Confinement-induced glassy dynamics in a model for chromosome organization
Abstract
Recent experiments showing scaling of the intrachromosomal contact probability, with the genomic distance , are interpreted to mean a self-similar fractal-like chromosome organization. However, scaling of varies across organisms, requiring an explanation. We illustrate dynamical arrest in a highly confined space as a discriminating marker for genome organization, by modeling chromosome inside a nucleus as a homopolymer confined to a sphere of varying sizes. Brownian dynamics simulations show that the chain dynamics slows down as the polymer volume fraction () inside the confinement approaches a critical value . The universal value of for a sufficiently long polymer () allows us to discuss genome dynamics using as a single parameter. Our study shows that the onset of glassy dynamics is the reason for the segregated chromosome organization in human (, ), whereas chromosomes of budding yeast (, ) are equilibrated with no clear signature of such organization.
Cite
@article{arxiv.1506.01089,
title = {Confinement-induced glassy dynamics in a model for chromosome organization},
author = {Hongsuk Kang and Young-Gui Yoon and D. Thirumalai and Changbong Hyeon},
journal= {arXiv preprint arXiv:1506.01089},
year = {2016}
}
Comments
8 pages, 9 figures, Phys. Rev. Lett. (accepted)