Active gel theory for cell migration with two myosin isoforms
Myosin II molecular motors slide actin filaments relatively to each other and are essential for force generation, motility and mechanosensing in animal cells. For non-muscle cells, evolution has resulted in three different isoforms, which have different properties concerning the motor cycle and also occur in different abundances in the cells, but their respective biological and physical roles are not fully understood. Here we use active gel theory to demonstrate the complementary roles of isoforms A and B for cell migration. We first show that our model can be derived both from coarse-graining kinetic equations and from nonequilibrium thermodynamics as the macroscopic limit of a two-component Tonks gas. We then parametrize the model and show that motile solutions exist, in which the more abundant and more dynamic isoform A is localized to the front and the stronger isoform B to the rear, in agreement with experiments. We then explore the parameter space of the model and find a general pull-and-push mechanism that can produce different migratory modes, including cell oscillations in length and velocity. We also describe an analytical solution for the stiff limit. Our findings highlight the importance of including isoform-specific molecular details to describe whole cell behavior.
Code (0)
등록된 구현이 없습니다.
Similar Papers 제목 키워드 기반
Active gel model for one-dimensional cell migration coupling actin flow and adhesion dynamics
Migration of animal cells is based on the interplay between actin polymerization at the front, adhesion along the cell-substrate interface, and actomyosin contractility at the back. Active gel theory has been used before…
Optogenetic control of intracellular flows and cell migration: a comprehensive mathematical analysis with a minimal active gel model
The actin cytoskeleton of cells is in continuous motion due to both polymerization of new filaments and their contraction by myosin II molecular motors. Through adhesion to the substrate, such intracellular flow can be c…
Optogenetic switching of migration of contractile cells
Cell crawling on flat substrates is based on intracellular flows of the actin cytoskeleton that are driven by both actin polymerization at the front and myosin contractility at the back. The new experimental tool of opto…
Collective migration under hydrodynamic interactions -- a computational approach
Substrate-based cell motility is essential for fundamental biological processes, such as tissue growth, wound healing and immune response. Even if a comprehensive understanding of this motility mode remains elusive, prog…
A stochastic modeling framework for single cell migration: coupling contractility and focal adhesions
The interaction of the actin cytoskeleton with cell-substrate adhesions is necessary for cell migration. While the trajectories of motile cells have a stochastic character, investigations of cell motility mechanisms rare…