Activity-Driven Phase Transition Causes Coherent Flows of Chromatin

Iraj Eshghi, Alexandra Zidovska, and Alexander Y. Grosberg
Phys. Rev. Lett. 131, 048401 – Published 25 July 2023
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Abstract

We discover a new type of nonequilibrium phase transition in a model of chromatin dynamics, which accounts for the coherent motions that have been observed in experiment. The coherent motion is due to the long-range cooperation of molecular motors tethered to chromatin. Cooperation occurs if each motor acts simultaneously on the polymer and the surrounding solvent, exerting on them equal and opposite forces. This drives the flow of solvent past the polymer, which in turn affects the orientation of nearby motors and, if the drive is strong enough, an active polar (“ferromagnetic”) phase of motors can spontaneously form. Depending on boundary conditions, either transverse flows or sustained longitudinal oscillations and waves are possible. Predicted length scales are consistent with experiments. We now have in hand a coarse-grained description of chromatin dynamics which reproduces the directed coherent flows of chromatin seen in experiments. This field-theoretic description can be analytically coupled to other features of the nuclear environment such as fluctuating or porous boundaries, local heterogeneities in the distribution of chromatin or its activity, leading to insights on the effects of activity on the cell nucleus and its contents.

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  • Received 2 February 2023
  • Accepted 23 June 2023

DOI:https://doi.org/10.1103/PhysRevLett.131.048401

© 2023 American Physical Society

Physics Subject Headings (PhySH)

Physics of Living SystemsPolymers & Soft MatterStatistical Physics & Thermodynamics

Authors & Affiliations

Iraj Eshghi, Alexandra Zidovska, and Alexander Y. Grosberg*

  • Center for Soft Matter Research, Department of Physics, New York University, New York, New York 10003, USA

  • *Corresponding author. ayg1@nyu.edu

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Vol. 131, Iss. 4 — 28 July 2023

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