English

Nonlinear contractile response of actomyosin active gels to control signals

Soft Condensed Matter 2025-03-03 v1 Biological Physics

Abstract

Biological systems tightly regulate their physiological state using control signals. This includes the actomyosin cytoskeleton, a contractile active gel that consumes chemical free energy to drive many examples of cellular mechanical behavior. Upstream regulatory pathways activate or inhibit actomyosin activity. However, the contractile response of the actomyosin cytoskeleton to control signals remains poorly characterized. Here we employ reconstituted actomyosin active gels and subject them to step and pulsatile activation inputs. We find evidence for a nonlinear impulse response, which we quantify via a transfer function δε/δg\delta \varepsilon / \delta g that relates input free-energy pulses δg\delta g to output strain pulses δε\delta \varepsilon. We find a scaling relation δε/δgg0.3\delta \varepsilon / \delta g \sim g^{-0.3}. The negative sign of the exponent represents a decreased effectiveness of a contracting gel in converting energy to strain. We ascribe nonlinearity in our system to a density-dependent mechanism, which contrasts strain-stiffening nonlinear responses to external stresses. Contractile response to control signals is an essential step toward understanding how information from mechanical signaling processes flow through actomyosin networks in living, and likely also synthetic, cells.

Keywords

Cite

@article{arxiv.2502.18672,
  title  = {Nonlinear contractile response of actomyosin active gels to control signals},
  author = {James Clarke and Francis Cavanna and Aniket Marne and Anthony Davolio and José Alvarado},
  journal= {arXiv preprint arXiv:2502.18672},
  year   = {2025}
}

Comments

Main text - 24 pages (with references), 3 Figures; Supplemental Material - 17 pages (with references), 1 Figure