Active Multistage Coarsening of Actin Networks Driven by Myosin Motors
Overview
Authors
Affiliations
In cells, many vital processes involve myosin-driven motility that actively remodels the actin cytoskeleton and changes cell shape. Here we study how the collective action of myosin motors organizes actin filaments into contractile structures in a simplified model system devoid of biochemical regulation. We show that this self-organization occurs through an active multistage coarsening process. First, motors form dense foci by moving along the actin network structure followed by coalescence. Then the foci accumulate actin filaments in a shell around them. These actomyosin condensates eventually cluster due to motor-driven coalescence. We propose that the physical origin of this multistage aggregation is the highly asymmetric load response of actin filaments: they can support large tensions but buckle easily under piconewton compressive loads. Because the motor-generated forces well exceed this threshold, buckling is induced on the connected actin network that resists motor-driven filament sliding. We show how this buckling can give rise to the accumulation of actin shells around myosin foci and subsequent coalescence of foci into superaggregates. This new physical mechanism provides an explanation for the formation and contractile dynamics of disordered condensed actomyosin states observed in vivo.
Myosin Light Chains in the Progression of Cancer.
Kozole S, Beningo K Cells. 2025; 13(24.
PMID: 39768172 PMC: 11674124. DOI: 10.3390/cells13242081.
ATP-induced reconfiguration of the micro-viscoelasticity of cardiac and skeletal myosin solutions.
Dominguez-Garcia P, Pinto J, Akrap A, Jeney S Appl Phys Lett. 2024; 125(17):173702.
PMID: 39444380 PMC: 11495876. DOI: 10.1063/5.0224003.
Livne G, Gat S, Armon S, Bernheim-Groswasser A Proc Natl Acad Sci U S A. 2024; 121(2):e2309125121.
PMID: 38175871 PMC: 10786314. DOI: 10.1073/pnas.2309125121.
Limiting pool and actin architecture controls myosin cluster sizes in adherent cells.
Chou W, Molaei M, Wu H, Oakes P, Beach J, Gardel M Biophys J. 2023; 123(2):157-171.
PMID: 38062704 PMC: 10808045. DOI: 10.1016/j.bpj.2023.12.004.
Direct detection of deformation modes on varying length scales in active biopolymer networks.
Stam S, Gardel M, Weirich K bioRxiv. 2023; .
PMID: 37292666 PMC: 10245561. DOI: 10.1101/2023.05.15.540780.