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Microscopic Chromosomal Structural and Dynamical Origin of Cell Differentiation and Reprogramming

机译:微观染色体结构和细胞分化和重编程的动态起源

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摘要

As an essential and fundamental process of life, cell development involves large‐scale reorganization of the 3D genome architecture, which forms the basis of gene regulation. Here, a landscape‐switching model is developed to explore the microscopic chromosomal structural origin of embryonic stem cell (ESC) differentiation and somatic cell reprogramming. It is shown that chromosome structure exhibits significant compartment‐switching in the unit of topologically associating domain. It is found that the chromosome during differentiation undergoes monotonic compaction with spatial repositioning of active and inactive chromosomal loci toward the chromosome surface and interior, respectively. In contrast, an overexpanded chromosome, which exhibits universal localization of loci at the chromosomal surface with erasing the structural characteristics formed in the somatic cells, is observed during reprogramming. An early distinct differentiation pathway from the ESC to the terminally differentiated cell, giving rise to early bifurcation on the Waddington landscape for the ESC differentiation is suggested. The theoretical model herein including the non‐equilibrium effects, draws a picture of the highly irreversible cell differentiation and reprogramming processes, in line with the experiments. The predictions provide a physical understanding of cell differentiation and reprogramming from the chromosomal structural and dynamical perspective and can be tested by future experiments.
机译:作为生命的基本和基本过程,细胞开发涉及3D基因组结构的大规模重组,这构成了基因调控的基础。这里,开发了景观切换模型以探索胚胎干细胞(ESC)分化和体细胞重编程的微观染色体结构来源。结果表明,染色体结构在拓扑相关域的单位中表现出显着的隔室切换。发现分化期间的染色体经历单调压实,分别具有朝向染色体表面和内部的活性和无活性染色体基因座的空间重新定位。相反,在重新编程期间观察到在染色体表面上表现出染色体表面的染色体表面普遍定位的过度染色体。提出了一种早期不同的分化途径,从ESC到终端分化的细胞,从而提出了对ESC分化的瓦丁顿景观的早期分叉。本文的理论模型包括非平衡效应,符合实验的高度不可逆转的细胞分化和重编程过程的图像。预测提供了对细胞分化和从染色体结构和动态视角的重新编程的物理理解,并且可以通过未来的实验进行测试。

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