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Human Small Heat Shock Protein B8 Inhibits Protein Aggregation without Affecting the Native Folding Process

[Image: see text] Small Heat Shock Proteins (sHSPs) are key components of our Protein Quality Control system and are thought to act as reservoirs that neutralize irreversible protein aggregation. Yet, sHSPs can also act as sequestrases, promoting protein sequestration into aggregates, thus challengi...

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Autores principales: Choudhary, Dhawal, Mediani, Laura, Avellaneda, Mario J., Bjarnason, Sveinn, Alberti, Simon, Boczek, Edgar E., Heidarsson, Pétur O., Mossa, Alessandro, Carra, Serena, Tans, Sander J., Cecconi, Ciro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10360156/
https://www.ncbi.nlm.nih.gov/pubmed/37411010
http://dx.doi.org/10.1021/jacs.3c02022
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author Choudhary, Dhawal
Mediani, Laura
Avellaneda, Mario J.
Bjarnason, Sveinn
Alberti, Simon
Boczek, Edgar E.
Heidarsson, Pétur O.
Mossa, Alessandro
Carra, Serena
Tans, Sander J.
Cecconi, Ciro
author_facet Choudhary, Dhawal
Mediani, Laura
Avellaneda, Mario J.
Bjarnason, Sveinn
Alberti, Simon
Boczek, Edgar E.
Heidarsson, Pétur O.
Mossa, Alessandro
Carra, Serena
Tans, Sander J.
Cecconi, Ciro
author_sort Choudhary, Dhawal
collection PubMed
description [Image: see text] Small Heat Shock Proteins (sHSPs) are key components of our Protein Quality Control system and are thought to act as reservoirs that neutralize irreversible protein aggregation. Yet, sHSPs can also act as sequestrases, promoting protein sequestration into aggregates, thus challenging our understanding of their exact mechanisms of action. Here, we employ optical tweezers to explore the mechanisms of action of the human small heat shock protein HSPB8 and its pathogenic mutant K141E, which is associated with neuromuscular disease. Through single-molecule manipulation experiments, we studied how HSPB8 and its K141E mutant affect the refolding and aggregation processes of the maltose binding protein. Our data show that HSPB8 selectively suppresses protein aggregation without affecting the native folding process. This anti-aggregation mechanism is distinct from previous models that rely on the stabilization of unfolded polypeptide chains or partially folded structures, as has been reported for other chaperones. Rather, it appears that HSPB8 selectively recognizes and binds to aggregated species formed at the early stages of aggregation, preventing them from growing into larger aggregated structures. Consistently, the K141E mutation specifically targets the affinity for aggregated structures without impacting native folding, and hence impairs its anti-aggregation activity.
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spelling pubmed-103601562023-07-22 Human Small Heat Shock Protein B8 Inhibits Protein Aggregation without Affecting the Native Folding Process Choudhary, Dhawal Mediani, Laura Avellaneda, Mario J. Bjarnason, Sveinn Alberti, Simon Boczek, Edgar E. Heidarsson, Pétur O. Mossa, Alessandro Carra, Serena Tans, Sander J. Cecconi, Ciro J Am Chem Soc [Image: see text] Small Heat Shock Proteins (sHSPs) are key components of our Protein Quality Control system and are thought to act as reservoirs that neutralize irreversible protein aggregation. Yet, sHSPs can also act as sequestrases, promoting protein sequestration into aggregates, thus challenging our understanding of their exact mechanisms of action. Here, we employ optical tweezers to explore the mechanisms of action of the human small heat shock protein HSPB8 and its pathogenic mutant K141E, which is associated with neuromuscular disease. Through single-molecule manipulation experiments, we studied how HSPB8 and its K141E mutant affect the refolding and aggregation processes of the maltose binding protein. Our data show that HSPB8 selectively suppresses protein aggregation without affecting the native folding process. This anti-aggregation mechanism is distinct from previous models that rely on the stabilization of unfolded polypeptide chains or partially folded structures, as has been reported for other chaperones. Rather, it appears that HSPB8 selectively recognizes and binds to aggregated species formed at the early stages of aggregation, preventing them from growing into larger aggregated structures. Consistently, the K141E mutation specifically targets the affinity for aggregated structures without impacting native folding, and hence impairs its anti-aggregation activity. American Chemical Society 2023-07-06 /pmc/articles/PMC10360156/ /pubmed/37411010 http://dx.doi.org/10.1021/jacs.3c02022 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Choudhary, Dhawal
Mediani, Laura
Avellaneda, Mario J.
Bjarnason, Sveinn
Alberti, Simon
Boczek, Edgar E.
Heidarsson, Pétur O.
Mossa, Alessandro
Carra, Serena
Tans, Sander J.
Cecconi, Ciro
Human Small Heat Shock Protein B8 Inhibits Protein Aggregation without Affecting the Native Folding Process
title Human Small Heat Shock Protein B8 Inhibits Protein Aggregation without Affecting the Native Folding Process
title_full Human Small Heat Shock Protein B8 Inhibits Protein Aggregation without Affecting the Native Folding Process
title_fullStr Human Small Heat Shock Protein B8 Inhibits Protein Aggregation without Affecting the Native Folding Process
title_full_unstemmed Human Small Heat Shock Protein B8 Inhibits Protein Aggregation without Affecting the Native Folding Process
title_short Human Small Heat Shock Protein B8 Inhibits Protein Aggregation without Affecting the Native Folding Process
title_sort human small heat shock protein b8 inhibits protein aggregation without affecting the native folding process
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10360156/
https://www.ncbi.nlm.nih.gov/pubmed/37411010
http://dx.doi.org/10.1021/jacs.3c02022
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