- Main
Quantitative PET imaging and modeling of molecular blood-brain barrier permeability
- Chung, Kevin J;
- Abdelhafez, Yasser G;
- Spencer, Benjamin A;
- Jones, Terry;
- Tran, Quyen;
- Nardo, Lorenzo;
- Chen, Moon S;
- Sarkar, Souvik;
- Medici, Valentina;
- Lyo, Victoria;
- Badawi, Ramsey D;
- Cherry, Simon R;
- Wang, Guobao
Published Web Location
https://doi.org/10.1101/2024.07.26.24311027Abstract
Blood-brain barrier (BBB) disruption is involved in the pathogenesis and progression of many neurological and systemic diseases. Non-invasive assessment of BBB permeability in humans has mainly been performed with dynamic contrast-enhanced magnetic resonance imaging, evaluating the BBB as a structural barrier. Here, we developed a novel non-invasive positron emission tomography (PET) method in humans to measure the BBB permeability of molecular radiotracers that cross the BBB through different transport mechanisms. Our method uses high-temporal resolution dynamic imaging and kinetic modeling to jointly estimate cerebral blood flow and tracer-specific BBB transport rate from a single dynamic PET scan and measure the molecular permeability-surface area (PS) product of the radiotracer. We show our method can resolve BBB PS across three PET radiotracers with greatly differing permeabilities, measure reductions in BBB PS of 18F-fluorodeoxyglucose (FDG) in healthy aging, and demonstrate a possible brain-body association between decreased FDG BBB PS in patients with metabolic dysfunction-associated steatotic liver inflammation. Our method opens new directions to efficiently study the molecular permeability of the human BBB in vivo using the large catalogue of available molecular PET tracers.
Many UC-authored scholarly publications are freely available on this site because of the UC's open access policies. Let us know how this access is important for you.