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Building on nature's design.基于自然的设计。
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A Molecular View of Kinetochore Assembly and Function.动粒组装与功能的分子视角
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Single-chromosome Gains Commonly Function as Tumor Suppressors.单染色体增益通常起肿瘤抑制作用。
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Selective Y centromere inactivation triggers chromosome shattering in micronuclei and repair by non-homologous end joining.选择性Y着丝粒失活引发微核中的染色体破碎并通过非同源末端连接进行修复。
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CENP-A Is Dispensable for Mitotic Centromere Function after Initial Centromere/Kinetochore Assembly.在初始着丝粒/动粒组装后,CENP-A对于有丝分裂着丝粒功能是可有可无的。
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Quantitative assessment of chromosome instability induced through chemical disruption of mitotic progression.通过有丝分裂进程的化学破坏诱导的染色体不稳定性的定量评估。
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使用随机和染色体特异性错分离方法探究细胞分裂错误。

Interrogating cell division errors using random and chromosome-specific missegregation approaches.

作者信息

Ly Peter, Cleveland Don W

机构信息

a Ludwig Institute for Cancer Research and Department of Cellular and Molecular Medicine , University of California at San Diego , La Jolla , CA , USA.

出版信息

Cell Cycle. 2017 Jul 3;16(13):1252-1258. doi: 10.1080/15384101.2017.1325047. Epub 2017 Jun 26.

DOI:10.1080/15384101.2017.1325047
PMID:28650219
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5531625/
Abstract

Accurate segregation of the duplicated genome in mitosis is essential for maintaining genetic stability. Errors in this process can cause numerical and/or structural chromosome abnormalities - hallmark genomic features commonly associated with both tumorigenesis and developmental disorders. A cell-based approach was recently developed permitting inducible missegregation of the human Y chromosome by selectively disrupting kinetochore assembly onto the Y centromere. Although this strategy initially requires several steps of genetic manipulation, it is easy to use, highly efficient and specific for the Y without affecting the autosomes or the X, and does not require cell cycle synchronization or mitotic perturbation. Here we describe currently available tools for studying chromosome segregation errors, aneuploidy, and micronuclei, as well as discuss how the Y-specific missegregation system has been used to elucidate how chromosomal micronucleation can trigger a class of extensive rearrangements termed chromothripsis. The combinatorial use of these different tools will allow unresolved aspects of cell division defects and chromosomal instability to be experimentally explored.

摘要

有丝分裂过程中复制基因组的准确分离对于维持遗传稳定性至关重要。这一过程中的错误会导致染色体数目和/或结构异常,这些标志性的基因组特征通常与肿瘤发生和发育障碍相关。最近开发了一种基于细胞的方法,通过选择性破坏着丝粒在Y染色体着丝粒上的组装,实现人类Y染色体的诱导性错分离。尽管该策略最初需要几个步骤的基因操作,但它易于使用,效率高且对Y染色体具有特异性,不会影响常染色体或X染色体,也不需要细胞周期同步或有丝分裂扰动。在这里,我们描述了目前用于研究染色体分离错误、非整倍体和微核的工具,并讨论了Y特异性错分离系统如何用于阐明染色体微核形成如何引发一类称为染色体碎裂的广泛重排。这些不同工具的组合使用将使细胞分裂缺陷和染色体不稳定性的未解决方面能够通过实验进行探索。