Literature DB >> 17530866

Speciation of human plasma high-density lipoprotein (HDL): HDL stability and apolipoprotein A-I partitioning.

Henry J Pownall1, Brian D Hosken, Baiba K Gillard, Catherine L Higgins, Hu Yu Lin, John B Massey.   

Abstract

The distribution of apolipoprotein (apo) A-I between human high-density lipoproteins (HDL) and water is an important component of reverse cholesterol transport and the atheroprotective effects of HDL. Chaotropic perturbation (CP) with guanidinium chloride (Gdm-Cl) reveals HDL instability by inducing the unfolding and transfer of apo A-I but not apo A-II into the aqueous phase while forming larger apo A-I deficient HDL-like particles and small amounts of cholesteryl ester-rich microemulsions (CERMs). Our kinetic and hydrodynamic studies of the CP of HDL species separated according to size and density show that (1) CP mediated an increase in HDL size, which involves quasi-fusion of surface and core lipids, and release of lipid-free apo A-I (these processes correlate linearly), (2) >94% of the HDL lipids remain with an apo A-I deficient particle, (3) apo A-II remains associated with a very stable HDL-like particle even at high levels of Gdm-Cl, and (4) apo A-I unfolding and transfer from HDL to water vary among HDL subfractions with the larger and more buoyant species exhibiting greater stability. Our data indicate that apo A-I's on small HDL (HDL-S) are highly dynamic and, relative to apo A-I on the larger more mature HDL, partition more readily into the aqueous phase, where they initiate the formation of new HDL species. Our data suggest that the greater instability of HDL-S generates free apo A-I and an apo A-I deficient HDL-S that readily fuses with the more stable HDL-L. Thus, the presence of HDL-L drives the CP remodeling of HDL to an equilibrium with even larger HDL-L and more lipid-free apo A-I than with either HDL-L or HDL-S alone. Moreover, according to dilution studies of HDL in 3 M Gdm-Cl, CP of HDL fits a model of apo A-I partitioning between HDL phospholipids and water that is controlled by the principal of opposing forces. These findings suggest that the size and relative amount of HDL lipid determine the HDL stability and the fraction of apo A-I that partitions into the aqueous phase where it is destined for interaction with ABCA1 transporters, thereby initiating reverse cholesterol transport or, alternatively, renal clearance.

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Year:  2007        PMID: 17530866     DOI: 10.1021/bi700496w

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  32 in total

1.  HDL-apolipoprotein A-I exchange is independently associated with cholesterol efflux capacity.

Authors:  Mark S Borja; Kit F Ng; Angela Irwin; Jaekyoung Hong; Xing Wu; Daniel Isquith; Xue-Qiao Zhao; Bryan Prazen; Virginia Gildengorin; Michael N Oda; Tomáš Vaisar
Journal:  J Lipid Res       Date:  2015-08-07       Impact factor: 5.922

2.  Effects of Replacing Dietary Monounsaturated Fat With Carbohydrate on HDL (High-Density Lipoprotein) Protein Metabolism and Proteome Composition in Humans.

Authors:  Allison B Andraski; Sasha A Singh; Lang Ho Lee; Hideyuki Higashi; Nathaniel Smith; Bo Zhang; Masanori Aikawa; Frank M Sacks
Journal:  Arterioscler Thromb Vasc Biol       Date:  2019-09-26       Impact factor: 8.311

3.  Apolipoproteins A-I, A-II and E are independently distributed among intracellular and newly secreted HDL of human hepatoma cells.

Authors:  Baiba K Gillard; Hu-Yu Alice Lin; John B Massey; Henry J Pownall
Journal:  Biochim Biophys Acta       Date:  2009-07-25

4.  Spontaneous remodeling of HDL particles at acidic pH enhances their capacity to induce cholesterol efflux from human macrophage foam cells.

Authors:  Su Duy Nguyen; Katariina Öörni; Miriam Lee-Rueckert; Tero Pihlajamaa; Jari Metso; Matti Jauhiainen; Petri T Kovanen
Journal:  J Lipid Res       Date:  2012-08-01       Impact factor: 5.922

5.  Exchange of apolipoprotein A-I between lipid-associated and lipid-free states: a potential target for oxidative generation of dysfunctional high density lipoproteins.

Authors:  Giorgio Cavigiolio; Ethan G Geier; Baohai Shao; Jay W Heinecke; Michael N Oda
Journal:  J Biol Chem       Date:  2010-04-12       Impact factor: 5.157

Review 6.  Speciated High-Density Lipoprotein Biogenesis and Functionality.

Authors:  C Rosales; W S Davidson; B K Gillard; A M Gotto; H J Pownall
Journal:  Curr Atheroscler Rep       Date:  2016-05       Impact factor: 5.113

Review 7.  Structural stability and functional remodeling of high-density lipoproteins.

Authors:  Olga Gursky
Journal:  FEBS Lett       Date:  2015-03-05       Impact factor: 4.124

8.  Differential stability of high-density lipoprotein subclasses: effects of particle size and protein composition.

Authors:  Xuan Gao; Shujun Yuan; Shobini Jayaraman; Olga Gursky
Journal:  J Mol Biol       Date:  2009-02-21       Impact factor: 5.469

Review 9.  The structure and function of serum opacity factor: a unique streptococcal virulence determinant that targets high-density lipoproteins.

Authors:  Harry S Courtney; Henry J Pownall
Journal:  J Biomed Biotechnol       Date:  2010-07-08

10.  Surface plasmon resonance analysis of the mechanism of binding of apoA-I to high density lipoprotein particles.

Authors:  Sissel Lund-Katz; David Nguyen; Padmaja Dhanasekaran; Momoe Kono; Margaret Nickel; Hiroyuki Saito; Michael C Phillips
Journal:  J Lipid Res       Date:  2009-09-28       Impact factor: 5.922

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