A Molecular View into the Structure and Dynamics of Phase-Separated Chromatin.

IF 2.8 2区 化学 Q3 CHEMISTRY, PHYSICAL
The Journal of Physical Chemistry B Pub Date : 2024-10-31 Epub Date: 2024-10-16 DOI:10.1021/acs.jpcb.4c04420
Andrew Golembeski, Joshua Lequieu
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引用次数: 0

Abstract

The organization of chromatin is critical for gene expression, yet the underlying mechanisms responsible for this organization remain unclear. Recent work has suggested that phase separation might play an important role in chromatin organization, yet the molecular forces that drive chromatin phase separation are poorly understood. In this work we interrogate a molecular model of chromatin to quantify the driving forces and thermodynamics of chromatin phase separation. By leveraging a multiscale approach, our molecular model is able to reproduce chromatin's chemical and structural details at the level of a few nanometers, yet remain efficient enough to simulate chromatin phase separation across 100 nm length scales. We first demonstrate that our model can reproduce key experiments of phase separating nucleosomal arrays, and then apply our model to quantify the interactions that drive their formation into chromatin condensates with either liquid- or solid-like material properties. We next use our model to characterize the molecular structure within chromatin condensates and find that this structure is irregularly ordered and is inconsistent with existing 30 nm fiber models. Lastly we examine how post-translational modifications can modulate chromatin phase separation and how the acetylation of chromatin can lead to chromatin decompaction while still preserving phase separation. Taken together, our work provides a molecular view into the structure and dynamics of phase-separated chromatin and provides new insights into how phase separation might manifest in the nucleus of living cells.

相分离染色质结构和动力学的分子观点。
染色质的组织对基因表达至关重要,但这种组织的基本机制仍不清楚。最近的研究表明,相分离可能在染色质组织中发挥重要作用,但人们对驱动染色质相分离的分子力量知之甚少。在这项工作中,我们研究了染色质分子模型,以量化染色质相分离的驱动力和热力学。通过利用多尺度方法,我们的分子模型能够在几纳米的水平上再现染色质的化学和结构细节,同时又能保持足够的效率来模拟 100 纳米长度尺度上的染色质相分离。我们首先证明了我们的模型可以再现核糖体阵列相分离的关键实验,然后应用我们的模型来量化驱动它们形成具有液态或固态物质特性的染色质凝聚体的相互作用。接下来,我们用我们的模型描述染色质凝聚体内部的分子结构,发现这种结构是不规则有序的,与现有的 30 纳米纤维模型不一致。最后,我们研究了翻译后修饰如何调节染色质相分离,以及染色质乙酰化如何在保持相分离的同时导致染色质解压缩。总之,我们的工作从分子角度揭示了相分离染色质的结构和动力学,并为了解相分离在活细胞核中的表现形式提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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