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Conformational regulation and target-myristoyl switch of calcineurin B homologous protein 3

Calcineurin B homologous protein 3 (CHP3) is an EF-hand Ca(2+)-binding protein involved in regulation of cancerogenesis, cardiac hypertrophy, and neuronal development through interactions with sodium/proton exchangers (NHEs) and signalling proteins. While the importance of Ca(2+) binding and myristo...

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Autores principales: Becker, Florian, Fuchs, Simon, Refisch, Lukas, Drepper, Friedel, Bildl, Wolfgang, Schulte, Uwe, Liang, Shuo, Heinicke, Jonas Immanuel, Hansen, Sierra C, Kreutz, Clemens, Warscheid, Bettina, Fakler, Bernd, Mymrikov, Evgeny V, Hunte, Carola
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10368425/
https://www.ncbi.nlm.nih.gov/pubmed/37435805
http://dx.doi.org/10.7554/eLife.83868
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author Becker, Florian
Fuchs, Simon
Refisch, Lukas
Drepper, Friedel
Bildl, Wolfgang
Schulte, Uwe
Liang, Shuo
Heinicke, Jonas Immanuel
Hansen, Sierra C
Kreutz, Clemens
Warscheid, Bettina
Fakler, Bernd
Mymrikov, Evgeny V
Hunte, Carola
author_facet Becker, Florian
Fuchs, Simon
Refisch, Lukas
Drepper, Friedel
Bildl, Wolfgang
Schulte, Uwe
Liang, Shuo
Heinicke, Jonas Immanuel
Hansen, Sierra C
Kreutz, Clemens
Warscheid, Bettina
Fakler, Bernd
Mymrikov, Evgeny V
Hunte, Carola
author_sort Becker, Florian
collection PubMed
description Calcineurin B homologous protein 3 (CHP3) is an EF-hand Ca(2+)-binding protein involved in regulation of cancerogenesis, cardiac hypertrophy, and neuronal development through interactions with sodium/proton exchangers (NHEs) and signalling proteins. While the importance of Ca(2+) binding and myristoylation for CHP3 function has been recognized, the underlying molecular mechanism remained elusive. In this study, we demonstrate that Ca(2+) binding and myristoylation independently affect the conformation and functions of human CHP3. Ca(2+) binding increased local flexibility and hydrophobicity of CHP3 indicative of an open conformation. The Ca(2+)-bound CHP3 exhibited a higher affinity for NHE1 and associated stronger with lipid membranes compared to the Mg(2+)-bound CHP3, which adopted a closed conformation. Myristoylation enhanced the local flexibility of CHP3 and decreased its affinity to NHE1 independently of the bound ion, but did not affect its binding to lipid membranes. The data exclude the proposed Ca(2+)-myristoyl switch for CHP3. Instead, a Ca(2+)-independent exposure of the myristoyl moiety is induced by binding of the target peptide to CHP3 enhancing its association to lipid membranes. We name this novel regulatory mechanism ‘target-myristoyl switch’. Collectively, the interplay of Ca(2+) binding, myristoylation, and target binding allows for a context-specific regulation of CHP3 functions.
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spelling pubmed-103684252023-07-26 Conformational regulation and target-myristoyl switch of calcineurin B homologous protein 3 Becker, Florian Fuchs, Simon Refisch, Lukas Drepper, Friedel Bildl, Wolfgang Schulte, Uwe Liang, Shuo Heinicke, Jonas Immanuel Hansen, Sierra C Kreutz, Clemens Warscheid, Bettina Fakler, Bernd Mymrikov, Evgeny V Hunte, Carola eLife Biochemistry and Chemical Biology Calcineurin B homologous protein 3 (CHP3) is an EF-hand Ca(2+)-binding protein involved in regulation of cancerogenesis, cardiac hypertrophy, and neuronal development through interactions with sodium/proton exchangers (NHEs) and signalling proteins. While the importance of Ca(2+) binding and myristoylation for CHP3 function has been recognized, the underlying molecular mechanism remained elusive. In this study, we demonstrate that Ca(2+) binding and myristoylation independently affect the conformation and functions of human CHP3. Ca(2+) binding increased local flexibility and hydrophobicity of CHP3 indicative of an open conformation. The Ca(2+)-bound CHP3 exhibited a higher affinity for NHE1 and associated stronger with lipid membranes compared to the Mg(2+)-bound CHP3, which adopted a closed conformation. Myristoylation enhanced the local flexibility of CHP3 and decreased its affinity to NHE1 independently of the bound ion, but did not affect its binding to lipid membranes. The data exclude the proposed Ca(2+)-myristoyl switch for CHP3. Instead, a Ca(2+)-independent exposure of the myristoyl moiety is induced by binding of the target peptide to CHP3 enhancing its association to lipid membranes. We name this novel regulatory mechanism ‘target-myristoyl switch’. Collectively, the interplay of Ca(2+) binding, myristoylation, and target binding allows for a context-specific regulation of CHP3 functions. eLife Sciences Publications, Ltd 2023-07-12 /pmc/articles/PMC10368425/ /pubmed/37435805 http://dx.doi.org/10.7554/eLife.83868 Text en © 2023, Becker, Fuchs et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Biochemistry and Chemical Biology
Becker, Florian
Fuchs, Simon
Refisch, Lukas
Drepper, Friedel
Bildl, Wolfgang
Schulte, Uwe
Liang, Shuo
Heinicke, Jonas Immanuel
Hansen, Sierra C
Kreutz, Clemens
Warscheid, Bettina
Fakler, Bernd
Mymrikov, Evgeny V
Hunte, Carola
Conformational regulation and target-myristoyl switch of calcineurin B homologous protein 3
title Conformational regulation and target-myristoyl switch of calcineurin B homologous protein 3
title_full Conformational regulation and target-myristoyl switch of calcineurin B homologous protein 3
title_fullStr Conformational regulation and target-myristoyl switch of calcineurin B homologous protein 3
title_full_unstemmed Conformational regulation and target-myristoyl switch of calcineurin B homologous protein 3
title_short Conformational regulation and target-myristoyl switch of calcineurin B homologous protein 3
title_sort conformational regulation and target-myristoyl switch of calcineurin b homologous protein 3
topic Biochemistry and Chemical Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10368425/
https://www.ncbi.nlm.nih.gov/pubmed/37435805
http://dx.doi.org/10.7554/eLife.83868
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