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Lipoprotein-associated phospholipase A(2): A paradigm for allosteric regulation by membranes

Lipoprotein-associated phospholipase A(2) (Lp-PLA(2)) associates with low- and high-density lipoproteins in human plasma and specifically hydrolyzes circulating oxidized phospholipids involved in oxidative stress. The association of this enzyme with the lipoprotein’s phospholipid monolayer to access...

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Autores principales: Mouchlis, Varnavas D., Hayashi, Daiki, Vasquez, Alexis M., Cao, Jian, McCammon, J. Andrew, Dennis, Edward A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8764669/
https://www.ncbi.nlm.nih.gov/pubmed/34996868
http://dx.doi.org/10.1073/pnas.2102953118
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author Mouchlis, Varnavas D.
Hayashi, Daiki
Vasquez, Alexis M.
Cao, Jian
McCammon, J. Andrew
Dennis, Edward A.
author_facet Mouchlis, Varnavas D.
Hayashi, Daiki
Vasquez, Alexis M.
Cao, Jian
McCammon, J. Andrew
Dennis, Edward A.
author_sort Mouchlis, Varnavas D.
collection PubMed
description Lipoprotein-associated phospholipase A(2) (Lp-PLA(2)) associates with low- and high-density lipoproteins in human plasma and specifically hydrolyzes circulating oxidized phospholipids involved in oxidative stress. The association of this enzyme with the lipoprotein’s phospholipid monolayer to access its substrate is the most crucial first step in its catalytic cycle. The current study demonstrates unequivocally that a significant movement of a major helical peptide region occurs upon membrane binding, resulting in a large conformational change upon Lp-PLA(2) binding to a phospholipid surface. This allosteric regulation of an enzyme’s activity by a large membrane-like interface inducing a conformational change in the catalytic site defines a unique dimension of allosterism. The mechanism by which this enzyme associates with phospholipid interfaces to select and extract a single phospholipid substrate molecule and carry out catalysis is key to understanding its physiological functioning. A lipidomics platform was employed to determine the precise substrate specificity of human recombinant Lp-PLA(2) and mutants. This study uniquely elucidates the association mechanism of this enzyme with membranes and its resulting conformational change as well as the extraction and binding of specific oxidized and short acyl-chain phospholipid substrates. Deuterium exchange mass spectrometry coupled with molecular dynamics simulations was used to define the precise specificity of the subsite for the oxidized fatty acid at the sn-2 position of the phospholipid backbone. Despite the existence of several crystal structures of this enzyme cocrystallized with inhibitors, little was understood about Lp-PLA(2)‘s specificity toward oxidized phospholipids.
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spelling pubmed-87646692022-01-26 Lipoprotein-associated phospholipase A(2): A paradigm for allosteric regulation by membranes Mouchlis, Varnavas D. Hayashi, Daiki Vasquez, Alexis M. Cao, Jian McCammon, J. Andrew Dennis, Edward A. Proc Natl Acad Sci U S A Biological Sciences Lipoprotein-associated phospholipase A(2) (Lp-PLA(2)) associates with low- and high-density lipoproteins in human plasma and specifically hydrolyzes circulating oxidized phospholipids involved in oxidative stress. The association of this enzyme with the lipoprotein’s phospholipid monolayer to access its substrate is the most crucial first step in its catalytic cycle. The current study demonstrates unequivocally that a significant movement of a major helical peptide region occurs upon membrane binding, resulting in a large conformational change upon Lp-PLA(2) binding to a phospholipid surface. This allosteric regulation of an enzyme’s activity by a large membrane-like interface inducing a conformational change in the catalytic site defines a unique dimension of allosterism. The mechanism by which this enzyme associates with phospholipid interfaces to select and extract a single phospholipid substrate molecule and carry out catalysis is key to understanding its physiological functioning. A lipidomics platform was employed to determine the precise substrate specificity of human recombinant Lp-PLA(2) and mutants. This study uniquely elucidates the association mechanism of this enzyme with membranes and its resulting conformational change as well as the extraction and binding of specific oxidized and short acyl-chain phospholipid substrates. Deuterium exchange mass spectrometry coupled with molecular dynamics simulations was used to define the precise specificity of the subsite for the oxidized fatty acid at the sn-2 position of the phospholipid backbone. Despite the existence of several crystal structures of this enzyme cocrystallized with inhibitors, little was understood about Lp-PLA(2)‘s specificity toward oxidized phospholipids. National Academy of Sciences 2022-01-07 2022-01-11 /pmc/articles/PMC8764669/ /pubmed/34996868 http://dx.doi.org/10.1073/pnas.2102953118 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Mouchlis, Varnavas D.
Hayashi, Daiki
Vasquez, Alexis M.
Cao, Jian
McCammon, J. Andrew
Dennis, Edward A.
Lipoprotein-associated phospholipase A(2): A paradigm for allosteric regulation by membranes
title Lipoprotein-associated phospholipase A(2): A paradigm for allosteric regulation by membranes
title_full Lipoprotein-associated phospholipase A(2): A paradigm for allosteric regulation by membranes
title_fullStr Lipoprotein-associated phospholipase A(2): A paradigm for allosteric regulation by membranes
title_full_unstemmed Lipoprotein-associated phospholipase A(2): A paradigm for allosteric regulation by membranes
title_short Lipoprotein-associated phospholipase A(2): A paradigm for allosteric regulation by membranes
title_sort lipoprotein-associated phospholipase a(2): a paradigm for allosteric regulation by membranes
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8764669/
https://www.ncbi.nlm.nih.gov/pubmed/34996868
http://dx.doi.org/10.1073/pnas.2102953118
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