Steric repulsion introduced by loop constraints modulates the microphase separation of chromatins

Author:

Wei Jiachen1ORCID,Xue Yue23ORCID,Liu Yawei4,Tian Hao23ORCID,Shao Yingfeng5,Gao Yi Qin1236ORCID

Affiliation:

1. Changping Laboratory 1 , Beijing 102206, China

2. Beijing National Laboratory for Molecular Sciences, College of Chemistry and Molecular Engineering, Peking University 2 , Beijing 100871, China

3. Biomedical Pioneering Innovation Center (BIOPIC), Peking University 3 , Beijing 100871, China

4. Beijing Key Laboratory of Ionic Liquids Clean Process, CAS Key Laboratory of Green Process and Engineering, State Key Laboratory of Multiphase Complex Systems, Institute of Process Engineering, Chinese Academy of Sciences 4 , Beijing 100190, China

5. State Key Laboratory of Nonlinear Mechanics, Institute of Mechanics, Chinese Academy of Sciences 5 , Beijing 100190, China

6. Shenzhen Bay Laboratory 6 , 5F, No. 9 Duxue Rd., Nanshan District, Shenzhen 518055, Guangdong, China

Abstract

Within the confines of a densely populated cell nucleus, chromatin undergoes intricate folding, forming loops, domains, and compartments under the governance of topological constraints and phase separation. This coordinated process inevitably introduces interference between different folding strategies. In this study, we model interphase chromatins as block copolymers with hetero-hierarchical loops within a confined system. Employing dissipative particle dynamics simulations and scaling analysis, we aim to explain how the structure and distribution of loop domains modulate the microphase separation of chromatins. Our results highlight the correlation between the microphase separation of the copolymer and the length, heterogeneity, and hierarchically nested levels of the loop domains. This correlation arises from steric repulsion intrinsic to loop domains. The steric repulsion induces variations in chain stiffness (including local orientation correlations and the persistence length), thereby influencing the degree of phase separation. Through simulations of block copolymers with distinct groups of hetero-hierarchical loop anchors, we successfully reproduce changes in phase separation across diverse cell lines, under fixed interaction parameters. These findings, in qualitative alignment with Hi-C data, suggest that the variations of loop constraints alone possess the capacity to regulate higher-order structures and the gene expressions of interphase chromatins.

Publisher

AIP Publishing

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