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Minimal model of cellular symmetry breaking

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arxiv 1909.12804 v1 pith:OWWLNLXX submitted 2019-09-26 physics.bio-ph cond-mat.softphysics.flu-dyn

classification physics.bio-phcond-mat.softphysics.flu-dyn
keywords cellactivebreakingcellularminimalmodelsurfacesymmetry
verification ladder T0 review T1 audit T2 compute T3 formal
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The cell cortex, a thin film of active material assembled below the cell membrane, plays a key role in cellular symmetry breaking processes such as cell polarity establishment and cell division. Here, we present a minimal model of the self-organization of the cell cortex that is based on a hydrodynamic theory of curved active surfaces. Active stresses on this surface are regulated by a diffusing molecular species. We show that coupling of the active surface to a passive bulk fluid enables spontaneous polarization and the formation of a contractile ring on the surface via mechano-chemical instabilities. We discuss the role of external fields in guiding such pattern formation. Our work reveals that key features of cellular symmetry breaking and cell division can emerge in a minimal model via general dynamic instabilities.

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