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Mechanotransduction In Vivo by Repeated Talin Stretch-Relaxation Events Depends upon Vinculin

Mechanotransduction is a critical function for cells, in terms of cell viability, shaping of tissues, and cellular behavior. In vitro, cellular level forces can stretch adhesion proteins that link extracellular matrix to the actin cytoskeleton exposing hidden binding sites. However, there is no evid...

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Autores principales: Margadant, Felix, Chew, Li Li, Hu, Xian, Yu, Hanry, Bate, Neil, Zhang, Xian, Sheetz, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3243729/
https://www.ncbi.nlm.nih.gov/pubmed/22205879
http://dx.doi.org/10.1371/journal.pbio.1001223
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author Margadant, Felix
Chew, Li Li
Hu, Xian
Yu, Hanry
Bate, Neil
Zhang, Xian
Sheetz, Michael
author_facet Margadant, Felix
Chew, Li Li
Hu, Xian
Yu, Hanry
Bate, Neil
Zhang, Xian
Sheetz, Michael
author_sort Margadant, Felix
collection PubMed
description Mechanotransduction is a critical function for cells, in terms of cell viability, shaping of tissues, and cellular behavior. In vitro, cellular level forces can stretch adhesion proteins that link extracellular matrix to the actin cytoskeleton exposing hidden binding sites. However, there is no evidence that in vivo forces produce significant in vivo stretching to cause domain unfolding. We now report that the adhesion protein, talin, is repeatedly stretched by 100–350 nm in vivo by myosin contraction of actin filaments. Using a functional EGFP-N-Talin1-C-mCherry to measure the length of single talin molecules, we observed that the C-terminal mCherry was normally displaced in the direction of actin flow by 90 to >250 nm from N-EGFP but only by 50–60 nm (talin's length in vitro) after myosin inhibition. Individual talin molecules transiently stretched and relaxed. Peripheral, multimolecular adhesions had green outside and red proximal edges. They also exhibited transient, myosin-dependent stretching of 50–350 nm for 6–16 s; however, expression of the talin-binding head of vinculin increased stretching to about 400 nm and suppressed dynamics. We suggest that rearward moving actin filaments bind, stretch, and release talin in multiple, stochastic stick-slip cycles and that multiple vinculin binding and release cycles integrate pulling on matrices into biochemical signals.
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spelling pubmed-32437292011-12-28 Mechanotransduction In Vivo by Repeated Talin Stretch-Relaxation Events Depends upon Vinculin Margadant, Felix Chew, Li Li Hu, Xian Yu, Hanry Bate, Neil Zhang, Xian Sheetz, Michael PLoS Biol Research Article Mechanotransduction is a critical function for cells, in terms of cell viability, shaping of tissues, and cellular behavior. In vitro, cellular level forces can stretch adhesion proteins that link extracellular matrix to the actin cytoskeleton exposing hidden binding sites. However, there is no evidence that in vivo forces produce significant in vivo stretching to cause domain unfolding. We now report that the adhesion protein, talin, is repeatedly stretched by 100–350 nm in vivo by myosin contraction of actin filaments. Using a functional EGFP-N-Talin1-C-mCherry to measure the length of single talin molecules, we observed that the C-terminal mCherry was normally displaced in the direction of actin flow by 90 to >250 nm from N-EGFP but only by 50–60 nm (talin's length in vitro) after myosin inhibition. Individual talin molecules transiently stretched and relaxed. Peripheral, multimolecular adhesions had green outside and red proximal edges. They also exhibited transient, myosin-dependent stretching of 50–350 nm for 6–16 s; however, expression of the talin-binding head of vinculin increased stretching to about 400 nm and suppressed dynamics. We suggest that rearward moving actin filaments bind, stretch, and release talin in multiple, stochastic stick-slip cycles and that multiple vinculin binding and release cycles integrate pulling on matrices into biochemical signals. Public Library of Science 2011-12-20 /pmc/articles/PMC3243729/ /pubmed/22205879 http://dx.doi.org/10.1371/journal.pbio.1001223 Text en Margadant et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Margadant, Felix
Chew, Li Li
Hu, Xian
Yu, Hanry
Bate, Neil
Zhang, Xian
Sheetz, Michael
Mechanotransduction In Vivo by Repeated Talin Stretch-Relaxation Events Depends upon Vinculin
title Mechanotransduction In Vivo by Repeated Talin Stretch-Relaxation Events Depends upon Vinculin
title_full Mechanotransduction In Vivo by Repeated Talin Stretch-Relaxation Events Depends upon Vinculin
title_fullStr Mechanotransduction In Vivo by Repeated Talin Stretch-Relaxation Events Depends upon Vinculin
title_full_unstemmed Mechanotransduction In Vivo by Repeated Talin Stretch-Relaxation Events Depends upon Vinculin
title_short Mechanotransduction In Vivo by Repeated Talin Stretch-Relaxation Events Depends upon Vinculin
title_sort mechanotransduction in vivo by repeated talin stretch-relaxation events depends upon vinculin
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3243729/
https://www.ncbi.nlm.nih.gov/pubmed/22205879
http://dx.doi.org/10.1371/journal.pbio.1001223
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