arrow
Return

Engineering an artificial catch bond using mechanical anisotropy

delete2024-04-08
delete2
delete
OA
AI
Z
Zhaowei Liu
H
Haipei Liu
A
Andrés Manuel Vera
B
Byeongseon Yang
P
Philip Tinnefeld
M
Michael A. Nash *
DOI:10.1038/s41467-024-46858-9delete
deleteOriginal
deleteShare
deleteSave
View PDF
Abstract

Abstract

En 中文
Catch bonds are a rare class of protein-protein interactions where the bond lifetime increases under an external pulling force. Here, we report how modification of anchor geometry generates catch bonding behavior for the mechanostable Dockerin G:Cohesin E (DocG:CohE) adhesion complex found on human gut bacteria. Using AFM single-molecule force spectroscopy in combination with bioorthogonal click chemistry, we mechanically dissociate the complex using five precisely controlled anchor geometries. When tension is applied between residue #13 on CohE and the N-terminus of DocG, the complex behaves as a two-state catch bond, while in all other tested pulling geometries, including the native configuration, it behaves as a slip bond. We use a kinetic Monte Carlo model with experimentally derived parameters to simulate rupture force and lifetime distributions, achieving strong agreement with experiments. Single-molecule FRET measurements further demonstrate that the complex does not exhibit dual binding mode behavior at equilibrium but unbinds along multiple pathways under force. Together, these results show how mechanical anisotropy and anchor point selection can be used to engineer artificial catch bonds. Catch bonds are unique protein-protein interactions where the bond lifetime increases under external pulling forces. Here, the authors engineer an artificial catch bond based on a non-catch bonding human gut bacterial adhesion protein complex.
Keywords:
SINGLE-MOLECULE FRET
DUAL BINDING MODE
ADHESION
FORCE
FORMS
DNA
SURFACE
CODE
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Nature Communications cover
Nature Communications
IF:
15.7
Papers:
9.3W
Citations:
91.2W

Organization

U
University of Basel
Scholars:
3.1W
Papers: 2.4W
Citations: 38
E
ETH Zurich
Scholars:
3.0W
Papers: 2.4W
Citations: 8.4W