Gliding microtubules exhibit tunable collective rotation driven by chiral active forces

Fuente: arXiv
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Main Authors: Athani, Madhuvanthi Guruprasad, Prouse, Nathan, Sarpangala, Niranjan, Noerr, Patrick, Schiano-Lomoriello, Guillaume, Kumar, Ankush Gargeshwari, Memarian, Fereshteh L., Gaillard, Jeremie, Blanchoin, Laurent, Hirst, Linda S., Dasbiswas, Kinjal, Gopinathan, Ajay, Kučera, Ondřej, Beller, Daniel A.
Format: Preprint
Published: 2025
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author Athani, Madhuvanthi Guruprasad
Prouse, Nathan
Sarpangala, Niranjan
Noerr, Patrick
Schiano-Lomoriello, Guillaume
Kumar, Ankush Gargeshwari
Memarian, Fereshteh L.
Gaillard, Jeremie
Blanchoin, Laurent
Hirst, Linda S.
Dasbiswas, Kinjal
Gopinathan, Ajay
Kučera, Ondřej
Beller, Daniel A.
author_facet Athani, Madhuvanthi Guruprasad
Prouse, Nathan
Sarpangala, Niranjan
Noerr, Patrick
Schiano-Lomoriello, Guillaume
Kumar, Ankush Gargeshwari
Memarian, Fereshteh L.
Gaillard, Jeremie
Blanchoin, Laurent
Hirst, Linda S.
Dasbiswas, Kinjal
Gopinathan, Ajay
Kučera, Ondřej
Beller, Daniel A.
contents How chirality propagates across scales remains an open question in many biological and synthetic systems. An especially clear manifestation of this propagation is found in in vitro gliding assays of cytoskeletal filaments on surfaces, driven by molecular motors. These assays have become model systems of active matter dynamics, as they spontaneously organize into diverse dynamical states, including collective motions with chiral rotation. However, the microscopic mechanisms underlying these chiral collective dynamics have remained unclear. Here, we investigate rotating active nematic order in microtubule gliding assay experiments under two stabilization conditions, each on two types of substrates. We propose that chirality in active forces exerted by motors on microtubules represents a viable mechanism for this large-scale chirality. Using Brownian dynamics simulations of self-propelled, semiflexible filaments with chiral activity, we demonstrate that coherently rotating active nematic order emerges by this mechanism even in the absence of curvature, i.e. shape chirality, of the constituent filaments. Moreover, we predict that the angular speed and handedness of the collective rotation can be tuned by modulating filament stiffness. Our findings identify a new set of sufficient microscopic ingredients for predictable propagation of chiral handedness from the molecular to the material scale in living and active matter.
format Preprint
id arxiv_https___arxiv_org_abs_2507_00245
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Gliding microtubules exhibit tunable collective rotation driven by chiral active forces
Athani, Madhuvanthi Guruprasad
Prouse, Nathan
Sarpangala, Niranjan
Noerr, Patrick
Schiano-Lomoriello, Guillaume
Kumar, Ankush Gargeshwari
Memarian, Fereshteh L.
Gaillard, Jeremie
Blanchoin, Laurent
Hirst, Linda S.
Dasbiswas, Kinjal
Gopinathan, Ajay
Kučera, Ondřej
Beller, Daniel A.
Soft Condensed Matter
Biological Physics
How chirality propagates across scales remains an open question in many biological and synthetic systems. An especially clear manifestation of this propagation is found in in vitro gliding assays of cytoskeletal filaments on surfaces, driven by molecular motors. These assays have become model systems of active matter dynamics, as they spontaneously organize into diverse dynamical states, including collective motions with chiral rotation. However, the microscopic mechanisms underlying these chiral collective dynamics have remained unclear. Here, we investigate rotating active nematic order in microtubule gliding assay experiments under two stabilization conditions, each on two types of substrates. We propose that chirality in active forces exerted by motors on microtubules represents a viable mechanism for this large-scale chirality. Using Brownian dynamics simulations of self-propelled, semiflexible filaments with chiral activity, we demonstrate that coherently rotating active nematic order emerges by this mechanism even in the absence of curvature, i.e. shape chirality, of the constituent filaments. Moreover, we predict that the angular speed and handedness of the collective rotation can be tuned by modulating filament stiffness. Our findings identify a new set of sufficient microscopic ingredients for predictable propagation of chiral handedness from the molecular to the material scale in living and active matter.
title Gliding microtubules exhibit tunable collective rotation driven by chiral active forces
topic Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2507.00245