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Micromechanics of chromatin and chromosomes.

机译:染色质和染色体的微力学。

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The enzymes that transcribe, recombine, package, and duplicate the eukaryotic genome all are highly processive and capable of generating large forces. Understanding chromosome function therefore will require analysis of mechanics as well as biochemistry. Here we review development of new biophysical-biochemical techniques for studying the mechanical properties of isolated chromatin fibers and chromosomes. We also discuss microscopy-based experiments on cells that visualize chromosome structure and dynamics. Experiments on chromatin tell us about its flexibility and fluctuation, as well as quantifying the forces generated during chromatin assembly. Experiments on whole chromosomes provide insight into the higher-order organization of chromatin; for example, recent experiments have shown that the mitotic chromosome is held together by isolated chromatin-chromatin links and not a large, mechanically contiguous non-DNA scaffold
机译:转录,重组,包装和复制真核生物基因组的酶都具有高度的合成能力,能够产生很大的力。因此,了解染色体功能将需要对力学以及生物化学进行分析。在这里,我们审查新的生物物理生化技术的发展,以研究孤立的染色质纤维和染色体的机械性能。我们还将讨论基于显微镜的细胞可视化染色体结构和动力学的实验。染色质实验告诉我们它的灵活性和波动性,以及量化染色质组装过程中产生的力。在整个染色体上进行的实验可以洞悉染色质的高阶组织。例如,最近的实验表明,有丝分裂染色体是通过分离的染色质-染色质连接连接在一起的,而不是机械上连续的大的非DNA支架

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