HDL biology
SR-BI processing of HDL2 segregates apoA-I and apoA-II catabolism into distinct particles, independent of CETP, LCAT, or PLTP (J Lipid Res 2005)
Original title: SR-BI-mediated selective lipid uptake segregates apoA-I and apoA-II catabolism
Building on prior findings that scavenger receptor class B type I (SR-BI)-mediated catabolism of human HDL2 in mice overexpressing SR-BI generates progressively smaller remnants distinct from pre-beta HDL, some of which can rapidly increase in size by associating with HDL in mouse plasma without the mediation of cholesteryl ester transfer protein, LCAT, or phospholipid transfer protein, this study showed that SR-BI processing of HDL2 preferentially removed apolipoprotein A-II. Short-term processing generated two distinct small alpha-migrating particles: one (8.0 nm) containing both apoA-I and apoA-II, the other (7.7 nm) containing only apoA-I; with extensive processing, only the 7.7 nm particle remained. Only the 8.0 nm remnant could reassociate with HDL, and compared with HDL2, it was taken up more readily by the liver than the kidney, establishing a pathway by which SR-BI segregates apoA-I and apoA-II catabolism.
Original abstract
The HDL receptor scavenger receptor class B type I (SR-BI) binds HDL and mediates the selective uptake of cholesteryl ester. We previously showed that remnants, produced when human HDL(2) is catabolized in mice overexpressing SR-BI, become incrementally smaller, ultimately consisting of small alpha-migrating particles, distinct from pre-beta HDL. When mixed with mouse plasma, some remnant particles rapidly increase in size by associating with HDL without the mediation of cholesteryl ester transfer protein, LCAT, or phospholipid transfer protein. Here, we show that processing of HDL(2) by SR-BI-overexpressing mice resulted in the preferential loss of apolipoprotein A-II (apoA-II). Short-term processing generated two distinct, small alpha-migrating particles. One particle (8.0 nm diameter) contained apoA-I and apoA-II; the other particle (7.7 nm diameter) contained only apoA-I. With extensive SR-BI processing, only the 7.7 nm particle remained. Only the 8.0 nm remnants were able to associate with HDL. Compared with HDL(2), this remnant was more readily taken up by the liver than by the kidney. We conclude that SR-BI-generated HDL remnants consist of particles with or without apoA-II and that only those containing apoA-II associate with HDL in an enzyme-independent manner. Extensive SR-BI processing generates small apoA-II-depleted particles unable to reassociate with HDL and readily taken up by the liver. This represents a pathway by which apoA-I and apoA-II catabolism are segregated.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.