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细胞骨架对核形态和染色质组织的控制。

Cytoskeletal control of nuclear morphology and chromatin organization.

机构信息

National Centre for Biological Sciences, Tata Institute of Fundamental Research, Bangalore 560 065, India.

Mechanobiology Institute and Department of Biological Sciences, National University of Singapore, 21 Lower Kent Ridge Road 119077, Singapore.

出版信息

J Mol Biol. 2015 Feb 13;427(3):695-706. doi: 10.1016/j.jmb.2014.09.008. Epub 2014 Oct 2.

Abstract

The nucleus is sculpted toward various morphologies during cellular differentiation and development. Alterations in nuclear shape often result in changes to chromatin organization and genome function. This is thought to be reflective of its role as a cellular mechanotransducer. Recent evidence has highlighted the importance of cytoskeletal organization in defining how nuclear morphology regulates chromatin dynamics. However, the mechanisms underlying cytoskeletal control of chromatin remodeling are not well understood. We demonstrate here the differential influence of perinuclear actin- and microtubule-driven assemblies on nuclear architecture using pharmacological inhibitors and targeted RNA interference knockdown of cytoskeleton components in Drosophila cells. We find evidence that the loss of perinuclear actin assembly results in basolateral enhancement of microtubule organization and this is reflected functionally by enhanced nuclear dynamics. Cytoskeleton reorganization leads to nuclear lamina deformation that influences heterochromatin localization and core histone protein mobility. We also show that modulations in actin-microtubule assembly result in differential gene expression patterns. Taken together, we suggest that perinuclear actin and basolateral microtubule organization exerts mechanical control on nuclear morphology and chromatin dynamics.

摘要

细胞核在细胞分化和发育过程中被塑造成各种形态。核形状的改变通常导致染色质组织和基因组功能的改变。这被认为反映了它作为细胞机械转导器的作用。最近的证据强调了细胞骨架组织在定义核形态如何调节染色质动力学方面的重要性。然而,细胞骨架对染色质重塑的控制机制尚不清楚。我们在这里使用药理学抑制剂和针对果蝇细胞中的细胞骨架成分的靶向 RNA 干扰敲低,展示了核周肌动蛋白和微管驱动组装对核结构的差异影响。我们有证据表明,核周肌动蛋白组装的丧失导致基底外侧微管组织的增强,这在功能上反映为核动态增强。细胞骨架重排导致核层变形,影响异染色质定位和核心组蛋白蛋白的流动性。我们还表明,肌动蛋白-微管组装的调节导致差异的基因表达模式。总之,我们认为核周肌动蛋白和基底外侧微管组织对核形态和染色质动力学施加机械控制。

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