Motor crosslinking augments elasticity in active nematics

Fuente: arXiv
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Autori principali: Redford, Steven A., Colen, Jonathan, Shivers, Jordan L., Zemsky, Sasha, Molaei, Mehdi, Floyd, Carlos, Ruijgrok, Paul V., Vitelli, Vincenzo, Bryant, Zev, Dinner, Aaron R., Gardel, Margaret L.
Natura: Preprint
Pubblicazione: 2023
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author Redford, Steven A.
Colen, Jonathan
Shivers, Jordan L.
Zemsky, Sasha
Molaei, Mehdi
Floyd, Carlos
Ruijgrok, Paul V.
Vitelli, Vincenzo
Bryant, Zev
Dinner, Aaron R.
Gardel, Margaret L.
author_facet Redford, Steven A.
Colen, Jonathan
Shivers, Jordan L.
Zemsky, Sasha
Molaei, Mehdi
Floyd, Carlos
Ruijgrok, Paul V.
Vitelli, Vincenzo
Bryant, Zev
Dinner, Aaron R.
Gardel, Margaret L.
contents In active materials, uncoordinated internal stresses lead to emergent long-range flows. An understanding of how the behavior of active materials depends on mesoscopic (hydrodynamic) parameters is developing, but there remains a gap in knowledge concerning how hydrodynamic parameters depend on the properties of microscopic elements. In this work, we combine experiments and multiscale modeling to relate the structure and dynamics of active nematics composed of biopolymer filaments and molecular motors to their microscopic properties, in particular motor processivity, speed, and valency. We show that crosslinking of filaments by both motors and passive crosslinkers not only augments the contributions to nematic elasticity from excluded volume effects but dominates them. By altering motor kinetics we show that a competition between motor speed and crosslinking results in a nonmonotonic dependence of nematic flow on motor speed. By modulating passive filament crosslinking we show that energy transfer into nematic flow is in large part dictated by crosslinking. Thus motor proteins both generate activity and contribute to nematic elasticity. Our results provide new insights for rationally engineering active materials.
format Preprint
id arxiv_https___arxiv_org_abs_2308_16831
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Motor crosslinking augments elasticity in active nematics
Redford, Steven A.
Colen, Jonathan
Shivers, Jordan L.
Zemsky, Sasha
Molaei, Mehdi
Floyd, Carlos
Ruijgrok, Paul V.
Vitelli, Vincenzo
Bryant, Zev
Dinner, Aaron R.
Gardel, Margaret L.
Soft Condensed Matter
Biological Physics
In active materials, uncoordinated internal stresses lead to emergent long-range flows. An understanding of how the behavior of active materials depends on mesoscopic (hydrodynamic) parameters is developing, but there remains a gap in knowledge concerning how hydrodynamic parameters depend on the properties of microscopic elements. In this work, we combine experiments and multiscale modeling to relate the structure and dynamics of active nematics composed of biopolymer filaments and molecular motors to their microscopic properties, in particular motor processivity, speed, and valency. We show that crosslinking of filaments by both motors and passive crosslinkers not only augments the contributions to nematic elasticity from excluded volume effects but dominates them. By altering motor kinetics we show that a competition between motor speed and crosslinking results in a nonmonotonic dependence of nematic flow on motor speed. By modulating passive filament crosslinking we show that energy transfer into nematic flow is in large part dictated by crosslinking. Thus motor proteins both generate activity and contribute to nematic elasticity. Our results provide new insights for rationally engineering active materials.
title Motor crosslinking augments elasticity in active nematics
topic Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2308.16831