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Filamentous active matter: Band formation, bending, buckling, and defects.


ABSTRACT: Motor proteins drive persistent motion and self-organization of cytoskeletal filaments. However, state-of-the-art microscopy techniques and continuum modeling approaches focus on large length and time scales. Here, we perform component-based computer simulations of polar filaments and molecular motors linking microscopic interactions and activity to self-organization and dynamics from the filament level up to the mesoscopic domain level. Dynamic filament cross-linking and sliding and excluded-volume interactions promote formation of bundles at small densities and of active polar nematics at high densities. A buckling-type instability sets the size of polar domains and the density of topological defects. We predict a universal scaling of the active diffusion coefficient and the domain size with activity, and its dependence on parameters like motor concentration and filament persistence length. Our results provide a microscopic understanding of cytoplasmic streaming in cells and help to develop design strategies for novel engineered active materials.

SUBMITTER: Vliegenthart GA 

PROVIDER: S-EPMC7439626 | biostudies-literature | 2020 Jul

REPOSITORIES: biostudies-literature

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Filamentous active matter: Band formation, bending, buckling, and defects.

Vliegenthart Gerard A GA   Ravichandran Arvind A   Ripoll Marisol M   Auth Thorsten T   Gompper Gerhard G  

Science advances 20200722 30


Motor proteins drive persistent motion and self-organization of cytoskeletal filaments. However, state-of-the-art microscopy techniques and continuum modeling approaches focus on large length and time scales. Here, we perform component-based computer simulations of polar filaments and molecular motors linking microscopic interactions and activity to self-organization and dynamics from the filament level up to the mesoscopic domain level. Dynamic filament cross-linking and sliding and excluded-vo  ...[more]

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