Excitability and travelling waves in renewable active matter

Fuente: arXiv
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Main Authors: Abhishek, M., Dhanuka, Ankit, Banerjee, Deb Sankar, Rao, Madan
Format: Preprint
Published: 2025
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author Abhishek, M.
Dhanuka, Ankit
Banerjee, Deb Sankar
Rao, Madan
author_facet Abhishek, M.
Dhanuka, Ankit
Banerjee, Deb Sankar
Rao, Madan
contents Activity and renewability are distinctive features of living matter, and constitute a new class of materials that we term renewable active matter. A striking example is the cell cytoskeleton, where myosin filaments bind to the actin meshwork, apply contractile stresses and undergo continual stress/strain dependent turnover, thus acting as both force generators and sensors. As a consequence of nonreciprocity, arising from the independence of action and response, such living matter exhibits unusual mechanical properties like, segregation without attraction, fragility and force chains. Here we show that the interplay between activity and turnover gives rise to mechanical excitability in the form of travelling waves and pulses, and spatiotemporal chaos. We provide a systematic study of the nucleation, movement and shape of the travelling pulse, and present a boundary layer analysis to establish the existence of homoclinic orbits. Our analytical results are supported by detailed numerical analysis of the governing partial differential equations. This study has implications for the observed mechanical excitability in a variety of cellular contexts such as in isolated adherent cells and confluent cells within tissues.
format Preprint
id arxiv_https___arxiv_org_abs_2503_19687
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Excitability and travelling waves in renewable active matter
Abhishek, M.
Dhanuka, Ankit
Banerjee, Deb Sankar
Rao, Madan
Soft Condensed Matter
Biological Physics
Activity and renewability are distinctive features of living matter, and constitute a new class of materials that we term renewable active matter. A striking example is the cell cytoskeleton, where myosin filaments bind to the actin meshwork, apply contractile stresses and undergo continual stress/strain dependent turnover, thus acting as both force generators and sensors. As a consequence of nonreciprocity, arising from the independence of action and response, such living matter exhibits unusual mechanical properties like, segregation without attraction, fragility and force chains. Here we show that the interplay between activity and turnover gives rise to mechanical excitability in the form of travelling waves and pulses, and spatiotemporal chaos. We provide a systematic study of the nucleation, movement and shape of the travelling pulse, and present a boundary layer analysis to establish the existence of homoclinic orbits. Our analytical results are supported by detailed numerical analysis of the governing partial differential equations. This study has implications for the observed mechanical excitability in a variety of cellular contexts such as in isolated adherent cells and confluent cells within tissues.
title Excitability and travelling waves in renewable active matter
topic Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2503.19687