Literature DB >> 18984910

Aromatic residues in the C-terminal helix of human apoC-I mediate phospholipid interactions and particle morphology.

Patrick F James1, Con Dogovski, Renwick C J Dobson, Michael F Bailey, Kenneth N Goldie, John A Karas, Denis B Scanlon, Richard A J O'Hair, Matthew A Perugini.   

Abstract

Human apolipoprotein C-I (apoC-I) is an exchangeable apolipoprotein that binds to lipoprotein particles in vivo. In this study, we employed a LC-MS/MS assay to demonstrate that residues 38-51 of apoC-I are significantly protected from proteolysis in the presence of 1,2-dimyristoyl-3-sn-glycero-phosphocholine (DMPC). This suggests that the key lipid-binding determinants of apoC-I are located in the C-terminal region, which includes F42 and F46. To test this, we generated site-directed mutants substituting F42 and F46 for glycine or alanine. In contrast to wild-type apoC-I (WT), which binds DMPC vesicles with an apparent Kd [Kd(app)] of 0.89 microM, apoC-I(F42A) and apoC-I(F46A) possess 2-fold weaker affinities for DMPC with Kd(app) of 1.52 microM and 1.58 microM, respectively. However, apoC-I(F46G), apoC-I(F42A/F46A), apoC-I(F42G), and apoC-I(F42G/F46G) bind significantly weaker to DMPC with Kd(app) of 2.24 microM, 3.07 microM, 4.24 microM, and 10.1 microM, respectively. Sedimentation velocity studies subsequently show that the protein/DMPC complexes formed by these apoC-I mutants sediment at 6.5S, 6.7S, 6.5S, and 8.0S, respectively. This is compared with 5.0S for WT apoC-I, suggesting the shape of the particles was different. Transmission electron microscopy confirmed this assertion, demonstrating that WT forms discoidal complexes with a length-to-width ratio of 2.57, compared with 1.92, 2.01, 2.16, and 1.75 for apoC-I(F42G), apoC-I(F46G), apoC-I(F42A/F46A), and apoC-I(F42G/F46G), respectively. Our study demonstrates that the C-terminal amphipathic alpha-helix of human apoC-I contains the major lipid-binding determinants, including important aromatic residues F42 and F46, which we show play a critical role in stabilizing the structure of apoC-I, mediating phospholipid interactions, and promoting discoidal particle morphology.

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Year:  2008        PMID: 18984910      PMCID: PMC2694337          DOI: 10.1194/jlr.M800529-JLR200

Source DB:  PubMed          Journal:  J Lipid Res        ISSN: 0022-2275            Impact factor:   5.922


  23 in total

Review 1.  Lipoprotein apoprotein metabolism.

Authors:  E J Schaefer; S Eisenberg; R I Levy
Journal:  J Lipid Res       Date:  1978-08       Impact factor: 5.922

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Authors:  Patrick F James; Matthew A Perugini; Richard A J O'Hair
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3.  Conformation of human apolipoprotein C-I in a lipid-mimetic environment determined by CD and NMR spectroscopy.

Authors:  A Rozek; J T Sparrow; K H Weisgraber; R J Cushley
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4.  Human apolipoprotein C-I accounts for the ability of plasma high density lipoproteins to inhibit the cholesteryl ester transfer protein activity.

Authors:  T Gautier; D Masson; J P de Barros; A Athias; P Gambert; D Aunis; M H Metz-Boutigue; L Lagrost
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5.  Thermotropic phase transition in soluble nanoscale lipid bilayers.

Authors:  Ilia G Denisov; Mark A McLean; Andrew W Shaw; Yelena V Grinkova; Stephen G Sligar
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6.  Complex of human apolipoprotein C-1 with phospholipid: thermodynamic or kinetic stability?

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7.  Discoidal complexes of A and C apolipoproteins with lipids and their reactions with lecithin: cholesterol acyltransferase.

Authors:  A Jonas; S A Sweeny; P N Herbert
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8.  Lecithin:cholesterol acyltransferase activation and lipid binding by synthetic fragments of apolipoprotein C-I.

Authors:  A K Soutar; G F Sigler; L C Smith; A M Gotto; J T Sparrow
Journal:  Scand J Clin Lab Invest Suppl       Date:  1978

9.  Two copies of the human apolipoprotein C-I gene are linked closely to the apolipoprotein E gene.

Authors:  S J Lauer; D Walker; N A Elshourbagy; C A Reardon; B Levy-Wilson; J M Taylor
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10.  Inhibitory effects of C apolipoproteins from rats and humans on the uptake of triglyceride-rich lipoproteins and their remnants by the perfused rat liver.

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4.  Influence of C-terminal α-helix hydrophobicity and aromatic amino acid content on apolipoprotein A-I functionality.

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5.  Chemical Synthesis and Characterization of an Equinatoxin II(1-85) Analogue.

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Review 7.  Apolipoprotein C1: Its Pleiotropic Effects in Lipid Metabolism and Beyond.

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  7 in total

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