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- Davidson, W Sean2
- Heinecke, Jay W2
- Segrest, Jere P2
- Vaisar, Tomas2
- Aller, Stephen G1
- Bornfeldt, Karin E1
- Clouet-Foraison, Noemie1
- Hart, Rachel1
- Hart, Rachel C1
- Jerome, Jay1
- Jerome, W Gray1
- Kuklenyik, Zsuzsanna1
- Melchior, John T1
- Morris, Jamie1
- Shah, Amy1
- Shah, Amy S1
- Street, Scott E1
- Tang, Chongren1
- Thornock, Carissa1
Regular Research Articles
2 Results
- Research ArticleOpen Access
Conformational flexibility of apolipoprotein A-I amino- and carboxy-termini is necessary for lipid binding but not cholesterol efflux
Journal of Lipid ResearchVol. 63Issue 3100168Published online: January 17, 2022- Shimpi Bedi
- Jamie Morris
- Amy Shah
- Rachel C. Hart
- W. Gray Jerome
- Stephen G. Aller
- and others
Cited in Scopus: 1Because of its critical role in HDL formation, significant efforts have been devoted to studying apolipoprotein A-I (APOA1) structural transitions in response to lipid binding. To assess the requirements for the conformational freedom of its termini during HDL particle formation, we generated three dimeric APOA1 molecules with their termini covalently joined in different combinations. The dimeric (d)-APOA1C-N mutant coupled the C-terminus of one APOA1 molecule to the N-terminus of a second with a short alanine linker, whereas the d-APOA1C-C and d-APOA1N-N mutants coupled the C-termini and the N-termini of two APOA1 molecules, respectively, using introduced cysteine residues to form disulfide linkages. - Research ArticleOpen Access
Apolipoprotein A-I modulates HDL particle size in the absence of apolipoprotein A-II
Journal of Lipid ResearchVol. 62100099Published online: July 26, 2021- John T. Melchior
- Scott E. Street
- Tomas Vaisar
- Rachel Hart
- Jay Jerome
- Zsuzsanna Kuklenyik
- and others
Cited in Scopus: 0Human high-density lipoproteins (HDLs) are a complex mixture of structurally related nanoparticles that perform distinct physiological functions. We previously showed that human HDL containing apolipoprotein A-I (APOA1) but not apolipoprotein A-II (APOA2), designated LpA-I, is composed primarily of two discretely sized populations. Here, we isolated these particles directly from human plasma by antibody affinity chromatography, separated them by high-resolution size-exclusion chromatography and performed a deep molecular characterization of each species.