>
        <name>Aragon, C</name>
      </author>
      <author>
        <name>Bailey, S</name>
        <uri>https://orcid.org/0000-0003-4162-6619</uri>
      </author>
      <author>
        <name>Baltay, C</name>
      </author>
      <author>
        <name>Bongard, S</name>
      </author>
      <author>
        <name>Boone, K</name>
      </author>
      <author>
        <name>Buton, C</name>
      </author>
      <author>
        <name>Copin, Y</name>
      </author>
      <author>
        <name>Dixon, S</name>
      </author>
      <author>
        <name>Fouchez, D</name>
      </author>
      <author>
        <name>Gangler, E</name>
      </author>
      <author>
        <name>Gupta, R</name>
      </author>
      <author>
        <name>Hayden, B</name>
      </author>
      <author>
        <name>Karmen, Mitchell</name>
      </author>
      <author>
        <name>Kim, AG</name>
        <uri>https://orcid.org/0000-0001-6315-8743</uri>
      </author>
      <author>
        <name>Kowalski, M</name>
      </author>
      <author>
        <name>Küsters, D</name>
      </author>
      <author>
        <name>Léget, P-F</name>
      </author>
      <author>
        <name>Mondon, F</name>
      </author>
      <author>
        <name>Nordin, J</name>
      </author>
      <author>
        <name>Pain, R</name>
      </author>
      <author>
        <name>Pecontal, E</name>
      </author>
      <author>
        <name>Pereira, R</name>
      </author>
      <author>
        <name>Perlmutter, S</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Ponder, KA</name>
      </author>
      <author>
        <name>Rabinowitz, D</name>
      </author>
      <author>
        <name>Rigault, M</name>
      </author>
      <author>
        <name>Rubin, D</name>
        <uri>https://orcid.org/0000-0001-5402-4647</uri>
      </author>
      <author>
        <name>Runge, K</name>
      </author>
      <author>
        <name>Saunders, C</name>
      </author>
      <author>
        <name>Smadja, G</name>
      </author>
      <author>
        <name>Suzuki, N</name>
      </author>
      <author>
        <name>Tao, C</name>
      </author>
      <author>
        <name>Thomas, RC</name>
      </author>
      <author>
        <name>Vincenzi, M</name>
      </author>
    </item>
    <item>
      <title>Precise Control of Molecular Self‐Diffusion in Isoreticular and Multivariate Metal‐Organic Frameworks</title>
      <link>https://escholarship.org/uc/item/56q7j1b6</link>
      <description>Understanding the factors that affect self-diffusion in isoreticular and multivariate (MTV) MOFs is key to their application in drug delivery, separations, and heterogeneous catalysis. Here, we measure the apparent self-diffusion of solvents saturated within the pores of large single crystals of MOF-5, IRMOF-3 (amino-functionalized MOF-5), and 17 MTV-MOF-5/IRMOF-3 materials at various mole fractions. We find that the apparent self-diffusion coefficient of N,N-dimethylformamide (DMF) may be tuned linearly between the diffusion coefficients of MOF-5 and IRMOF-3 as a function of the linker mole fraction. We compare a series of solvents at saturation in MOF-5 and IRMOF-3 to elucidate the mechanism by which the linker amino groups tune molecular diffusion. The ratio of the self-diffusion coefficients for solvents in MOF-5 to those in IRMOF-3 is similar across all solvents tested, regardless of solvent polarity. We conclude that average pore aperture, not solvent-linker chemical interactions,...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/56q7j1b6</guid>
      <pubDate>Sun, 22 Oct 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Popp, Thomas M Osborn</name>
      </author>
      <author>
        <name>Plantz, Ariel Z</name>
      </author>
      <author>
        <name>Yaghi, Omar M</name>
        <uri>https://orcid.org/0000-0002-5611-3325</uri>
      </author>
      <author>
        <name>Reimer, Jeffrey A</name>
        <uri>https://orcid.org/0000-0002-4191-3725</uri>
      </author>
    </item>
    <item>
      <title>New factors for protein transport identified by a genome-wide CRISPRi screen in mammalian cells</title>
      <link>https://escholarship.org/uc/item/19t8p94b</link>
      <description>Protein and membrane trafficking pathways are critical for cell and tissue homeostasis. Traditional genetic and biochemical approaches have shed light on basic principles underlying these processes. However, the list of factors required for secretory pathway function remains incomplete, and mechanisms involved in their adaptation poorly understood. Here, we present a powerful strategy based on a pooled genome-wide CRISPRi screen that allowed the identification of new factors involved in protein transport. Two newly identified factors, TTC17 and CCDC157, localized along the secretory pathway and were found to interact with resident proteins of ER-Golgi membranes. In addition, we uncovered that upon TTC17 knockdown, the polarized organization of Golgi cisternae was altered, creating glycosylation defects, and that CCDC157 is an important factor for the fusion of transport carriers to Golgi membranes. In conclusion, our work identified and characterized new actors in the mechanisms...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/19t8p94b</guid>
      <pubDate>Sun, 22 Oct 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Bassaganyas, Laia</name>
      </author>
      <author>
        <name>Popa, Stephanie J</name>
      </author>
      <author>
        <name>Horlbeck, Max</name>
      </author>
      <author>
        <name>Puri, Claudia</name>
      </author>
      <author>
        <name>Stewart, Sarah E</name>
      </author>
      <author>
        <name>Campelo, Felix</name>
      </author>
      <author>
        <name>Ashok, Anupama</name>
      </author>
      <author>
        <name>Butnaru, Cristian M</name>
      </author>
      <author>
        <name>Brouwers, Nathalie</name>
      </author>
      <author>
        <name>Heydari, Kartoosh</name>
      </author>
      <author>
        <name>Ripoche, Jean</name>
      </author>
      <author>
        <name>Weissman, Jonathan</name>
      </author>
      <author>
        <name>Rubinsztein, David C</name>
      </author>
      <author>
        <name>Schekman, Randy</name>
      </author>
      <author>
        <name>Malhotra, Vivek</name>
      </author>
      <author>
        <name>Moreau, Kevin</name>
      </author>
      <author>
        <name>Villeneuve, Julien</name>
      </author>
    </item>
    <item>
      <title>Regulation of LC3 lipidation by the autophagy-specific class III phosphatidylinositol-3 kinase complex</title>
      <link>https://escholarship.org/uc/item/7fg7367c</link>
      <description>Autophagy is a conserved eukaryotic pathway critical for cellular adaptation to changes in nutrition levels and stress. The class III phosphatidylinositol (PI)3-kinase complexes I and II (PI3KC3-C1 and -C2) are essential for autophagosome initiation and maturation, respectively, from highly curved vesicles. We used a cell-free reaction that reproduces a key autophagy initiation step, LC3 lipidation, as a biochemical readout to probe the role of autophagy-related gene (ATG)14, a PI3KC3-C1-specific subunit implicated in targeting the complex to autophagy initiation sites. We reconstituted LC3 lipidation with recombinant PI3KC3-C1, -C2, or various mutant derivatives added to extracts derived from a CRISPR/Cas9-generated ATG14-knockout cell line. Both complexes C1 and C2 require the C-terminal helix of VPS34 for activity on highly curved membranes. However, only complex C1 supports LC3 lipidation through the curvature-targeting amphipathic lipid packing sensor (ALPS) motif of ATG14....</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7fg7367c</guid>
      <pubDate>Wed, 20 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Brier, Livia W</name>
      </author>
      <author>
        <name>Ge, Liang</name>
      </author>
      <author>
        <name>Stjepanovic, Goran</name>
        <uri>https://orcid.org/0000-0002-4841-9949</uri>
      </author>
      <author>
        <name>Thelen, Ashley M</name>
      </author>
      <author>
        <name>Hurley, James H</name>
      </author>
      <author>
        <name>Schekman, Randy</name>
      </author>
    </item>
    <item>
      <title>Fluorous-Soluble Metal Chelate for Sensitive Fluorine-19 Magnetic Resonance Imaging Nanoemulsion Probes</title>
      <link>https://escholarship.org/uc/item/24m1f9r3</link>
      <description>Fluorine-19 MRI is an emerging cellular imaging approach, enabling lucid, quantitative "hot-spot" imaging with no background signal. The utility of &lt;sup&gt;19&lt;/sup&gt;F-MRI to detect inflammation and cell therapy products in vivo could be expanded by improving the intrinsic sensitivity of the probe by molecular design. We describe a metal chelate based on a salicylidene-tris(aminomethyl)ethane core, with solubility in perfluorocarbon (PFC) oils, and a potent accelerator of the &lt;sup&gt;19&lt;/sup&gt;F longitudinal relaxation time ( T&lt;sub&gt;1&lt;/sub&gt;). Shortening T&lt;sub&gt;1&lt;/sub&gt; can increase the &lt;sup&gt;19&lt;/sup&gt;F image sensitivity per time and decrease the minimum number of detectable cells. We used the condensation between the tripodal ligand tris-1,1,1-(aminomethyl)ethane and salicylaldehyde to form the salicylidene-tris(aminomethyl)ethane chelating agent (SALTAME). We purified four isomers of SALTAME, elucidated structures using X-ray scattering and NMR, and identified a single isomer with high PFC...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/24m1f9r3</guid>
      <pubDate>Wed, 20 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Jahromi, Amin Haghighat</name>
      </author>
      <author>
        <name>Wang, Chao</name>
      </author>
      <author>
        <name>Adams, Stephen R</name>
      </author>
      <author>
        <name>Zhu, Wenlian</name>
      </author>
      <author>
        <name>Narsinh, Kazim</name>
        <uri>https://orcid.org/0000-0002-2019-5461</uri>
      </author>
      <author>
        <name>Xu, Hongyan</name>
      </author>
      <author>
        <name>Gray, Danielle L</name>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
      <author>
        <name>Ahrens, Eric T</name>
      </author>
    </item>
    <item>
      <title>Improved genome editing by an engineered CRISPR-Cas12a</title>
      <link>https://escholarship.org/uc/item/9fz4022b</link>
      <description>CRISPR-Cas12a is an RNA-guided, programmable genome editing enzyme found within bacterial adaptive immune pathways. Unlike CRISPR-Cas9, Cas12a uses only a single catalytic site to both cleave target double-stranded DNA (dsDNA) (cis-activity) and indiscriminately degrade single-stranded DNA (ssDNA) (trans-activity). To investigate how the relative potency of cis- versus trans-DNase activity affects Cas12a-mediated genome editing, we first used structure-guided engineering to generate variants of Lachnospiraceae bacterium Cas12a that selectively disrupt trans-activity. The resulting engineered mutant with the biggest differential between cis- and trans-DNase activity in vitro showed minimal genome editing activity in human cells, motivating a second set of experiments using directed evolution to generate additional mutants with robust genome editing activity. Notably, these engineered and evolved mutants had enhanced ability to induce homology-directed repair (HDR) editing by 2-18-fold...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/9fz4022b</guid>
      <pubDate>Tue, 19 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Ma, Enbo</name>
      </author>
      <author>
        <name>Chen, Kai</name>
      </author>
      <author>
        <name>Shi, Honglue</name>
      </author>
      <author>
        <name>Stahl, Elizabeth C</name>
      </author>
      <author>
        <name>Adler, Ben</name>
      </author>
      <author>
        <name>Trinidad, Marena</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Liu, Junjie</name>
      </author>
      <author>
        <name>Zhou, Kaihong</name>
      </author>
      <author>
        <name>Ye, Jinjuan</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Attachment of a 32P-phosphate to the 3' Terminus of a DNA Oligonucleotide.</title>
      <link>https://escholarship.org/uc/item/8x76b17d</link>
      <description>Biochemical investigations into DNA-binding and DNA-cutting proteins often benefit from the specific attachment of a radioactive label to one of the two DNA termini. In many cases, it is essential to perform two versions of the same experiment: one with the 5' DNA end labeled and one with the 3' DNA end labeled. While homogeneous 5'-radiolabeling can be accomplished using a single kinase-catalyzed phosphorylation step, existing procedures for 3'-radiolabeling often result in probe heterogeneity, prohibiting precise DNA fragment identification in downstream experiments. We present here a new protocol to efficiently attach a &lt;sup&gt;32&lt;/sup&gt;P-phosphate to the 3' end of a DNA oligonucleotide of arbitrary sequence, relying on inexpensive DNA oligonucleotide modifications (2'-O-methylribonucleotide and ribonucleotide sugar substitutions), two enzymes (T4 polynucleotide kinase and T4 RNA ligase 2), and the differential susceptibility of DNA and RNA to hydroxide treatment. Radioactive probe...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/8x76b17d</guid>
      <pubDate>Tue, 19 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Cofsky, Joshua C</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Comprehensive deletion landscape of CRISPR-Cas9 identifies minimal RNA-guided DNA-binding modules</title>
      <link>https://escholarship.org/uc/item/8rj6359b</link>
      <description>Proteins evolve through the modular rearrangement of elements known as domains. Extant, multidomain proteins are hypothesized to be the result of domain accretion, but there has been limited experimental validation of this idea. Here, we introduce a technique for genetic minimization by iterative size-exclusion and recombination (MISER) for comprehensively making all possible deletions of a protein. Using MISER, we generate a deletion landscape for the CRISPR protein Cas9. We find that the catalytically-dead Streptococcus pyogenes Cas9 can tolerate large single deletions in the REC2, REC3, HNH, and RuvC domains, while still functioning in vitro and in vivo, and that these deletions can be stacked together to engineer minimal, DNA-binding effector proteins. In total, our results demonstrate that extant proteins retain significant modularity from the accretion process and, as genetic size is a major limitation for viral delivery systems, establish a general technique to improve...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/8rj6359b</guid>
      <pubDate>Tue, 19 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Shams, Arik</name>
      </author>
      <author>
        <name>Higgins, Sean A</name>
      </author>
      <author>
        <name>Fellmann, Christof</name>
      </author>
      <author>
        <name>Laughlin, Thomas G</name>
      </author>
      <author>
        <name>Oakes, Benjamin L</name>
      </author>
      <author>
        <name>Lew, Rachel</name>
      </author>
      <author>
        <name>Kim, Shin</name>
      </author>
      <author>
        <name>Lukarska, Maria</name>
      </author>
      <author>
        <name>Arnold, Madeline</name>
      </author>
      <author>
        <name>Staahl, Brett T</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Savage, David F</name>
      </author>
    </item>
    <item>
      <title>Mammalian miRNA RISC Recruits CAF1 and PABP to Affect PABP-Dependent Deadenylation</title>
      <link>https://escholarship.org/uc/item/7gd458dv</link>
      <description>MicroRNAs (miRNAs) inhibit mRNA expression in general by base pairing to the 3'UTR of target mRNAs and consequently inhibiting translation and/or initiating poly(A) tail deadenylation and mRNA destabilization. Here we examine the mechanism and kinetics of miRNA-mediated deadenylation in mouse Krebs-2 ascites extract. We demonstrate that miRNA-mediated mRNA deadenylation occurs subsequent to initial translational inhibition, indicating a two-step mechanism of miRNA action, which serves to consolidate repression. We show that a let-7 miRNA-loaded RNA-induced silencing complex (miRISC) interacts with the poly(A)-binding protein (PABP) and the CAF1 and CCR4 deadenylases. In addition, we demonstrate that miRNA-mediated deadenylation is dependent upon CAF1 activity and PABP, which serves as a bona fide miRNA coactivator. Importantly, we present evidence that GW182, a core component of the miRISC, directly interacts with PABP via its C-terminal region and that this interaction is required...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7gd458dv</guid>
      <pubDate>Tue, 19 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Fabian, Marc R</name>
      </author>
      <author>
        <name>Mathonnet, Géraldine</name>
      </author>
      <author>
        <name>Sundermeier, Thomas</name>
      </author>
      <author>
        <name>Mathys, Hansruedi</name>
      </author>
      <author>
        <name>Zipprich, Jakob T</name>
      </author>
      <author>
        <name>Svitkin, Yuri V</name>
      </author>
      <author>
        <name>Rivas, Fabiola</name>
      </author>
      <author>
        <name>Jinek, Martin</name>
      </author>
      <author>
        <name>Wohlschlegel, James</name>
        <uri>https://orcid.org/0000-0001-8289-2222</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Chen, Chyi-Ying A</name>
      </author>
      <author>
        <name>Shyu, Ann-Bin</name>
      </author>
      <author>
        <name>Yates, John R</name>
      </author>
      <author>
        <name>Hannon, Gregory J</name>
      </author>
      <author>
        <name>Filipowicz, Witold</name>
      </author>
      <author>
        <name>Duchaine, Thomas F</name>
      </author>
      <author>
        <name>Sonenberg, Nahum</name>
      </author>
    </item>
    <item>
      <title>Kinetic analysis of Cas12a and Cas13a RNA-Guided nucleases for development of improved CRISPR-Based diagnostics</title>
      <link>https://escholarship.org/uc/item/7bm344gq</link>
      <description>Bacterial CRISPR systems provide acquired immunity against invading nucleic acids by activating RNA-programmable RNases and DNases. Cas13a and Cas12a enzymes bound to CRISPR RNA (crRNA) recognize specific nucleic acid targets, initiating cleavage of the targets as well as non-target (&lt;i&gt;trans&lt;/i&gt;) nucleic acids. Here, we examine the kinetics of single-turnover target and multi-turnover &lt;i&gt;trans&lt;/i&gt;-nuclease activities of both enzymes. High-turnover, non-specific Cas13a &lt;i&gt;trans&lt;/i&gt;-RNase activity is coupled to rapid binding of target RNA. By contrast, low-turnover Cas12a &lt;i&gt;trans&lt;/i&gt;-nuclease activity is coupled to relatively slow cleavage of target DNA, selective for DNA over RNA, indifferent to base identity, and preferential for single-stranded substrates. Combining multiple crRNA increases detection sensitivity of targets, an approach we use to quantify pathogen DNA in samples from patients suspected of Buruli ulcer disease. Results reveal that these enzymes are kinetically...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7bm344gq</guid>
      <pubDate>Tue, 19 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Nalefski, Eric A</name>
      </author>
      <author>
        <name>Patel, Nidhi</name>
      </author>
      <author>
        <name>Leung, Philip JY</name>
      </author>
      <author>
        <name>Islam, Zeba</name>
      </author>
      <author>
        <name>Kooistra, Remy M</name>
      </author>
      <author>
        <name>Parikh, Ishira</name>
      </author>
      <author>
        <name>Marion, Estelle</name>
      </author>
      <author>
        <name>Knott, Gavin J</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Le Ny, Anne-Laure M</name>
      </author>
      <author>
        <name>Madan, Damian</name>
      </author>
    </item>
    <item>
      <title>Functional reconstitution of human eukaryotic translation initiation factor 3 (eIF3)</title>
      <link>https://escholarship.org/uc/item/7b35m6sd</link>
      <description>Protein fate in higher eukaryotes is controlled by three complexes that share conserved architectural elements: the proteasome, COP9 signalosome, and eukaryotic translation initiation factor 3 (eIF3). Here we reconstitute the 13-subunit human eIF3 in Escherichia coli, revealing its structural core to be the eight subunits with conserved orthologues in the proteasome lid complex and COP9 signalosome. This structural core in eIF3 binds to the small (40S) ribosomal subunit, to translation initiation factors involved in mRNA cap-dependent initiation, and to the hepatitis C viral (HCV) internal ribosome entry site (IRES) RNA. Addition of the remaining eIF3 subunits enables reconstituted eIF3 to assemble intact initiation complexes with the HCV IRES. Negative-stain EM reconstructions of reconstituted eIF3 further reveal how the approximately 400&amp;nbsp;kDa molecular mass structural core organizes the highly flexible 800&amp;nbsp;kDa molecular mass eIF3 complex, and mediates translation initiation.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7b35m6sd</guid>
      <pubDate>Tue, 19 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Sun, Chaomin</name>
      </author>
      <author>
        <name>Todorovic, Aleksandar</name>
      </author>
      <author>
        <name>Querol-Audí, Jordi</name>
      </author>
      <author>
        <name>Bai, Yun</name>
      </author>
      <author>
        <name>Villa, Nancy</name>
      </author>
      <author>
        <name>Snyder, Monica</name>
      </author>
      <author>
        <name>Ashchyan, John</name>
      </author>
      <author>
        <name>Lewis, Christopher S</name>
      </author>
      <author>
        <name>Hartland, Abbey</name>
      </author>
      <author>
        <name>Gradia, Scott</name>
      </author>
      <author>
        <name>Fraser, Christopher S</name>
        <uri>https://orcid.org/0000-0001-9626-7743</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Nogales, Eva</name>
        <uri>https://orcid.org/0000-0001-9816-3681</uri>
      </author>
      <author>
        <name>Cate, Jamie HD</name>
      </author>
    </item>
    <item>
      <title>Decorating chromatin for enhanced genome editing using CRISPR-Cas9</title>
      <link>https://escholarship.org/uc/item/24j65743</link>
      <description>CRISPR-associated (Cas) enzymes have revolutionized biology by enabling RNA-guided genome editing. Homology-directed repair (HDR) in the presence of donor templates is currently the most versatile method to introduce precise edits following CRISPR-Cas-induced double-stranded DNA cuts, but HDR efficiency is generally low relative to end-joining pathways that lead to insertions and deletions (indels). We tested the hypothesis that HDR could be increased using a Cas9 construct fused to PRDM9, a chromatin remodeling factor that deposits histone methylations H3K36me3 and H3K4me3 to mediate homologous recombination in human cells. Our results show that the fusion protein contacts chromatin specifically at the Cas9 cut site in the genome to increase the observed HDR efficiency by threefold and HDR:indel ratio by fivefold compared with that induced by unmodified Cas9. HDR enhancement occurred in multiple cell lines with no increase in off-target genome editing. These findings underscore...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/24j65743</guid>
      <pubDate>Tue, 19 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Chen, Evelyn</name>
      </author>
      <author>
        <name>Lin-Shiao, Enrique</name>
      </author>
      <author>
        <name>Trinidad, Marena</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Doost, Mohammad Saffari</name>
      </author>
      <author>
        <name>Colognori, David</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Molecular targeting of papillary thyroid carcinoma with fluorescently labeled ratiometric activatable cell penetrating peptides in a transgenic murine model</title>
      <link>https://escholarship.org/uc/item/9t5426k7</link>
      <description>BACKGROUND AND OBJECTIVES: Molecularly targeted fluorescent molecules may help detect tumors that are unseen by traditional white-light surgical techniques. We sought to evaluate a fluorescent ratiometric activatable cell penetrating peptide (RACPP) for tumor detection in a transgenic model of PTC.
METHODS: Thirteen BRAFV600E mice with PTC were studied-seven injected intravenously with RACPP, four controls with saline. Total thyroidectomy was performed with microscopic white-light visualization. Fluorescent imaging of post-thyroidectomy fields was performed, and tissue with increased signal was removed and evaluated for PTC. Final samples were analyzed by a pathologist blinded to conditions. Vocal cord function was evaluated postoperatively with video laryngoscopy.
RESULTS: The average in situ ratiometric (Cy5/Cy7) thyroid tumor-to-background contrast ratio was 2.27 +/- 0.91. Fluorescence-guided clean-up following thyroidectomy identified additional tumor in 2 of 7 RACPP animals...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/9t5426k7</guid>
      <pubDate>Mon, 18 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Orosco, Ryan K</name>
        <uri>https://orcid.org/0000-0002-7885-4327</uri>
      </author>
      <author>
        <name>Savariar, Elamprakash N</name>
      </author>
      <author>
        <name>Weissbrod, Philip A</name>
      </author>
      <author>
        <name>Diaz-Perez, Julio A</name>
      </author>
      <author>
        <name>Bouvet, Michael</name>
        <uri>https://orcid.org/0000-0002-0086-2159</uri>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
      <author>
        <name>Nguyen, Quyen T</name>
      </author>
    </item>
    <item>
      <title>Surgical molecular navigation with ratiometric activatable cell penetrating peptide for intraoperative identification and resection of small salivary gland cancers</title>
      <link>https://escholarship.org/uc/item/9m3539xv</link>
      <description>BACKGROUND: We evaluated the use of intraoperative fluorescence guidance by enzymatically cleavable ratiometric activatable cell-penetrating peptide (RACPPPLGC(Me)AG) containing Cy5 as a fluorescent donor and Cy7 as a fluorescent acceptor for salivary gland cancer surgery in a mouse model.
METHODS: Surgical resection of small parotid gland cancers in mice was performed with fluorescence guidance or white light (WL) imaging alone. Tumor identification accuracy, operating time, and tumor-free survival were compared.
RESULTS: RACPP guidance aided tumor detection (positive histology in 90% [27/30] vs 48% [15/31] for WL; p &amp;lt; .001). An approximate 25% ratiometric signal increase as the threshold to distinguish between tumor and adjacent tissue, yielded &amp;gt;90% detection sensitivity and specificity. Operating time was reduced by 54% (p &amp;lt; .001), and tumor-free survival was increased with RACPP guidance (p = .025).
CONCLUSION: RACPP provides real-time intraoperative guidance leading...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/9m3539xv</guid>
      <pubDate>Mon, 18 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Hussain, Timon</name>
      </author>
      <author>
        <name>Savariar, Elamprakash N</name>
      </author>
      <author>
        <name>Diaz-Perez, Julio A</name>
      </author>
      <author>
        <name>Messer, Karen</name>
      </author>
      <author>
        <name>Pu, Minya</name>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
      <author>
        <name>Nguyen, Quyen T</name>
      </author>
    </item>
    <item>
      <title>Lys49 myotoxin from the Brazilian lancehead pit viper elicits pain through regulated ATP release</title>
      <link>https://escholarship.org/uc/item/8k57f4qw</link>
      <description>Pain-producing animal venoms contain evolutionarily honed toxins that can be exploited to study and manipulate somatosensory and nociceptive signaling pathways. From a functional screen, we have identified a secreted phospholipase A2 (sPLA2)-like protein, BomoTx, from the Brazilian lancehead pit viper (&lt;i&gt;Bothrops moojeni&lt;/i&gt;). BomoTx is closely related to a group of Lys49 myotoxins that have been shown to promote ATP release from myotubes through an unknown mechanism. Here we show that BomoTx excites a cohort of sensory neurons via ATP release and consequent activation of P2X&lt;sub&gt;2&lt;/sub&gt; and/or P2X&lt;sub&gt;3&lt;/sub&gt; purinergic receptors. We provide pharmacological and electrophysiological evidence to support pannexin hemichannels as downstream mediators of toxin-evoked ATP release. At the behavioral level, BomoTx elicits nonneurogenic inflammatory pain, thermal hyperalgesia, and mechanical allodynia, of which the latter is completely dependent on purinergic signaling. Thus, we reveal...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/8k57f4qw</guid>
      <pubDate>Mon, 18 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Zhang, Chuchu</name>
        <uri>https://orcid.org/0000-0001-9234-6073</uri>
      </author>
      <author>
        <name>Medzihradszky, Katalin F</name>
      </author>
      <author>
        <name>Sánchez, Elda E</name>
      </author>
      <author>
        <name>Basbaum, Allan I</name>
        <uri>https://orcid.org/0000-0002-1710-6333</uri>
      </author>
      <author>
        <name>Julius, David</name>
        <uri>https://orcid.org/0000-0002-6365-4867</uri>
      </author>
    </item>
    <item>
      <title>Precise transcript targeting by CRISPR-Csm complexes</title>
      <link>https://escholarship.org/uc/item/67q9d1d6</link>
      <description>Robust and precise transcript targeting in mammalian cells remains a difficult challenge using existing approaches due to inefficiency, imprecision and subcellular compartmentalization. Here we show that the clustered regularly interspaced short palindromic repeats (CRISPR)-Csm complex, a multiprotein effector from type III CRISPR immune systems in prokaryotes, provides surgical RNA ablation of both nuclear and cytoplasmic transcripts. As part of the most widely occurring CRISPR adaptive immune pathway, CRISPR-Csm uses a programmable RNA-guided mechanism to find and degrade target RNA molecules without inducing indiscriminate trans-cleavage of cellular RNAs, giving it an important advantage over the CRISPR-Cas13 family of enzymes. Using single-vector delivery of the Streptococcus thermophilus Csm complex, we observe high-efficiency RNA knockdown (90–99%) and minimal off-target effects in human cells, outperforming existing technologies including short hairpin RNA- and Cas13-mediated...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/67q9d1d6</guid>
      <pubDate>Mon, 18 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Colognori, David</name>
      </author>
      <author>
        <name>Trinidad, Marena</name>
        <uri>https://orcid.org/0000-0001-7839-4642</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>The Growing and Glowing Toolbox of Fluorescent and Photoactive Proteins</title>
      <link>https://escholarship.org/uc/item/3nm3v04j</link>
      <description>Over the past 20 years, protein engineering has been extensively used to improve and modify the fundamental properties of fluorescent proteins (FPs) with the goal of adapting them for a fantastic range of applications. FPs have been modified by a combination of rational design, structure-based mutagenesis, and countless cycles of directed evolution (gene diversification followed by selection of clones with desired properties) that have collectively pushed the properties to photophysical and biochemical extremes. In this review, we provide both a summary of the progress that has been made during the past two decades, and a broad overview of the current state of FP development and applications in mammalian systems.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/3nm3v04j</guid>
      <pubDate>Mon, 18 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Rodriguez, Erik A</name>
      </author>
      <author>
        <name>Campbell, Robert E</name>
      </author>
      <author>
        <name>Lin, John Y</name>
      </author>
      <author>
        <name>Lin, Michael Z</name>
      </author>
      <author>
        <name>Miyawaki, Atsushi</name>
      </author>
      <author>
        <name>Palmer, Amy E</name>
      </author>
      <author>
        <name>Shu, Xiaokun</name>
      </author>
      <author>
        <name>Zhang, Jin</name>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
    </item>
    <item>
      <title>Multicolor Electron Microscopy for Simultaneous Visualization of Multiple Molecular Species</title>
      <link>https://escholarship.org/uc/item/32g4j0hr</link>
      <description>Electron microscopy (EM) remains the primary method for imaging cellular and tissue ultrastructure, although simultaneous localization of multiple specific molecules continues to be a challenge for EM. We present a method for obtaining multicolor EM views of multiple subcellular components. The method uses sequential, localized deposition of different lanthanides by photosensitizers, small-molecule probes, or peroxidases. Detailed view of biological structures is created by overlaying conventional electron micrographs with pseudocolor lanthanide elemental maps derived from distinctive electron energy-loss spectra of each lanthanide deposit via energy-filtered transmission electron microscopy. This results in multicolor EM images analogous to multicolor fluorescence but with the benefit of the full spatial resolution of EM. We illustrate the power of this methodology by visualizing hippocampal astrocytes to show that processes from two astrocytes can share a single synapse. We...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/32g4j0hr</guid>
      <pubDate>Mon, 18 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Adams, Stephen R</name>
      </author>
      <author>
        <name>Mackey, Mason R</name>
      </author>
      <author>
        <name>Ramachandra, Ranjan</name>
      </author>
      <author>
        <name>Lemieux, Sakina F Palida</name>
      </author>
      <author>
        <name>Steinbach, Paul</name>
      </author>
      <author>
        <name>Bushong, Eric A</name>
      </author>
      <author>
        <name>Butko, Margaret T</name>
      </author>
      <author>
        <name>Giepmans, Ben NG</name>
      </author>
      <author>
        <name>Ellisman, Mark H</name>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
    </item>
    <item>
      <title>Paramagnetic fluorinated nanoemulsions for sensitive cellular fluorine-19 magnetic resonance imaging</title>
      <link>https://escholarship.org/uc/item/2436k0zs</link>
      <description>Fluorine-19 magnetic resonance imaging (19F MRI) probes enable quantitative in&amp;nbsp;vivo detection of cell therapies and inflammatory cells. Here, we describe the formulation of perfluorocarbon-based nanoemulsions with improved sensitivity for cellular MRI. Reduction of the 19F spin–lattice relaxation time (T1) enables rapid imaging and an improved signal-to-noise ratio, thereby improving cell detection sensitivity. We synthesized metal-binding β-diketones conjugated to linear perfluoropolyether (PFPE), formulated these fluorinated ligands as aqueous nanoemulsions, and then metallated them with various transition and lanthanide ions in the fluorous phase. Iron(III) tris-β-diketonate (‘FETRIS’) nanoemulsions with PFPE have low cytotoxicity (&amp;lt;20%) and superior MRI properties. Moreover, the 19F T1 can readily be reduced by an order of magnitude and tuned by stoichiometric modulation of the iron concentration. The resulting 19F MRI detection sensitivity is enhanced by three- to...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/2436k0zs</guid>
      <pubDate>Mon, 18 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Kislukhin, Alexander A</name>
      </author>
      <author>
        <name>Xu, Hongyan</name>
      </author>
      <author>
        <name>Adams, Stephen R</name>
      </author>
      <author>
        <name>Narsinh, Kazim H</name>
        <uri>https://orcid.org/0000-0002-2019-5461</uri>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
      <author>
        <name>Ahrens, Eric T</name>
      </author>
    </item>
    <item>
      <title>Gelatinase activity imaged by activatable cell-penetrating peptides in cell-based and in vivo models of stroke</title>
      <link>https://escholarship.org/uc/item/18j2h49n</link>
      <description>Matrix metalloproteinases (MMPs), particularly gelatinases (MMP-2/-9), are involved in neurovascular impairment after stroke. Detection of gelatinase activity in&amp;nbsp;vivo can provide insight into blood-brain barrier disruption, hemorrhage, and nerve cell injury or death. We applied gelatinase-activatable cell-penetrating peptides (ACPP) with a cleavable l-amino acid linker to examine gelatinase activity in primary neurons in culture and ischemic mouse brain in&amp;nbsp;vivo We found uptake of Cy5-conjugated ACPP (ACPP-Cy5) due to gelatinase activation both in cultured neurons exposed to n-methyl-d-aspartate and in mice after cerebral ischemia. Fluorescence intensity was significantly reduced when cells or mice were treated with MMP inhibitors or when a cleavage-resistant ACPP-Cy5 was substituted. We also applied an ACPP dendrimer (ACPPD) conjugated with multiple Cy5 and/or gadolinium moieties for fluorescence and magnetic resonance imaging (MRI) in intact animals. Fluorescence analysis...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/18j2h49n</guid>
      <pubDate>Mon, 18 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Chen, Shanyan</name>
      </author>
      <author>
        <name>Cui, Jiankun</name>
      </author>
      <author>
        <name>Jiang, Tao</name>
      </author>
      <author>
        <name>Olson, Emilia S</name>
      </author>
      <author>
        <name>Cai, Quan-Yu</name>
      </author>
      <author>
        <name>Yang, Ming</name>
      </author>
      <author>
        <name>Wu, Wei</name>
      </author>
      <author>
        <name>Guthrie, James M</name>
      </author>
      <author>
        <name>Robertson, JD</name>
      </author>
      <author>
        <name>Lipton, Stuart A</name>
        <uri>https://orcid.org/0000-0002-3490-1259</uri>
      </author>
      <author>
        <name>Ma, Lixin</name>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
      <author>
        <name>Gu, Zezong</name>
      </author>
    </item>
    <item>
      <title>Ratiometric Activatable Cell-Penetrating Peptides Label Pancreatic Cancer, Enabling Fluorescence-Guided Surgery, Which Reduces Metastases and Recurrence in Orthotopic Mouse Models</title>
      <link>https://escholarship.org/uc/item/8pq5x931</link>
      <description>BackgroundThe aim of this study was to evaluate the efficacy of using matrix metalloproteinase-2 (MMP-2) and matrix metalloproteinase-9 (MMP-9)-cleavable ratiometric activatable cell-penetrating peptides (RACPPs) conjugated to Cy5 and Cy7 fluorophores to accurately label pancreatic cancer for fluorescence-guided surgery (FGS) in an orthotopic mouse model.MethodsOrthotopic mouse models were established using MiaPaCa-2-GFP human pancreatic cancer cells. Two weeks after implantation, tumor-bearing mice were randomized to conventional white light reflectance (WLR) surgery or FGS. FGS was performed at far-red and infrared wavelengths with a customized fluorescence-dissecting microscope 2&amp;nbsp;h after injection of MMP-2 and MMP-9-cleavable RACPPs. Green fluorescence imaging of the GFP-labeled cancer cells was used to assess the effectiveness of surgical resection and monitor recurrence. At 8&amp;nbsp;weeks, mice were sacrificed to evaluate tumor burden and metastases.ResultsMice in the...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/8pq5x931</guid>
      <pubDate>Sun, 17 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Metildi, Cristina A</name>
      </author>
      <author>
        <name>Felsen, Csilla N</name>
      </author>
      <author>
        <name>Savariar, Elamprakash N</name>
      </author>
      <author>
        <name>Nguyen, Quyen T</name>
      </author>
      <author>
        <name>Kaushal, Sharmeela</name>
      </author>
      <author>
        <name>Hoffman, Robert M</name>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
      <author>
        <name>Bouvet, Michael</name>
        <uri>https://orcid.org/0000-0002-0086-2159</uri>
      </author>
    </item>
    <item>
      <title>Matrix‐Metalloproteinases in Head and Neck Carcinoma–Cancer Genome Atlas Analysis and Fluorescence Imaging in Mice</title>
      <link>https://escholarship.org/uc/item/7c70t78h</link>
      <description>OBJECTIVE: (1) Obtain matrix-metalloproteinase (MMP) expression profiles for head and neck squamous cell carcinoma (HNSCC) specimens from the Cancer Genomic Atlas (TCGA). (2) Demonstrate HNSCC imaging using MMP-cleavable, fluorescently labeled ratiometric activatable cell-penetrating peptide (RACPP).
STUDY DESIGN: Retrospective human cohort study; prospective animal study.
SETTING: Translational research laboratory.
SUBJECTS AND METHODS: Patient clinical data and mRNA expression levels of MMP genes were downloaded from TCGA data portal. RACPP provides complementary ratiometric fluorescent contrast (increased Cy5 and decreased Cy7 intensities) when cleaved by MMP2/9. HNSCC-tumor bearing mice were imaged in vivo after RACPP injection. Histology was evaluated by a pathologist blinded to experimental conditions. Zymography confirmed MMP-2/9 activity in xenografts. RACPP was applied to homogenized human HNSCC specimens, and ratiometric fluorescent signal was measured on a microplate...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/7c70t78h</guid>
      <pubDate>Sun, 17 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Hauff, Samantha J</name>
      </author>
      <author>
        <name>Raju, Sharat C</name>
      </author>
      <author>
        <name>Orosco, Ryan K</name>
        <uri>https://orcid.org/0000-0002-7885-4327</uri>
      </author>
      <author>
        <name>Gross, Andrew M</name>
      </author>
      <author>
        <name>Diaz‐Perez, Julio A</name>
      </author>
      <author>
        <name>Savariar, Elamprakash</name>
      </author>
      <author>
        <name>Nashi, Nadia</name>
      </author>
      <author>
        <name>Hasselman, Jonathan</name>
      </author>
      <author>
        <name>Whitney, Michael</name>
      </author>
      <author>
        <name>Myers, Jeffrey N</name>
      </author>
      <author>
        <name>Lippman, Scott M</name>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
      <author>
        <name>Ideker, Trey</name>
      </author>
      <author>
        <name>Nguyen, Quyen T</name>
      </author>
    </item>
    <item>
      <title>Combined TP53 mutation/3p loss correlates with decreased radiosensitivity and increased matrix-metalloproteinase activity in head and neck carcinoma</title>
      <link>https://escholarship.org/uc/item/31s1w90w</link>
      <description>OBJECTIVE: Patients with head and neck squamous cell carcinoma (HNSCC) containing TP53 mutation and 3p deletion ("double-hit") have poorer prognosis compared to patients with either event alone ("single-hit"). The etiology for worse clinical outcomes in patients with "double-hit" cancers is unclear. We compared radiosensitivity of cell lines containing both TP53 mutations and deletion of Fragile Histidine Triad (FHIT, the gene most commonly associated with 3p deletion) to "single-hit" lines with only TP53 mutation. We compared radiosensitivity in a "single-hit" cell line with TP53 mutation converted to "double-hit" using RNA interference targeting FHIT. Finally, we compared matrixmetalloproteinase-2/9 (MMP-2/9) activity, a previously-established biomarker for tumor aggressiveness, in xenograft tumors derived from these cell lines.
MATERIALS/METHODS: TP53 mutation and FHIT deletion profiles of HNSCC lines were established using Cancer Cell Line Encyclopedia (CCLE). We used RNA-interference...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/31s1w90w</guid>
      <pubDate>Sun, 17 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Raju, Sharat C</name>
      </author>
      <author>
        <name>Hauff, Samantha J</name>
      </author>
      <author>
        <name>Lemieux, Aaron J</name>
      </author>
      <author>
        <name>Orosco, Ryan K</name>
        <uri>https://orcid.org/0000-0002-7885-4327</uri>
      </author>
      <author>
        <name>Gross, Andrew M</name>
      </author>
      <author>
        <name>Nguyen, Linda T</name>
      </author>
      <author>
        <name>Savariar, Elamprakash</name>
      </author>
      <author>
        <name>Moss, William</name>
      </author>
      <author>
        <name>Whitney, Michael</name>
      </author>
      <author>
        <name>Cohen, Ezra E</name>
      </author>
      <author>
        <name>Lippman, Scott M</name>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
      <author>
        <name>Ideker, Trey</name>
      </author>
      <author>
        <name>Advani, Sunil J</name>
      </author>
      <author>
        <name>Nguyen, Quyen T</name>
      </author>
    </item>
    <item>
      <title>PKMζ, But Not PKCλ, Is Rapidly Synthesized and Degraded at the Neuronal Synapse</title>
      <link>https://escholarship.org/uc/item/00x615ws</link>
      <description>Synthesizing, localizing, and stabilizing new protein copies at synapses are crucial factors in maintaining the synaptic changes required for storing long-term memories. PKMζ recently emerged as a molecule putatively responsible for maintaining encoded memories over time because its presence correlates with late LTP and because its inhibition disrupts LTP in vitro and long-term memory storage in vivo. Here we investigated PKMζ stability in rat neurons to better understand its role during information encoding and storage. We used TimeSTAMP reporters to track the synthesis and degradation of PKMζ as well as a related atypical PKC, PKCλ. These reporters revealed that both PKMζ and PKCλ were upregulated after chemical LTP induction; however, these new PKMζ copies exhibited more rapid turnover than basally produced PKMζ, particularly in dendritic spines. In contrast to PKMζ, new PKCλ copies exhibited elevated stability. Stable information storage over long periods of time is more challenging...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/00x615ws</guid>
      <pubDate>Sun, 17 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Palida, Sakina F</name>
      </author>
      <author>
        <name>Butko, Margaret T</name>
      </author>
      <author>
        <name>Ngo, John T</name>
      </author>
      <author>
        <name>Mackey, Mason R</name>
      </author>
      <author>
        <name>Gross, Larry A</name>
      </author>
      <author>
        <name>Ellisman, Mark H</name>
      </author>
      <author>
        <name>Tsien, Roger Y</name>
      </author>
    </item>
    <item>
      <title>CRISPR–Cas9 genome engineering of primary CD4+ T cells for the interrogation of HIV–host factor interactions</title>
      <link>https://escholarship.org/uc/item/3g88s3hm</link>
      <description>CRISPR–Cas9 gene-editing strategies have revolutionized our ability to engineer the human genome for robust functional interrogation of complex biological processes. We have recently adapted this technology for use in primary human CD4+ T cells to create a high-throughput platform for analyzing the role of host factors in HIV infection and pathogenesis. Briefly, CRISPR–Cas9 ribonucleoproteins (crRNPs) are synthesized in vitro and delivered to activated CD4+ T cells by nucleofection. These cells are then assayed for editing efficiency and expanded for use in downstream cellular, genetic, or protein-based assays. This platform supports the rapid, arrayed generation of multiple gene manipulations and is widely adaptable across culture conditions, infection protocols, and downstream applications. Here, we present detailed protocols for crRNP synthesis, primary T-cell culture, 96-well nucleofection, molecular validation, and HIV infection, and discuss additional considerations for...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/3g88s3hm</guid>
      <pubDate>Sat, 9 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Hultquist, Judd F</name>
      </author>
      <author>
        <name>Hiatt, Joseph</name>
      </author>
      <author>
        <name>Schumann, Kathrin</name>
      </author>
      <author>
        <name>McGregor, Michael J</name>
      </author>
      <author>
        <name>Roth, Theodore L</name>
      </author>
      <author>
        <name>Haas, Paige</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Marson, Alexander</name>
        <uri>https://orcid.org/0000-0002-2734-5776</uri>
      </author>
      <author>
        <name>Krogan, Nevan J</name>
      </author>
    </item>
    <item>
      <title>Structure of the human TRPM4 ion channel in a lipid nanodisc</title>
      <link>https://escholarship.org/uc/item/1n54z3pk</link>
      <description>Transient receptor potential (TRP) melastatin 4 (TRPM4) is a widely expressed cation channel associated with a variety of cardiovascular disorders. TRPM4 is activated by increased intracellular calcium in a voltage-dependent manner but, unlike many other TRP channels, is permeable to monovalent cations only. Here we present two structures of full-length human TRPM4 embedded in lipid nanodiscs at ~3-angstrom resolution, as determined by single-particle cryo-electron microscopy. These structures, with and without calcium bound, reveal a general architecture for this major subfamily of TRP channels and a well-defined calcium-binding site within the intracellular side of the S1-S4 domain. The structures correspond to two distinct closed states. Calcium binding induces conformational changes that likely prime the channel for voltage-dependent opening.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/1n54z3pk</guid>
      <pubDate>Sat, 9 Sep 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Autzen, Henriette E</name>
      </author>
      <author>
        <name>Myasnikov, Alexander G</name>
      </author>
      <author>
        <name>Campbell, Melody G</name>
      </author>
      <author>
        <name>Asarnow, Daniel</name>
      </author>
      <author>
        <name>Julius, David</name>
        <uri>https://orcid.org/0000-0002-6365-4867</uri>
      </author>
      <author>
        <name>Cheng, Yifan</name>
        <uri>https://orcid.org/0000-0001-9535-0369</uri>
      </author>
    </item>
    <item>
      <title>Uniform Recalibration of Common Spectrophotometry Standard Stars onto the CALSPEC System Using the SuperNova Integral Field Spectrograph</title>
      <link>https://escholarship.org/uc/item/2w77122v</link>
      <description>We calibrate spectrophotometric optical spectra of 32 stars commonly used as standard stars, referenced to 14 stars already on the Hubble Space Telescope–based CALSPEC flux system. Observations of CALSPEC and non-CALSPEC stars were obtained with the SuperNova Integral Field Spectrograph over the wavelength range 3300–9400 Å as calibration for the Nearby Supernova Factory cosmology experiment. In total, this analysis used 4289 standard-star spectra taken on photometric nights. As a modern cosmology analysis, all presubmission methodological decisions were made with the flux scale and external comparison results blinded. The large number of spectra per star allows us to treat the wavelength-by-wavelength calibration for all nights simultaneously with a Bayesian hierarchical model, thereby enabling a consistent treatment of the Type Ia supernova cosmology analysis and the calibration on which it critically relies. We determine the typical per-observation repeatability (median 14...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/2w77122v</guid>
      <pubDate>Mon, 24 Jul 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Rubin, David</name>
        <uri>https://orcid.org/0000-0001-5402-4647</uri>
      </author>
      <author>
        <name>Aldering, G</name>
      </author>
      <author>
        <name>Antilogus, P</name>
      </author>
      <author>
        <name>Aragon, C</name>
      </author>
      <author>
        <name>Bailey, S</name>
        <uri>https://orcid.org/0000-0003-4162-6619</uri>
      </author>
      <author>
        <name>Baltay, C</name>
      </author>
      <author>
        <name>Bongard, S</name>
      </author>
      <author>
        <name>Boone, K</name>
      </author>
      <author>
        <name>Buton, C</name>
      </author>
      <author>
        <name>Copin, Y</name>
      </author>
      <author>
        <name>Dixon, S</name>
      </author>
      <author>
        <name>Fouchez, D</name>
      </author>
      <author>
        <name>Gangler, E</name>
      </author>
      <author>
        <name>Gupta, R</name>
      </author>
      <author>
        <name>Hayden, B</name>
      </author>
      <author>
        <name>Hillebrandt, W</name>
      </author>
      <author>
        <name>Kim, AG</name>
        <uri>https://orcid.org/0000-0001-6315-8743</uri>
      </author>
      <author>
        <name>Kowalski, M</name>
      </author>
      <author>
        <name>Küsters, D</name>
      </author>
      <author>
        <name>Léget, P-F</name>
      </author>
      <author>
        <name>Mondon, F</name>
      </author>
      <author>
        <name>Nordin, J</name>
      </author>
      <author>
        <name>Pain, R</name>
      </author>
      <author>
        <name>Pecontal, E</name>
      </author>
      <author>
        <name>Pereira, R</name>
      </author>
      <author>
        <name>Perlmutter, S</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Ponder, KA</name>
      </author>
      <author>
        <name>Rabinowitz, D</name>
      </author>
      <author>
        <name>Rigault, M</name>
      </author>
      <author>
        <name>Runge, K</name>
      </author>
      <author>
        <name>Saunders, C</name>
      </author>
      <author>
        <name>Smadja, G</name>
      </author>
      <author>
        <name>Suzuki, N</name>
      </author>
      <author>
        <name>Tao, C</name>
      </author>
      <author>
        <name>Taubenberger, S</name>
      </author>
      <author>
        <name>Thomas, RC</name>
      </author>
      <author>
        <name>Vincenzi, M</name>
      </author>
    </item>
    <item>
      <title>Rapid assembly of SARS-CoV-2 genomes reveals attenuation of the Omicron BA.1 variant through NSP6</title>
      <link>https://escholarship.org/uc/item/3pp2c8hg</link>
      <description>Although the SARS-CoV-2 Omicron variant (BA.1) spread rapidly across the world and effectively evaded immune responses, its viral fitness in cell and animal models was reduced. The precise nature of this attenuation remains unknown as generating replication-competent viral genomes is challenging because of the length of the viral genome (~30 kb). Here, we present a plasmid-based viral genome assembly and rescue strategy (pGLUE) that constructs complete infectious viruses or noninfectious subgenomic replicons in a single ligation reaction with &amp;gt;80% efficiency. Fully sequenced replicons and infectious viral stocks can be generated in 1 and 3 weeks, respectively. By testing a series of naturally occurring viruses as well as Delta-Omicron chimeric replicons, we show that Omicron nonstructural protein 6 harbors critical attenuating mutations, which dampen viral RNA replication and reduce lipid droplet consumption. Thus, pGLUE overcomes remaining barriers to broadly study SARS-CoV-2...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/3pp2c8hg</guid>
      <pubDate>Sat, 15 Jul 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Taha, Taha Y</name>
      </author>
      <author>
        <name>Chen, Irene P</name>
      </author>
      <author>
        <name>Hayashi, Jennifer M</name>
      </author>
      <author>
        <name>Tabata, Takako</name>
      </author>
      <author>
        <name>Walcott, Keith</name>
      </author>
      <author>
        <name>Kimmerly, Gabriella R</name>
      </author>
      <author>
        <name>Syed, Abdullah M</name>
      </author>
      <author>
        <name>Ciling, Alison</name>
      </author>
      <author>
        <name>Suryawanshi, Rahul K</name>
      </author>
      <author>
        <name>Martin, Hannah S</name>
      </author>
      <author>
        <name>Bach, Bryan H</name>
      </author>
      <author>
        <name>Tsou, Chia-Lin</name>
      </author>
      <author>
        <name>Montano, Mauricio</name>
      </author>
      <author>
        <name>Khalid, Mir M</name>
      </author>
      <author>
        <name>Sreekumar, Bharath K</name>
      </author>
      <author>
        <name>Renuka Kumar, G</name>
      </author>
      <author>
        <name>Wyman, Stacia</name>
        <uri>https://orcid.org/0000-0002-8937-8397</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Ott, Melanie</name>
        <uri>https://orcid.org/0000-0002-5697-1274</uri>
      </author>
    </item>
    <item>
      <title>Borgs are giant genetic elements with potential to expand metabolic capacity</title>
      <link>https://escholarship.org/uc/item/5675b17c</link>
      <description>Anaerobic methane oxidation exerts a key control on greenhouse gas emissions1, yet factors that modulate the activity of microorganisms performing this function remain poorly understood. Here we discovered extraordinarily large, diverse DNA sequences that primarily encode hypothetical proteins through studying groundwater, sediments and wetland soil where methane production and oxidation occur. Four curated, complete genomes are linear, up to approximately 1 Mb in length and share genome organization, including replichore structure, long inverted terminal repeats and genome-wide unique perfect tandem direct repeats that are intergenic or generate amino acid repeats. We infer that these are highly divergent archaeal extrachromosomal elements with a distinct evolutionary origin. Gene sequence similarity, phylogeny and local divergence of sequence composition indicate that many of their genes were assimilated from methane-oxidizing Methanoperedens archaea. We refer to these elements...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5675b17c</guid>
      <pubDate>Thu, 6 Jul 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Al-Shayeb, Basem</name>
      </author>
      <author>
        <name>Schoelmerich, Marie C</name>
        <uri>https://orcid.org/0000-0001-7679-0043</uri>
      </author>
      <author>
        <name>West-Roberts, Jacob</name>
      </author>
      <author>
        <name>Valentin-Alvarado, Luis E</name>
      </author>
      <author>
        <name>Sachdeva, Rohan</name>
      </author>
      <author>
        <name>Mullen, Susan</name>
      </author>
      <author>
        <name>Crits-Christoph, Alexander</name>
      </author>
      <author>
        <name>Wilkins, Michael J</name>
      </author>
      <author>
        <name>Williams, Kenneth H</name>
        <uri>https://orcid.org/0000-0002-3568-1155</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Banfield, Jillian F</name>
      </author>
    </item>
    <item>
      <title>A step-by-step protocol for capturing conformational snapshots of ligand gated ion channels by single-particle cryo-EM</title>
      <link>https://escholarship.org/uc/item/8sc7r1t8</link>
      <description>Capturing conformational snapshots by single-particle cryo-EM facilitates the analysis of ligand binding and activation mechanisms for ion channels and other receptor complexes. Here, we present a protocol to capture intermediate states of nanodisc-reconstituted TRPV1. This protocol covers sample preparation, data acquisition, and image processing with focuses on the symmetry expansion and focused 3D classification. This protocol can be adapted to different proteins and samples. For complete details on the use and execution of this protocol, please refer to Zhang et&amp;nbsp;al. (2021).</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/8sc7r1t8</guid>
      <pubDate>Wed, 5 Jul 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Zhang, Kaihua</name>
      </author>
      <author>
        <name>Julius, David</name>
        <uri>https://orcid.org/0000-0002-6365-4867</uri>
      </author>
      <author>
        <name>Cheng, Yifan</name>
        <uri>https://orcid.org/0000-0001-9535-0369</uri>
      </author>
    </item>
    <item>
      <title>Sensory TRP Channels in Three Dimensions</title>
      <link>https://escholarship.org/uc/item/09t5t6tt</link>
      <description>Transient receptor potential (TRP) ion channels are sophisticated signaling machines that detect a wide variety of environmental and physiological signals. Every cell in the body expresses one or more members of the extended TRP channel family, which consists of over 30 subtypes, each likely possessing distinct pharmacological, biophysical, and/or structural attributes. While the function of some TRP subtypes remains enigmatic, those involved in sensory signaling are perhaps best characterized and have served as models for understanding how these excitatory ion channels serve as polymodal signal integrators. With the recent resolution revolution in cryo-electron microscopy, these and other TRP channel subtypes are now yielding their secrets to detailed atomic analysis, which is beginning to reveal structural underpinnings of stimulus detection and gating, ion permeation, and allosteric mechanisms governing signal integration. These insights are providing a framework for designing...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/09t5t6tt</guid>
      <pubDate>Thu, 29 Jun 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Diver, Melinda M</name>
      </author>
      <author>
        <name>King, John V Lin</name>
      </author>
      <author>
        <name>Julius, David</name>
        <uri>https://orcid.org/0000-0002-6365-4867</uri>
      </author>
      <author>
        <name>Cheng, Yifan</name>
        <uri>https://orcid.org/0000-0001-9535-0369</uri>
      </author>
    </item>
    <item>
      <title>Chimeric CRISPR-CasX enzymes and guide RNAs for improved genome editing activity</title>
      <link>https://escholarship.org/uc/item/4g16f75d</link>
      <description>A compact protein with a size of &amp;lt;1,000 amino acids, the CRISPR-associated protein CasX is a fundamentally distinct RNA-guided nuclease when compared to Cas9 and Cas12a. Although it can induce RNA-guided genome editing in mammalian cells, the activity of CasX is less robust than that of the widely used S.&amp;nbsp;pyogenes Cas9. Here, we show that structural features of two CasX homologs and their guide RNAs affect the R-loop complex assembly and DNA cleavage activity. Cryo-EM-based structural engineering of either the CasX protein or the guide RNA produced two new CasX genome editors (DpbCasX-R3-v2 and PlmCasX-R1-v2) with significantly improved DNA manipulation efficacy. These results advance both the mechanistic understanding of CasX and its application as a genome-editing tool.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/4g16f75d</guid>
      <pubDate>Wed, 28 Jun 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Tsuchida, Connor A</name>
      </author>
      <author>
        <name>Zhang, Shouyue</name>
      </author>
      <author>
        <name>Doost, Mohammad Saffari</name>
      </author>
      <author>
        <name>Zhao, Yuqian</name>
      </author>
      <author>
        <name>Wang, Jia</name>
      </author>
      <author>
        <name>O'Brien, Elizabeth</name>
      </author>
      <author>
        <name>Fang, Huan</name>
      </author>
      <author>
        <name>Li, Cheng-Ping</name>
      </author>
      <author>
        <name>Li, Danyuan</name>
      </author>
      <author>
        <name>Hai, Zhuo-Yan</name>
      </author>
      <author>
        <name>Chuck, Jonathan</name>
      </author>
      <author>
        <name>Brötzmann, Julian</name>
      </author>
      <author>
        <name>Vartoumian, Araz</name>
      </author>
      <author>
        <name>Burstein, David</name>
      </author>
      <author>
        <name>Chen, Xiao-Wei</name>
      </author>
      <author>
        <name>Nogales, Eva</name>
        <uri>https://orcid.org/0000-0001-9816-3681</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
      <author>
        <name>Liu, Jun-Jie Gogo</name>
      </author>
    </item>
    <item>
      <title>DNA interference states of the hypercompact CRISPR–CasΦ effector</title>
      <link>https://escholarship.org/uc/item/5d86q6t1</link>
      <description>CRISPR–CasΦ, a small RNA-guided enzyme found uniquely in bacteriophages, achieves programmable DNA cutting as well as genome editing. To investigate how the hypercompact enzyme recognizes and cleaves double-stranded DNA, we determined cryo-EM structures of CasΦ (Cas12j) in pre- and post-DNA-binding states. The structures reveal a streamlined protein architecture that tightly encircles the CRISPR RNA and DNA target to capture, unwind and cleave DNA. Comparison of the pre- and post-DNA-binding states reveals how the protein rearranges for DNA cleavage upon target recognition. On the basis of these structures, we created and tested mutant forms of CasΦ that cut DNA up to 20-fold faster relative to wild type, showing how this system may be naturally attenuated to improve the fidelity of DNA interference. The structural and mechanistic insights into how CasΦ binds and cleaves DNA should allow for protein engineering for both in vitro diagnostics and genome editing.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5d86q6t1</guid>
      <pubDate>Sat, 24 Jun 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Pausch, Patrick</name>
      </author>
      <author>
        <name>Soczek, Katarzyna M</name>
      </author>
      <author>
        <name>Herbst, Dominik A</name>
      </author>
      <author>
        <name>Tsuchida, Connor A</name>
      </author>
      <author>
        <name>Al-Shayeb, Basem</name>
      </author>
      <author>
        <name>Banfield, Jillian F</name>
      </author>
      <author>
        <name>Nogales, Eva</name>
        <uri>https://orcid.org/0000-0001-9816-3681</uri>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Pharmacology of the Nav1.1 domain IV voltage sensor reveals coupling between inactivation gating processes</title>
      <link>https://escholarship.org/uc/item/36f012n1</link>
      <description>The Na&lt;sub&gt;v&lt;/sub&gt;1.1 voltage-gated sodium channel is a critical contributor to excitability in the brain, where pathological loss of function leads to such disorders as epilepsy, Alzheimer's disease, and autism. This voltage-gated sodium (Na&lt;sub&gt;v&lt;/sub&gt;) channel subtype also plays an important role in mechanical pain signaling by primary afferent somatosensory neurons. Therefore, pharmacologic modulation of Na&lt;sub&gt;v&lt;/sub&gt;1.1 represents a potential strategy for treating excitability disorders of the brain and periphery. Inactivation is a complex aspect of Na&lt;sub&gt;v&lt;/sub&gt; channel gating and consists of fast and slow components, each of which may involve a contribution from one or more voltage-sensing domains. Here, we exploit the Hm1a spider toxin, a Na&lt;sub&gt;v&lt;/sub&gt;1.1-selective modulator, to better understand the relationship between these temporally distinct modes of inactivation and ask whether they can be distinguished pharmacologically. We show that Hm1a inhibits the gating...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/36f012n1</guid>
      <pubDate>Sat, 24 Jun 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Osteen, Jeremiah D</name>
      </author>
      <author>
        <name>Sampson, Kevin</name>
      </author>
      <author>
        <name>Iyer, Vivek</name>
      </author>
      <author>
        <name>Julius, David</name>
        <uri>https://orcid.org/0000-0002-6365-4867</uri>
      </author>
      <author>
        <name>Bosmans, Frank</name>
      </author>
    </item>
    <item>
      <title>Constraints on Cosmological Parameters with a Sample of Type Ia Supernovae from JWST</title>
      <link>https://escholarship.org/uc/item/67t3x77p</link>
      <description>We investigate the potential of using a sample of very high-redshift (2 ≲ z ≲ 6) (VHZ) Type Ia supernovae (SNe Ia) attainable by JWST on constraining cosmological parameters. At such high redshifts, the age of the universe is young enough that the VHZ SN Ia sample comprises the very first SNe Ia of the universe, with progenitors among the very first generation of low-mass stars that the universe has made. We show that the VHZ SNe Ia can be used to disentangle systematic effects due to the luminosity distance evolution with redshifts intrinsic to SN Ia standardization. Assuming that the systematic evolution can be described by a linear or logarithmic formula, we found that the coefficients of this dependence can be determined accurately and decoupled from cosmological models. Systematic evolution as large as 0.15 mag and 0.45 mag out to z = 5 can be robustly separated from popular cosmological models for linear and logarithmic evolution, respectively. The VHZ SNe Ia will lay the...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/67t3x77p</guid>
      <pubDate>Wed, 21 Jun 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Lu, Jia</name>
      </author>
      <author>
        <name>Wang, Lifan</name>
      </author>
      <author>
        <name>Chen, Xingzhuo</name>
      </author>
      <author>
        <name>Rubin, David</name>
        <uri>https://orcid.org/0000-0001-5402-4647</uri>
      </author>
      <author>
        <name>Perlmutter, Saul</name>
        <uri>https://orcid.org/0000-0002-4436-4661</uri>
      </author>
      <author>
        <name>Baade, Dietrich</name>
      </author>
      <author>
        <name>Mould, Jeremy</name>
      </author>
      <author>
        <name>Vinko, Jozsef</name>
      </author>
      <author>
        <name>Regős, Enikő</name>
      </author>
      <author>
        <name>Koekemoer, Anton M</name>
      </author>
    </item>
    <item>
      <title>A CRISPR-Cas9–integrase complex generates precise DNA fragments for genome integration</title>
      <link>https://escholarship.org/uc/item/5158b0t3</link>
      <description>CRISPR-Cas9 is an RNA-guided DNA endonuclease involved in bacterial adaptive immunity and widely repurposed for genome editing in human cells, animals and plants. In bacteria, RNA molecules that guide Cas9's activity derive from foreign DNA fragments that are captured and integrated into the host CRISPR genomic locus by the Cas1-Cas2 CRISPR integrase. How cells generate the specific lengths of DNA required for integrase capture is a central unanswered question of type II-A CRISPR-based adaptive immunity. Here, we show that an integrase supercomplex comprising guide RNA and the proteins Cas1, Cas2, Csn2 and Cas9 generates precisely trimmed 30-base pair DNA molecules required for genome integration. The HNH active site of Cas9 catalyzes exonucleolytic DNA trimming by a mechanism that is independent of the guide RNA sequence. These results show that Cas9 possesses a distinct catalytic capacity for generating immunological memory in prokaryotes.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5158b0t3</guid>
      <pubDate>Sat, 17 Jun 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Jakhanwal, Shrutee</name>
      </author>
      <author>
        <name>Cress, Brady F</name>
        <uri>https://orcid.org/0000-0002-2948-2846</uri>
      </author>
      <author>
        <name>Maguin, Pascal</name>
      </author>
      <author>
        <name>Lobba, Marco J</name>
      </author>
      <author>
        <name>Marraffini, Luciano A</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Controlling and enhancing CRISPR systems</title>
      <link>https://escholarship.org/uc/item/840422qp</link>
      <description>Many bacterial and archaeal organisms use clustered regularly interspaced short palindromic repeats–CRISPR associated (CRISPR–Cas) systems to defend themselves from mobile genetic elements. These CRISPR–Cas systems are classified into six types based on their composition and mechanism. CRISPR–Cas enzymes are widely used for genome editing and offer immense therapeutic opportunity to treat genetic diseases. To realize their full potential, it is important to control the timing, duration, efficiency and specificity of CRISPR–Cas enzyme activities. In this Review we discuss the mechanisms of natural CRISPR–Cas regulatory biomolecules and engineering strategies that enhance or inhibit CRISPR–Cas immunity by altering enzyme function. We also discuss the potential applications of these CRISPR regulators and highlight unanswered questions about their evolution and purpose in nature.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/840422qp</guid>
      <pubDate>Thu, 15 Jun 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Shivram, Haridha</name>
      </author>
      <author>
        <name>Cress, Brady F</name>
        <uri>https://orcid.org/0000-0002-2948-2846</uri>
      </author>
      <author>
        <name>Knott, Gavin J</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>Chemistry of Class 1 CRISPR-Cas effectors: Binding, editing, and regulation</title>
      <link>https://escholarship.org/uc/item/79g336r2</link>
      <description>Among the multiple antiviral defense mechanisms found in prokaryotes, CRISPR-Cas systems stand out as the only known RNA-programmed pathways for detecting and destroying bacteriophages and plasmids. Class 1 CRISPR-Cas systems, the most widespread and diverse of these adaptive immune systems, use an RNA-guided multiprotein complex to find foreign nucleic acids and trigger their destruction. In this review, we describe how these multisubunit complexes target and cleave DNA and RNA and how regulatory molecules control their activities. We also highlight similarities to and differences from Class 2 CRISPR-Cas systems, which use a single-protein effector, as well as other types of bacterial and eukaryotic immune systems. We summarize current applications of the Class 1 CRISPR-Cas systems for DNA/RNA modification, control of gene expression, and nucleic acid detection.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/79g336r2</guid>
      <pubDate>Mon, 12 Jun 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Liu, Tina Y</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>A scoutRNA Is Required for Some Type V CRISPR-Cas Systems</title>
      <link>https://escholarship.org/uc/item/5rs657fn</link>
      <description>CRISPR-Cas12c/d proteins share limited homology with Cas12a and Cas9 bacterial CRISPR RNA (crRNA)-guided nucleases used widely for genome editing and DNA detection. However, Cas12c (C2c3)- and Cas12d (CasY)-catalyzed DNA cleavage and genome editing activities have not been directly observed. We show here that a short-complementarity untranslated RNA (scoutRNA), together with crRNA, is required for Cas12d-catalyzed DNA cutting. The scoutRNA differs in secondary structure from previously described tracrRNAs used by CRISPR-Cas9 and some Cas12 enzymes, and in Cas12d-containing systems, scoutRNA includes a conserved five-nucleotide sequence that is essential for activity. In addition to supporting crRNA-directed DNA recognition, biochemical and cell-based experiments establish scoutRNA as an essential cofactor for Cas12c-catalyzed pre-crRNA maturation. These results define scoutRNA as a third type of transcript encoded by a subset of CRISPR-Cas genomic loci and explain how Cas12c/d...</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/5rs657fn</guid>
      <pubDate>Sat, 10 Jun 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Harrington, Lucas B</name>
      </author>
      <author>
        <name>Ma, Enbo</name>
      </author>
      <author>
        <name>Chen, Janice S</name>
      </author>
      <author>
        <name>Witte, Isaac P</name>
      </author>
      <author>
        <name>Gertz, Dov</name>
      </author>
      <author>
        <name>Paez-Espino, David</name>
      </author>
      <author>
        <name>Al-Shayeb, Basem</name>
      </author>
      <author>
        <name>Kyrpides, Nikos C</name>
        <uri>https://orcid.org/0000-0002-6131-0462</uri>
      </author>
      <author>
        <name>Burstein, David</name>
      </author>
      <author>
        <name>Banfield, Jillian F</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
    <item>
      <title>CRISPR-CasΦ from huge phages is a hypercompact genome editor</title>
      <link>https://escholarship.org/uc/item/46m8h6gw</link>
      <description>CRISPR-Cas systems are found widely in prokaryotes, where they provide adaptive immunity against virus infection and plasmid transformation. We describe a minimal functional CRISPR-Cas system, comprising a single ~70-kilodalton protein, CasΦ, and a CRISPR array, encoded exclusively in the genomes of huge bacteriophages. CasΦ uses a single active site for both CRISPR RNA (crRNA) processing and crRNA-guided DNA cutting to target foreign nucleic acids. This hypercompact system is active in vitro and in human and plant cells with expanded target recognition capabilities relative to other CRISPR-Cas proteins. Useful for genome editing and DNA detection but with a molecular weight half that of Cas9 and Cas12a genome-editing enzymes, CasΦ offers advantages for cellular delivery that expand the genome editing toolbox.</description>
      <guid isPermaLink="true">https://escholarship.org/uc/item/46m8h6gw</guid>
      <pubDate>Sat, 10 Jun 2023 00:00:00 +0000</pubDate>
      <author>
        <name>Pausch, Patrick</name>
      </author>
      <author>
        <name>Al-Shayeb, Basem</name>
      </author>
      <author>
        <name>Bisom-Rapp, Ezra</name>
      </author>
      <author>
        <name>Tsuchida, Connor A</name>
      </author>
      <author>
        <name>Li, Zheng</name>
      </author>
      <author>
        <name>Cress, Brady F</name>
        <uri>https://orcid.org/0000-0002-2948-2846</uri>
      </author>
      <author>
        <name>Knott, Gavin J</name>
      </author>
      <author>
        <name>Jacobsen, Steven E</name>
      </author>
      <author>
        <name>Banfield, Jillian F</name>
      </author>
      <author>
        <name>Doudna, Jennifer A</name>
      </author>
    </item>
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