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Engineered human dicentric chromosomes show centromere plasticity.

机译:工程化的人类双中心染色体显示着丝粒可塑性。

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The centromere is essential for the faithful distribution of a cell's genetic material to subsequent generations. Despite intense scrutiny, the precise genetic and epigenetic basis for centromere function is still unknown. Here, we have used engineered dicentric human chromosomes to investigate mammalian centromere structure and function. We describe three classes of dicentric chromosomes isolated in different cell lines: functionally monocentric chromosomes, in which one of the two genetically identical centromeres is consistently inactivated; functionally dicentric chromosomes, in which both centromeres are consistently active; and dicentric chromosomes heterogeneous with respect to centromere activity. A study of serial single cell clones from heterogeneous cell lines revealed that while centromere activity is usually clonal, the centromere state (i.e. functionally monocentric or dicentric) in some lines can switch within a growing population of cells. Because pulsed field gel analysis indicated that the DNA at the centromeres of these chromosomes did not change detectably, this switching of the centromere state is most likely due to epigenetic changes. Inactivation of one of the two active centromeres in a functionally dicentric chromosome was observed in a percentage of cells after treatment with Trichostatin A, an inhibitor of histone deacetylation. This study provides evidence that the activity of human centromeres, while largely stable, can be subject to dynamic change, most likely due to epigenetic modification.
机译:着丝粒对于将细胞遗传物质忠实地分配给后代至关重要。尽管进行了严格的审查,但着丝粒功能的确切遗传和表观遗传基础仍然未知。在这里,我们使用工程化的双着丝粒人类染色体来研究哺乳动物着丝粒的结构和功能。我们描述了在不同细胞系中分离的三类双心染色体:功能性单心染色体,其中两个遗传相同的着丝粒之一始终被灭活;功能性双中心染色体,其中两个着丝粒均持续活跃;和着丝粒活性不同的双中心染色体。对来自异质细胞系的系列单细胞克隆的研究表明,尽管着丝粒活性通常是克隆性的,但某些细胞系中的着丝粒状态(即功能上为单中心或双中心)可以在不断增长的细胞群中转换。因为脉冲场凝胶分析表明这些染色体的着丝粒的DNA没有可检测到的变化,所以着丝粒状态的这种转换很可能是由于表观遗传学的变化。在用Trichostatin A(一种组蛋白脱乙酰基抑制剂)处理后,在一定百分比的细胞中观察到功能性双中心染色体中两个活性着丝粒之一的失活。这项研究提供的证据表明,人类着丝粒的活动虽然基本稳定,但可能会发生动态变化,这很可能是由于表观遗传修饰。

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