A direct computational assessment of vinculin–actin unbinding kinetics reveals catch-bonding behavior

W Willmor J. Peña Ccoa (Department of Chemistry) F Fatemah Mukadum (Department of Chemistry) A Aubin Ramon (Centre for Misfolding Diseases, Yusuf Hamied Department of Chemistry) G Guillaume Stirnemann (CPCV, Département de Chimie) G Glen M. Hocky (Department of Chemistry)

Abstract

Vinculin forms a catch bond with the cytoskeletal polymer actin, displaying an increased bond lifetime upon force application. Notably, this behavior depends on the direction of the applied force, which has significant implications for cellular mechanotransduction. In this work, we present a comprehensive molecular dynamics simulation study, employing enhanced sampling techniques to investigate the thermodynamic, kinetic, and mechanistic aspects of this phenomenon at physiologically relevant forces. We dissect a catch bond mechanism in which force shifts vinculin between either a weakly or strongly bound state. Our results demonstrate that models for these states have unbinding times consistent with those from single-molecule studies, and suggest that both have some intrinsic catch-bonding behavior. We provide atomistic insight into this behavior, and show how a directional pulling force can promote the strong or weak state. Crucially, our strategy can be extended to measure the difficult-to-capture effects of small mechanical forces on biomolecular systems in general, and those involved in mechanotransduction more specifically.

Article Details

Volume / Issue Vol. 122, Issue 21
Published May 27, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (5)

W

Willmor J. Peña Ccoa

Department of Chemistry

F

Fatemah Mukadum

Department of Chemistry

A

Aubin Ramon

Centre for Misfolding Diseases, Yusuf Hamied Department of Chemistry

G

Guillaume Stirnemann

CPCV, Département de Chimie

G

Glen M. Hocky

Department of Chemistry