细胞核聚合物模型中染色质相分离与核形状波动相关。

Nucleus (Austin, Tex.) Pub Date : 2024-12-01 Epub Date: 2024-05-16 DOI:10.1080/19491034.2024.2351957
Ali Goktug Attar, Jaroslaw Paturej, Edward J Banigan, Aykut Erbaş
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引用次数: 0

摘要

细胞核形状异常是包括早衰症、肌肉萎缩症和许多癌症在内的疾病的特征。实验表明,异染色质的破坏和异染色质的增加会导致细胞核变形,如出血点和破裂。然而,人们对染色质支配核形状的物理机制知之甚少。为了研究异染色质和真染色质如何影响核形态,我们研究了粗粒度聚合物和弹性壳复合模拟模型中染色质的微相分离。通过改变染色质密度、异染色质组成以及异染色质-薄层相互作用,我们展示了染色质相组织如何扰乱核形态。染色质密度的增加可稳定薄层,使其免受大波动的影响。然而,增加异染色质水平或异染色质-薄层相互作用会通过类似 "润湿 "的相互作用增强核形状波动。相比之下,波动对异染色质的内部结构并不敏感。我们的模拟结果表明,外周异染色质的积累可能会扰乱核形态,而核形态的稳定可能是通过染色质微相组织以外的机制实现的。
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Chromatin phase separation and nuclear shape fluctuations are correlated in a polymer model of the nucleus.

Abnormal cell nuclear shapes are hallmarks of diseases, including progeria, muscular dystrophy, and many cancers. Experiments have shown that disruption of heterochromatin and increases in euchromatin lead to nuclear deformations, such as blebs and ruptures. However, the physical mechanisms through which chromatin governs nuclear shape are poorly understood. To investigate how heterochromatin and euchromatin might govern nuclear morphology, we studied chromatin microphase separation in a composite coarse-grained polymer and elastic shell simulation model. By varying chromatin density, heterochromatin composition, and heterochromatin-lamina interactions, we show how the chromatin phase organization may perturb nuclear shape. Increasing chromatin density stabilizes the lamina against large fluctuations. However, increasing heterochromatin levels or heterochromatin-lamina interactions enhances nuclear shape fluctuations by a "wetting"-like interaction. In contrast, fluctuations are insensitive to heterochromatin's internal structure. Our simulations suggest that peripheral heterochromatin accumulation could perturb nuclear morphology, while nuclear shape stabilization likely occurs through mechanisms other than chromatin microphase organization.

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