English

Tension-induced binding of semiflexible biopolymers

Biological Physics 2015-02-10 v2 Soft Condensed Matter Statistical Mechanics

Abstract

We investigate theoretically the effect of polymer tension on the collective behavior of reversibly binding cross-links. For this purpose, we employ a model of two weakly bending wormlike chains aligned in parallel by a tensile force, with a sequence of inter-chain binding sites regularly spaced along the contours. Reversible cross-links attach and detach at the sites with an affinity controlled by a chemical potential. In a mean-field approach, we calculate the free energy of the system and find the emergence of a free-energy barrier which controls the reversible (un)binding. The tension affects the conformational entropy of the chains which competes with the binding energy of the cross-links. This competition gives rise to a sudden increase in the fraction of bound sites as the tension increases. We show that this transition is related to the cross-over between weak and strong localization of a directed polymer in a pinning potential. The cross-over to the strongly bound state can be interpreted as a mechanism for force-stiffening of cross-linked polymers -- beyond the elasticity of a single wormlike chain.

Keywords

Cite

@article{arxiv.1406.5401,
  title  = {Tension-induced binding of semiflexible biopolymers},
  author = {Panayotis Benetatos and Alice von der Heydt and Annette Zippelius},
  journal= {arXiv preprint arXiv:1406.5401},
  year   = {2015}
}

Comments

7 pages, 7 figures; accepted for publication in New J. Phys