Membrane tension induces F-actin reorganization and flow in a biomimetic model cortex

Author:

Sakamoto RyotaORCID,Banerjee Deb Sankar,Yadav VikrantORCID,Chen ShengORCID,Gardel Margaret L.ORCID,Sykes Cecile,Banerjee ShiladityaORCID,Murrell Michael P.ORCID

Abstract

AbstractThe accumulation and transmission of mechanical stresses in the cell cortex and membrane determines the mechanics of cell shape and coordinates essential physical behaviors, from cell polarization to cell migration. However, the extent that the membrane and cytoskeleton each contribute to the transmission of mechanical stresses to coordinate diverse behaviors is unclear. Here, we reconstitute a minimal model of the actomyosin cortex within liposomes that adheres, spreads and ultimately ruptures on a surface. During spreading, accumulated adhesion-induced (passive) stresses within the membrane drive changes in the spatial assembly of actin. By contrast, during rupture, accumulated myosin-induced (active) stresses within the cortex determine the rate of pore opening. Thus, in the same system, devoid of biochemical regulation, the membrane and cortex can each play a passive or active role in the generation and transmission of mechanical stress, and their relative roles drive diverse biomimetic physical behaviors.

Funder

Uehara Memorial Foundation

Human Frontier Science Program

Publisher

Springer Science and Business Media LLC

Subject

General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology,Medicine (miscellaneous)

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