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Comparison of apoA-I helical structure and stability in discoidal and spherical HDL particles by HX and mass spectrometry

Elucidation of apoA-I secondary structure in spherical plasma HDL particles is essential for understanding HDL structure and function at the molecular level. To provide this information, we have applied hydrogen exchange (HX) and mass spectrometry methods to compare apoA-I secondary structure in dis...

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Autores principales: Chetty, Palaniappan Sevugan, Nguyen, David, Nickel, Margaret, Lund-Katz, Sissel, Mayne, Leland, Englander, S. Walter, Phillips, Michael C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Biochemistry and Molecular Biology 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3646460/
https://www.ncbi.nlm.nih.gov/pubmed/23580759
http://dx.doi.org/10.1194/jlr.M034785
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author Chetty, Palaniappan Sevugan
Nguyen, David
Nickel, Margaret
Lund-Katz, Sissel
Mayne, Leland
Englander, S. Walter
Phillips, Michael C.
author_facet Chetty, Palaniappan Sevugan
Nguyen, David
Nickel, Margaret
Lund-Katz, Sissel
Mayne, Leland
Englander, S. Walter
Phillips, Michael C.
author_sort Chetty, Palaniappan Sevugan
collection PubMed
description Elucidation of apoA-I secondary structure in spherical plasma HDL particles is essential for understanding HDL structure and function at the molecular level. To provide this information, we have applied hydrogen exchange (HX) and mass spectrometry methods to compare apoA-I secondary structure in discoidal (two apoA-I molecules/particle) and spherical (five apoA-I molecules/particle) HDL particles. The HX kinetics indicate that the locations of helical segments within the apoA-I molecules are the same in both discoidal and spherical HDL particles (approximately 10 nm hydrodynamic diameter). Helix stabilities in both types of particles are 3–5 kcal/mol, consistent with the apoA-I molecules being in a highly dynamic state with helical segments unfolding and refolding in seconds. For the spherical HDL, apoA-I fragments corresponding to residues 115–158 exhibit bimodal HX kinetics consistent with this segment adopting an inter-converting (on the timescale of tens of minutes) helix-loop configuration. The segment adopting this configuration in the 10 nm disc is shorter because the surface area available to each apoA-I molecule is apparently larger. Loop formation in the central region of the apoA-I molecule contributes to the ability of the protein to adapt to changes in available space on the HDL particle surface. Overall, apoA-I secondary structure is largely unaffected by a change in HDL particle shape from disc to sphere.
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spelling pubmed-36464602013-09-10 Comparison of apoA-I helical structure and stability in discoidal and spherical HDL particles by HX and mass spectrometry Chetty, Palaniappan Sevugan Nguyen, David Nickel, Margaret Lund-Katz, Sissel Mayne, Leland Englander, S. Walter Phillips, Michael C. J Lipid Res Research Articles Elucidation of apoA-I secondary structure in spherical plasma HDL particles is essential for understanding HDL structure and function at the molecular level. To provide this information, we have applied hydrogen exchange (HX) and mass spectrometry methods to compare apoA-I secondary structure in discoidal (two apoA-I molecules/particle) and spherical (five apoA-I molecules/particle) HDL particles. The HX kinetics indicate that the locations of helical segments within the apoA-I molecules are the same in both discoidal and spherical HDL particles (approximately 10 nm hydrodynamic diameter). Helix stabilities in both types of particles are 3–5 kcal/mol, consistent with the apoA-I molecules being in a highly dynamic state with helical segments unfolding and refolding in seconds. For the spherical HDL, apoA-I fragments corresponding to residues 115–158 exhibit bimodal HX kinetics consistent with this segment adopting an inter-converting (on the timescale of tens of minutes) helix-loop configuration. The segment adopting this configuration in the 10 nm disc is shorter because the surface area available to each apoA-I molecule is apparently larger. Loop formation in the central region of the apoA-I molecule contributes to the ability of the protein to adapt to changes in available space on the HDL particle surface. Overall, apoA-I secondary structure is largely unaffected by a change in HDL particle shape from disc to sphere. The American Society for Biochemistry and Molecular Biology 2013-06 /pmc/articles/PMC3646460/ /pubmed/23580759 http://dx.doi.org/10.1194/jlr.M034785 Text en Copyright © 2013 by the American Society for Biochemistry and Molecular Biology, Inc. http://creativecommons.org/licenses/by/3.0/ Author's Choice—Final version full access. Creative Commons Attribution Unported License (http://creativecommons.org/licenses/by/3.0/) applies to Author Choice Articles
spellingShingle Research Articles
Chetty, Palaniappan Sevugan
Nguyen, David
Nickel, Margaret
Lund-Katz, Sissel
Mayne, Leland
Englander, S. Walter
Phillips, Michael C.
Comparison of apoA-I helical structure and stability in discoidal and spherical HDL particles by HX and mass spectrometry
title Comparison of apoA-I helical structure and stability in discoidal and spherical HDL particles by HX and mass spectrometry
title_full Comparison of apoA-I helical structure and stability in discoidal and spherical HDL particles by HX and mass spectrometry
title_fullStr Comparison of apoA-I helical structure and stability in discoidal and spherical HDL particles by HX and mass spectrometry
title_full_unstemmed Comparison of apoA-I helical structure and stability in discoidal and spherical HDL particles by HX and mass spectrometry
title_short Comparison of apoA-I helical structure and stability in discoidal and spherical HDL particles by HX and mass spectrometry
title_sort comparison of apoa-i helical structure and stability in discoidal and spherical hdl particles by hx and mass spectrometry
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3646460/
https://www.ncbi.nlm.nih.gov/pubmed/23580759
http://dx.doi.org/10.1194/jlr.M034785
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