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Crowding-induced opening of the mechanosensitive Piezo1 channel in silico.


ABSTRACT: Mechanosensitive Piezo1 channels are essential mechanotransduction proteins in eukaryotes. Their curved transmembrane domains, called arms, create a convex membrane deformation, or footprint, which is predicted to flatten in response to increased membrane tension. Here, using a hyperbolic tangent model, we show that, due to the intrinsic bending rigidity of the membrane, the overlap of neighboring Piezo1 footprints produces a flattening of the Piezo1 footprints and arms. Multiple all-atom molecular dynamics simulations of Piezo1 further reveal that this tension-independent flattening is accompanied by gating motions that open an activation gate in the pore. This open state recapitulates experimentally obtained ionic selectivity, unitary conductance, and mutant phenotypes. Tracking ion permeation along the open pore reveals the presence of intracellular and extracellular fenestrations acting as cation-selective sites. Simulations also reveal multiple potential binding sites for phosphatidylinositol 4,5-bisphosphate. We propose that the overlap of Piezo channel footprints may act as a cooperative mechanism to regulate channel activity.

SUBMITTER: Jiang W 

PROVIDER: S-EPMC7815867 | biostudies-literature | 2021 Jan

REPOSITORIES: biostudies-literature

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Crowding-induced opening of the mechanosensitive Piezo1 channel in silico.

Jiang Wenjuan W   Del Rosario John Smith JS   Botello-Smith Wesley W   Zhao Siyuan S   Lin Yi-Chun YC   Zhang Han H   Lacroix Jérôme J   Rohacs Tibor T   Luo Yun Lyna YL  

Communications biology 20210119 1


Mechanosensitive Piezo1 channels are essential mechanotransduction proteins in eukaryotes. Their curved transmembrane domains, called arms, create a convex membrane deformation, or footprint, which is predicted to flatten in response to increased membrane tension. Here, using a hyperbolic tangent model, we show that, due to the intrinsic bending rigidity of the membrane, the overlap of neighboring Piezo1 footprints produces a flattening of the Piezo1 footprints and arms. Multiple all-atom molecu  ...[more]

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