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Abstract
Septins are cytoskeletal filaments that assemble at the inner face of the plasma membrane. They are localized at constriction sites and impact membrane remodeling. We report in vitro tools to examine how yeast septins behave on curved and deformable membranes. Septins reshape the membranes of Giant Unilamellar Vesicles with the formation of periodic spikes, while flattening smaller vesicles. We show that membrane deformations are associated to preferential arrangement of septin filaments on specific curvatures. When binding to bilayers supported on custom-designed periodic wavy patterns displaying positive and negative micrometric radii of curvatures, septin filaments remain straight and perpendicular to the curvature of the convex parts, while bending negatively to follow concave geometries. Based on these results, we propose a theoretical model that describes the deformations and micrometric curvature sensitivity observed in vitro. The model captures the reorganizations of septin filaments throughout cytokinesis in vivo, providing mechanistic insights into cell division.
Septins are cytoskeletal filaments that localize at constriction sites and impact membrane remodeling. Here authors examine the curvature sensitivity of septins using bilayers on wavy patterns and derive a theoretical model that quantitatively describe the results.
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Details

1 CNRS UMR168, Laboratoire Physico Chimie Curie, Institut Curie, PSL Research University, Paris, France (GRID:grid.465542.4) (ISNI:0000 0004 1759 735X); Sorbonne Université, Paris, France (GRID:grid.462844.8) (ISNI:0000 0001 2308 1657)
2 Imperial College London, Department of Chemical Engineering, London, UK (GRID:grid.7445.2) (ISNI:0000 0001 2113 8111)