Abstract / Summary
Transplantation is limited by how long organs survive outside the body. Existing preservation methods slow metabolism or sustain physiological support, but neither eliminates ischemia-reperfusion injury (IRI), which shortens storage and drives organ discard. Embryonic diapause and hibernation show that mammalian cells retain a latent capacity for reversible metabolic arrest. Screening the PI3K-mTOR axis, we identified a dual inhibitor that pauses embryonic stem cells reversibly at ambient oxygen and holds intact mouse embryos in arrest for 11 days. Combined with a mitochondria-targeted hydrogen sulfide donor, this yields TorPause: a two-component flush pairing metabolic pausing with mitochondrial protection, compatible with existing preservation protocols. In a rat liver transplantation model, TorPause reduced structural injury and improved recipient survival after severe warm ischemic storage, potentially expanding the usable donor pool.
Topics
Primary Source