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The force loading rate drives cell mechanosensing through both reinforcement and fluidization

Ion Andreu, Bryan Falcones, Sebastian Hurst, Nimesh Chahare, Xarxa Quiroga, Anabel-Lise Le Roux, Zanetta Kechagia, Amy E.M. Beedle, Alberto Elósegui-Artola, Xavier Trepat, Ramon Farré, Timo Betz, Isaac Almendros, Pere Roca-Cusachs
doi: https://doi.org/10.1101/2021.03.08.434428
Ion Andreu
1Institute for Bioengineering of Catalonia (IBEC), the Barcelona Institute of Technology (BIST), 08028 Barcelona, Spain
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Bryan Falcones
1Institute for Bioengineering of Catalonia (IBEC), the Barcelona Institute of Technology (BIST), 08028 Barcelona, Spain
2Universitat de Barcelona, 08036 Barcelona, Spain
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Sebastian Hurst
4Institute of Cell Biology, Center of Molecular Biology of Inflammation (ZMBE), University of Münster, Von-Esmarch-Straße 56, 48149 Münster
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Nimesh Chahare
1Institute for Bioengineering of Catalonia (IBEC), the Barcelona Institute of Technology (BIST), 08028 Barcelona, Spain
3Universitat Politècnica de Catalunya (UPC), Campus Nord, Carrer de Jordi Girona, 1, 3, 08034 Barcelona
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Xarxa Quiroga
1Institute for Bioengineering of Catalonia (IBEC), the Barcelona Institute of Technology (BIST), 08028 Barcelona, Spain
2Universitat de Barcelona, 08036 Barcelona, Spain
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Anabel-Lise Le Roux
1Institute for Bioengineering of Catalonia (IBEC), the Barcelona Institute of Technology (BIST), 08028 Barcelona, Spain
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Zanetta Kechagia
1Institute for Bioengineering of Catalonia (IBEC), the Barcelona Institute of Technology (BIST), 08028 Barcelona, Spain
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Amy E.M. Beedle
1Institute for Bioengineering of Catalonia (IBEC), the Barcelona Institute of Technology (BIST), 08028 Barcelona, Spain
5Department of Physics, King’s College London, Strand, WC2R 2LS London, United Kingdom
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Alberto Elósegui-Artola
1Institute for Bioengineering of Catalonia (IBEC), the Barcelona Institute of Technology (BIST), 08028 Barcelona, Spain
6Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University, 58 Oxford St., Cambridge, MA, 02138 USA
7Wyss Institute for Biologically Inspired Engineering, 3 Blackfan Circle, Boston, MA, 02115 USA
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Xavier Trepat
1Institute for Bioengineering of Catalonia (IBEC), the Barcelona Institute of Technology (BIST), 08028 Barcelona, Spain
2Universitat de Barcelona, 08036 Barcelona, Spain
8Institució Catalana de Recerca i Estudis Avançats (ICREA), Passeig de Lluís Companys, 23, 08010 Barcelona
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Ramon Farré
2Universitat de Barcelona, 08036 Barcelona, Spain
9CIBER de Enfermedades Respiratorias, Madrid
10Institut d’Investigacions Biomèdiques August Pi Sunyer, Barcelona
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Timo Betz
4Institute of Cell Biology, Center of Molecular Biology of Inflammation (ZMBE), University of Münster, Von-Esmarch-Straße 56, 48149 Münster
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Isaac Almendros
2Universitat de Barcelona, 08036 Barcelona, Spain
9CIBER de Enfermedades Respiratorias, Madrid
10Institut d’Investigacions Biomèdiques August Pi Sunyer, Barcelona
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  • For correspondence: isaac.almendros@ub.edu rocacusachs@ub.edu
Pere Roca-Cusachs
1Institute for Bioengineering of Catalonia (IBEC), the Barcelona Institute of Technology (BIST), 08028 Barcelona, Spain
2Universitat de Barcelona, 08036 Barcelona, Spain
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  • For correspondence: isaac.almendros@ub.edu rocacusachs@ub.edu
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Abstract

Cell response to force regulates essential processes in health and disease. However, the fundamental mechanical variables that cells sense and respond to remain unclear. Here we show that the rate of force application (loading rate) drives mechanosensing, as predicted by a molecular clutch model. By applying dynamic force regimes to cells through substrate stretching, optical tweezers, and atomic force microscopy, we find that increasing loading rates trigger talin-dependent mechanosensing, leading to adhesion growth and reinforcement, and YAP nuclear localization. However, above a given threshold the actin cytoskeleton undergoes fluidization and softens, decreasing loading rates and preventing reinforcement. By stretching rat lungs in vivo, we show that a similar phenomenon occurs at the organ level. Our results show that cell sensing of external forces and of passive mechanical parameters (like tissue stiffness) can be understood through the same mechanisms, driven by the properties under force of the mechanosensing molecules involved.

Competing Interest Statement

The authors have declared no competing interest.

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The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. All rights reserved. No reuse allowed without permission.
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Posted March 08, 2021.
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The force loading rate drives cell mechanosensing through both reinforcement and fluidization
Ion Andreu, Bryan Falcones, Sebastian Hurst, Nimesh Chahare, Xarxa Quiroga, Anabel-Lise Le Roux, Zanetta Kechagia, Amy E.M. Beedle, Alberto Elósegui-Artola, Xavier Trepat, Ramon Farré, Timo Betz, Isaac Almendros, Pere Roca-Cusachs
bioRxiv 2021.03.08.434428; doi: https://doi.org/10.1101/2021.03.08.434428
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The force loading rate drives cell mechanosensing through both reinforcement and fluidization
Ion Andreu, Bryan Falcones, Sebastian Hurst, Nimesh Chahare, Xarxa Quiroga, Anabel-Lise Le Roux, Zanetta Kechagia, Amy E.M. Beedle, Alberto Elósegui-Artola, Xavier Trepat, Ramon Farré, Timo Betz, Isaac Almendros, Pere Roca-Cusachs
bioRxiv 2021.03.08.434428; doi: https://doi.org/10.1101/2021.03.08.434428

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