Toward the cellular-scale simulation of motor-driven cytoskeletal assemblies

Author:

Yan Wen1ORCID,Ansari Saad2,Lamson Adam12ORCID,Glaser Matthew A2ORCID,Blackwell Robert1,Betterton Meredith D123ORCID,Shelley Michael14

Affiliation:

1. Center for Computational Biology, Flatiron Institute

2. Department of Physics, University of Colorado Boulder

3. Department of Molecular, Cellular, and Developmental Biology, University of Colorado Boulder

4. Courant Institute, New York University

Abstract

The cytoskeleton – a collection of polymeric filaments, molecular motors, and crosslinkers – is a foundational example of active matter, and in the cell assembles into organelles that guide basic biological functions. Simulation of cytoskeletal assemblies is an important tool for modeling cellular processes and understanding their surprising material properties. Here, we present aLENS (a Living Ensemble Simulator), a novel computational framework designed to surmount the limits of conventional simulation methods. We model molecular motors with crosslinking kinetics that adhere to a thermodynamic energy landscape, and integrate the system dynamics while efficiently and stably enforcing hard-body repulsion between filaments. Molecular potentials are entirely avoided in imposing steric constraints. Utilizing parallel computing, we simulate tens to hundreds of thousands of cytoskeletal filaments and crosslinking motors, recapitulating emergent phenomena such as bundle formation and buckling. This simulation framework can help elucidate how motor type, thermal fluctuations, internal stresses, and confinement determine the evolution of cytoskeletal active matter.

Funder

National Science Foundation

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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