Heterogeneous flexibility can contribute to chromatin segregation in the cell nucleus

IF 2.4 3区 物理与天体物理 Q1 Mathematics Physical review. E Pub Date : 2024-07-03 DOI:10.1103/physreve.110.014403
Martin Girard, Monica Olvera de la Cruz, John F. Marko, Aykut Erbaş
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Abstract

The highly and slightly condensed forms of chromatin, heterochromatin and euchromatin, respectively, segregate in the cell nucleus. Heterochromatin is more abundant in the nucleus periphery. Here we study the mechanism of heterochromatin segregation by modeling interphase chromosomes as diblock ring copolymers confined in a rigid spherical shell using molecular dynamics simulations. In our model, heterochromatin and euchromatin are distinguished by their bending stiffnesses only, while an interaction potential between the spherical shell and chromatin is used to model lamin-associated proteins. Our simulations indicate that in the absence of attractive interactions between the nuclear shell and the chromatin, most heterochromatin segregates towards the nuclear interior due to the depletion of less flexible heterochromatin segments from the nuclear periphery. This inverted chromatin distribution,which is opposite to the conventional case with heterochromatin dominating at the periphery, is in accord with experimental observations in rod cells. This “inversion” is also found to be independent of the heterochromatin concentration and chromosome number. The chromatin distribution at the periphery found in vivo can be recovered by further increasing the bending stiffness of heterochromatin segments or by turning on attractive interactions between the nuclear shell and heterochromatin. Our results indicate that the bending stiffness of chromatin could be a contributor to chromosome organization along with differential effects of HP1α-driven phase segregation and of loop extruders and interactions with the nuclear envelope and topological constraints.

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异质性灵活性有助于细胞核中染色质的分离
染色质的高度浓缩和轻度浓缩形式,即异染色质和外染色质,分别在细胞核中分离。异染色质在细胞核外围更为丰富。在这里,我们通过分子动力学模拟,将间期染色体模拟为封闭在刚性球壳中的二嵌段环共聚物,从而研究了异染色质分离的机制。在我们的模型中,异染色质和染色质仅通过其弯曲刚度来区分,而球形外壳和染色质之间的相互作用势则被用来模拟片层相关蛋白。我们的模拟结果表明,在核外壳与染色质之间缺乏吸引力相互作用的情况下,由于核外围柔性较差的异染色质片段的消耗,大部分异染色质会向核内部分离。这种染色质的倒置分布与异染色质在外周占主导地位的传统情况相反,与杆状细胞的实验观察结果相符。研究还发现,这种 "倒置 "与异染色质浓度和染色体数目无关。通过进一步增加异染色质片段的弯曲硬度或开启核壳与异染色质之间的吸引力相互作用,可以恢复体内染色质在外周的分布。我们的研究结果表明,染色质的弯曲硬度与HP1α驱动的相分离、环状挤出器以及与核外壳的相互作用和拓扑限制的不同影响一起,可能是染色体组织的一个因素。
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来源期刊
Physical review. E
Physical review. E 物理-物理:流体与等离子体
CiteScore
4.60
自引率
16.70%
发文量
0
审稿时长
3.3 months
期刊介绍: Physical Review E (PRE), broad and interdisciplinary in scope, focuses on collective phenomena of many-body systems, with statistical physics and nonlinear dynamics as the central themes of the journal. Physical Review E publishes recent developments in biological and soft matter physics including granular materials, colloids, complex fluids, liquid crystals, and polymers. The journal covers fluid dynamics and plasma physics and includes sections on computational and interdisciplinary physics, for example, complex networks.
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