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染色质异质性调节核凝聚物动力学和相行为。

Chromatin heterogeneity modulates nuclear condensate dynamics and phase behavior.

作者信息

Xia Jing, Zhao Jessica Z, Strom Amy R, Brangwynne Clifford P

机构信息

Department of Chemical and Biological Engineering, Princeton University, Princeton, NJ, USA.

Omenn-Darling Bioengineering Institute, Princeton University, Princeton, NJ, USA.

出版信息

Nat Commun. 2025 Jul 11;16(1):6406. doi: 10.1038/s41467-025-60771-9.

Abstract

The cell nucleus is a soft composite material with a shell-like nuclear cortex enclosing chromatin, comprised of roughly 2 meters of DNA and associated proteins. Assembling on and around chromatin are droplet-like structures known as biomolecular condensates, which form via phase separation, and facilitate vital roles in gene expression. From studies in non-living materials, the driving forces for phase separation are expected to be sensitive to the local mechanical environment, which often exhibits significant spatial heterogeneity. However, the relationship between chromatin heterogeneity and the phase equilibrium and dynamics of nuclear condensates remains unclear. Here, we investigate the interplay between chromatin organization and the formation, dynamics, and size of engineered model condensates and endogenous nuclear bodies in living cells. We demonstrate that decreasing chromatin heterogeneity with epigenetic modifying drugs correlates with decreased mobility of both endogenous and engineered condensates, and is associated with impaired condensate growth and shifts in the binodal phase boundary of engineered condensates. These findings illustrate how the cell nucleus behaves as a heterogeneous composite material with mechanically permissive chromatin micro-environments.

摘要

细胞核是一种柔软的复合材料,其具有类似外壳的核皮层包裹着染色质,染色质由大约两米长的DNA及相关蛋白质组成。在染色质上及其周围组装着被称为生物分子凝聚物的液滴状结构,这些凝聚物通过相分离形成,并在基因表达中发挥重要作用。从对非生物材料的研究来看,相分离的驱动力预计对局部机械环境敏感,而局部机械环境通常表现出显著的空间异质性。然而,染色质异质性与核凝聚物的相平衡及动力学之间的关系仍不清楚。在这里,我们研究了染色质组织与活细胞中工程化模型凝聚物和内源性核体的形成、动力学及大小之间的相互作用。我们证明,用表观遗传修饰药物降低染色质异质性与内源性和工程化凝聚物的迁移率降低相关,并与凝聚物生长受损以及工程化凝聚物的双节线相边界移动有关。这些发现说明了细胞核如何作为一种具有机械允许染色质微环境的异质复合材料发挥作用。

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