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HspB1 phosphorylation regulates its intramolecular dynamics and mechanosensitive molecular chaperone interaction with filamin C

Mechanical force–induced conformational changes in proteins underpin a variety of physiological functions, typified in muscle contractile machinery. Mutations in the actin-binding protein filamin C (FLNC) are linked to musculoskeletal pathologies characterized by altered biomechanical properties and...

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Autores principales: Collier, Miranda P., Alderson, T. Reid, de Villiers, Carin P., Nicholls, Daisy, Gastall, Heidi Y., Allison, Timothy M., Degiacomi, Matteo T., Jiang, He, Mlynek, Georg, Fürst, Dieter O., van der Ven, Peter F. M., Djinovic-Carugo, Kristina, Baldwin, Andrew J., Watkins, Hugh, Gehmlich, Katja, Benesch, Justin L. P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6530996/
https://www.ncbi.nlm.nih.gov/pubmed/31131323
http://dx.doi.org/10.1126/sciadv.aav8421
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author Collier, Miranda P.
Alderson, T. Reid
de Villiers, Carin P.
Nicholls, Daisy
Gastall, Heidi Y.
Allison, Timothy M.
Degiacomi, Matteo T.
Jiang, He
Mlynek, Georg
Fürst, Dieter O.
van der Ven, Peter F. M.
Djinovic-Carugo, Kristina
Baldwin, Andrew J.
Watkins, Hugh
Gehmlich, Katja
Benesch, Justin L. P.
author_facet Collier, Miranda P.
Alderson, T. Reid
de Villiers, Carin P.
Nicholls, Daisy
Gastall, Heidi Y.
Allison, Timothy M.
Degiacomi, Matteo T.
Jiang, He
Mlynek, Georg
Fürst, Dieter O.
van der Ven, Peter F. M.
Djinovic-Carugo, Kristina
Baldwin, Andrew J.
Watkins, Hugh
Gehmlich, Katja
Benesch, Justin L. P.
author_sort Collier, Miranda P.
collection PubMed
description Mechanical force–induced conformational changes in proteins underpin a variety of physiological functions, typified in muscle contractile machinery. Mutations in the actin-binding protein filamin C (FLNC) are linked to musculoskeletal pathologies characterized by altered biomechanical properties and sometimes aggregates. HspB1, an abundant molecular chaperone, is prevalent in striated muscle where it is phosphorylated in response to cues including mechanical stress. We report the interaction and up-regulation of both proteins in three mouse models of biomechanical stress, with HspB1 being phosphorylated and FLNC being localized to load-bearing sites. We show how phosphorylation leads to increased exposure of the residues surrounding the HspB1 phosphosite, facilitating their binding to a compact multidomain region of FLNC proposed to have mechanosensing functions. Steered unfolding of FLNC reveals that its extension trajectory is modulated by the phosphorylated region of HspB1. This may represent a posttranslationally regulated chaperone-client protection mechanism targeting over-extension during mechanical stress.
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spelling pubmed-65309962019-05-26 HspB1 phosphorylation regulates its intramolecular dynamics and mechanosensitive molecular chaperone interaction with filamin C Collier, Miranda P. Alderson, T. Reid de Villiers, Carin P. Nicholls, Daisy Gastall, Heidi Y. Allison, Timothy M. Degiacomi, Matteo T. Jiang, He Mlynek, Georg Fürst, Dieter O. van der Ven, Peter F. M. Djinovic-Carugo, Kristina Baldwin, Andrew J. Watkins, Hugh Gehmlich, Katja Benesch, Justin L. P. Sci Adv Research Articles Mechanical force–induced conformational changes in proteins underpin a variety of physiological functions, typified in muscle contractile machinery. Mutations in the actin-binding protein filamin C (FLNC) are linked to musculoskeletal pathologies characterized by altered biomechanical properties and sometimes aggregates. HspB1, an abundant molecular chaperone, is prevalent in striated muscle where it is phosphorylated in response to cues including mechanical stress. We report the interaction and up-regulation of both proteins in three mouse models of biomechanical stress, with HspB1 being phosphorylated and FLNC being localized to load-bearing sites. We show how phosphorylation leads to increased exposure of the residues surrounding the HspB1 phosphosite, facilitating their binding to a compact multidomain region of FLNC proposed to have mechanosensing functions. Steered unfolding of FLNC reveals that its extension trajectory is modulated by the phosphorylated region of HspB1. This may represent a posttranslationally regulated chaperone-client protection mechanism targeting over-extension during mechanical stress. American Association for the Advancement of Science 2019-05-22 /pmc/articles/PMC6530996/ /pubmed/31131323 http://dx.doi.org/10.1126/sciadv.aav8421 Text en Copyright © 2019 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution License 4.0 (CC BY). http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Collier, Miranda P.
Alderson, T. Reid
de Villiers, Carin P.
Nicholls, Daisy
Gastall, Heidi Y.
Allison, Timothy M.
Degiacomi, Matteo T.
Jiang, He
Mlynek, Georg
Fürst, Dieter O.
van der Ven, Peter F. M.
Djinovic-Carugo, Kristina
Baldwin, Andrew J.
Watkins, Hugh
Gehmlich, Katja
Benesch, Justin L. P.
HspB1 phosphorylation regulates its intramolecular dynamics and mechanosensitive molecular chaperone interaction with filamin C
title HspB1 phosphorylation regulates its intramolecular dynamics and mechanosensitive molecular chaperone interaction with filamin C
title_full HspB1 phosphorylation regulates its intramolecular dynamics and mechanosensitive molecular chaperone interaction with filamin C
title_fullStr HspB1 phosphorylation regulates its intramolecular dynamics and mechanosensitive molecular chaperone interaction with filamin C
title_full_unstemmed HspB1 phosphorylation regulates its intramolecular dynamics and mechanosensitive molecular chaperone interaction with filamin C
title_short HspB1 phosphorylation regulates its intramolecular dynamics and mechanosensitive molecular chaperone interaction with filamin C
title_sort hspb1 phosphorylation regulates its intramolecular dynamics and mechanosensitive molecular chaperone interaction with filamin c
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6530996/
https://www.ncbi.nlm.nih.gov/pubmed/31131323
http://dx.doi.org/10.1126/sciadv.aav8421
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