Dynamics of undulatory fluctuations of semiflexible filaments in a network

Jonathan Kernes and Alex J. Levine
Phys. Rev. E 102, 062406 – Published 3 December 2020

Abstract

We study the dynamics of a single semiflexible filament coupled to a Hookean spring at its boundary. The spring produces a fluctuating tensile force on the filament, the value of which depends on the filament's instantaneous end-to-end length. The spring thereby introduces a nonlinearity, which mixes the undulatory normal modes of the filament and changes their dynamics. We study these dynamics using the Martin–Siggia–Rose–Janssen–De Dominicis formalism, and compute the time-dependent correlation functions of transverse undulations and of the filament's end-to-end distance. The relaxational dynamics of the modes below a characteristic wavelength κ/τR, set by the filament's bending modulus κ and spring-renormalized tension τR, are changed by the boundary spring. This occurs near the crossover frequency between tension- and bending-dominated modes of the system. The boundary spring can be used to represent the linear elastic compliance of the rest of the filament network to which the filament is cross linked. As a result, we predict that this nonlinear effect will be observable in the dynamical correlations of constituent filaments of networks and in the networks' collective shear response. The system's dynamic shear modulus is predicted to exhibit the well-known crossover with increasing frequency from ω1/2 to ω3/4, but the inclusion of the network's compliance in the analysis of the individual filament dynamics shifts this transition to a higher frequency.

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  • Received 18 June 2020
  • Accepted 30 October 2020

DOI:https://doi.org/10.1103/PhysRevE.102.062406

©2020 American Physical Society

Physics Subject Headings (PhySH)

  1. Physical Systems
Polymers & Soft MatterPhysics of Living Systems

Authors & Affiliations

Jonathan Kernes1 and Alex J. Levine1,2,3

  • 1Department of Physics and Astronomy, UCLA, Los Angeles, California 90095, USA
  • 2Department of Chemistry and Biochemistry, UCLA, Los Angeles, California 90095, USA
  • 3Department of Computational Medicine, UCLA, Los Angeles, California 90095, USA

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Issue

Vol. 102, Iss. 6 — December 2020

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