Issue 4, 2025

Multiscale modelling of active hydrogel elasticity driven by living polymers: softening by bacterial motor protein FtsZ

Abstract

We present a neo-Hookean elasticity theory for hybrid mechano-active hydrogels, integrating motor proteins into polymer meshes to create composite materials with active softening due to modulable chain overlaps. Focusing on polyacrylamide (PA) hydrogels embedded with FtsZ, a bacterial cytokinetic protein powered by GTP, we develop a multiscale model using microscopic Flory theory of rubbery meshes through mesoscopic De Gennes’ scaling concepts for meshwork dynamics and phenomenological Landau's formalism for second-order phase transitions. Our theoretical multiscale model explains the active softening observed in hybrid FtsZ-PA hydrogels by incorporating modulable meshwork dynamics, such as overlapping functionality and reptation dynamics, into an active mean-field of unbinding interactions. The novel FtsZ-based metamaterial and companion multiscale theory offer insights for designing, predicting, and controlling complex active hydrogels, with potential applications in technology and biomedicine.

Graphical abstract: Multiscale modelling of active hydrogel elasticity driven by living polymers: softening by bacterial motor protein FtsZ

Supplementary files

Article information

Article type
Paper
Submitted
10 Jul 2024
Accepted
24 Dec 2024
First published
27 Dec 2024
This article is Open Access
Creative Commons BY-NC license

Soft Matter, 2025,21, 670-686

Multiscale modelling of active hydrogel elasticity driven by living polymers: softening by bacterial motor protein FtsZ

H. López-Menéndez, C. Luque-Rioja, M. Kharbedia, D. Herráez-Aguilar, J. A. Santiago and F. Monroy, Soft Matter, 2025, 21, 670 DOI: 10.1039/D4SM00839A

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