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Insights into the molecular basis of the palmitoylation and depalmitoylation of NCX1

Catalyzed by zDHHC-PAT enzymes and reversed by thioesterases, protein palmitoylation is the only post-translational modification recognized to regulate the sodium/calcium exchanger NCX1. NCX1 palmitoylation occurs at a single site at position 739 in its large regulatory intracellular loop. An amphip...

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Autores principales: Gök, Caglar, Main, Alice, Gao, Xing, Kerekes, Zsombor, Plain, Fiona, Kuo, Chien-Wen, Robertson, Alan D., Fraser, Niall J., Fuller, William
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8278489/
https://www.ncbi.nlm.nih.gov/pubmed/33873072
http://dx.doi.org/10.1016/j.ceca.2021.102408
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author Gök, Caglar
Main, Alice
Gao, Xing
Kerekes, Zsombor
Plain, Fiona
Kuo, Chien-Wen
Robertson, Alan D.
Fraser, Niall J.
Fuller, William
author_facet Gök, Caglar
Main, Alice
Gao, Xing
Kerekes, Zsombor
Plain, Fiona
Kuo, Chien-Wen
Robertson, Alan D.
Fraser, Niall J.
Fuller, William
author_sort Gök, Caglar
collection PubMed
description Catalyzed by zDHHC-PAT enzymes and reversed by thioesterases, protein palmitoylation is the only post-translational modification recognized to regulate the sodium/calcium exchanger NCX1. NCX1 palmitoylation occurs at a single site at position 739 in its large regulatory intracellular loop. An amphipathic ɑ-helix between residues 740–756 is a critical for NCX1 palmitoylation. Given the rich background of the structural elements involving in NCX1 palmitoylation, the molecular basis of NCX1 palmitoylation is still relatively poorly understood. Here we found that (1) the identity of palmitoylation machinery of NCX1 controls its spatial organization within the cell, (2) the NCX1 amphipathic ɑ-helix directly interacts with zDHHC-PATs, (3) NCX1 is still palmitoylated when it is arrested in either Golgi or ER, indicating that NCX1 is a substrate for multiple zDHHC-PATs, (4) the thioesterase APT1 but not APT2 as a part of NCX1-depalmitoylation machinery governs subcellular organization of NCX1, (5) APT1 catalyzes NCX1 depalmitoylation in the Golgi but not in the ER. We also report that NCX2 and NCX3 are dually palmitoylated, with important implications for substrate recognition and enzyme catalysis by zDHHC-PATs. Our results could support new molecular or pharmacological strategies targeting the NCX1 palmitoylation and depalmitoylation machinery.
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spelling pubmed-82784892021-07-19 Insights into the molecular basis of the palmitoylation and depalmitoylation of NCX1 Gök, Caglar Main, Alice Gao, Xing Kerekes, Zsombor Plain, Fiona Kuo, Chien-Wen Robertson, Alan D. Fraser, Niall J. Fuller, William Cell Calcium Article Catalyzed by zDHHC-PAT enzymes and reversed by thioesterases, protein palmitoylation is the only post-translational modification recognized to regulate the sodium/calcium exchanger NCX1. NCX1 palmitoylation occurs at a single site at position 739 in its large regulatory intracellular loop. An amphipathic ɑ-helix between residues 740–756 is a critical for NCX1 palmitoylation. Given the rich background of the structural elements involving in NCX1 palmitoylation, the molecular basis of NCX1 palmitoylation is still relatively poorly understood. Here we found that (1) the identity of palmitoylation machinery of NCX1 controls its spatial organization within the cell, (2) the NCX1 amphipathic ɑ-helix directly interacts with zDHHC-PATs, (3) NCX1 is still palmitoylated when it is arrested in either Golgi or ER, indicating that NCX1 is a substrate for multiple zDHHC-PATs, (4) the thioesterase APT1 but not APT2 as a part of NCX1-depalmitoylation machinery governs subcellular organization of NCX1, (5) APT1 catalyzes NCX1 depalmitoylation in the Golgi but not in the ER. We also report that NCX2 and NCX3 are dually palmitoylated, with important implications for substrate recognition and enzyme catalysis by zDHHC-PATs. Our results could support new molecular or pharmacological strategies targeting the NCX1 palmitoylation and depalmitoylation machinery. Elsevier 2021-07 /pmc/articles/PMC8278489/ /pubmed/33873072 http://dx.doi.org/10.1016/j.ceca.2021.102408 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gök, Caglar
Main, Alice
Gao, Xing
Kerekes, Zsombor
Plain, Fiona
Kuo, Chien-Wen
Robertson, Alan D.
Fraser, Niall J.
Fuller, William
Insights into the molecular basis of the palmitoylation and depalmitoylation of NCX1
title Insights into the molecular basis of the palmitoylation and depalmitoylation of NCX1
title_full Insights into the molecular basis of the palmitoylation and depalmitoylation of NCX1
title_fullStr Insights into the molecular basis of the palmitoylation and depalmitoylation of NCX1
title_full_unstemmed Insights into the molecular basis of the palmitoylation and depalmitoylation of NCX1
title_short Insights into the molecular basis of the palmitoylation and depalmitoylation of NCX1
title_sort insights into the molecular basis of the palmitoylation and depalmitoylation of ncx1
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8278489/
https://www.ncbi.nlm.nih.gov/pubmed/33873072
http://dx.doi.org/10.1016/j.ceca.2021.102408
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