桥接介导的有丝分裂染色体的压实。

Nucleus (Austin, Tex.) Pub Date : 2025-12-01 Epub Date: 2025-05-09 DOI:10.1080/19491034.2025.2497765
Giada Forte, Lora Boteva, Nick Gilbert, Peter R Cook, Davide Marenduzzo
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引用次数: 0

摘要

在活细胞内,染色体的形状经历了一个惊人的形态转变,从间期松散和不凝聚的纤维到有丝分裂时紧密的圆柱形结构。ATP驱动的环挤压由一种特殊的蛋白质复合物,凝缩蛋白,最近被认为是这种转变的关键驱动因素。然而,虽然这种机制可以成功地再现有丝分裂早期染色单体的压实,但它不能捕捉到前期观察到的结构。在这里,我们假设凝缩蛋白桥接活性起着额外的重要作用,并回顾了主要通过分子动力学模拟获得的证据,即与环挤压相结合,它可以产生紧凑的中期圆柱体。此外,由此产生的模型定性地解释了微操作实验中观察到的有丝分裂染色体的不寻常弹性特性,并提供了浓缩蛋白在与常见脆性位点相关的异常染色体结构形成中的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bridging-mediated compaction of mitotic chromosomes.

Within living cells, chromosome shapes undergo a striking morphological transition, from loose and uncondensed fibers during interphase to compacted and cylindrical structures during mitosis. ATP driven loop extrusion performed by a specialized protein complex, condensin, has recently emerged as a key driver of this transition. However, while this mechanism can successfully recapitulate the compaction of chromatids during the early stages of mitosis, it cannot capture structures observed after prophase. Here we hypothesize that a condensin bridging activity plays an additional important role, and review evidence - obtained largely through molecular dynamics simulations - that, in combination with loop extrusion, it can generate compact metaphase cylinders. Additionally, the resulting model qualitatively explains the unusual elastic properties of mitotic chromosomes observed in micromanipulation experiments and provides insights into the role of condensins in the formation of abnormal chromosome structures associated with common fragile sites.

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