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异染色质在着丝粒功能中的作用。

The role of heterochromatin in centromere function.

作者信息

Pidoux Alison L, Allshire Robin C

机构信息

Wellcome Trust Centre for Cell Biology, University of Edinburgh, King's Buildings, Mayfield Road, Edinburgh EH9 3JR, Scotland, UK.

出版信息

Philos Trans R Soc Lond B Biol Sci. 2005 Mar 29;360(1455):569-79. doi: 10.1098/rstb.2004.1611.

Abstract

Chromatin at centromeres is distinct from the chromatin in which the remainder of the genome is assembled. Two features consistently distinguish centromeres: the presence of the histone H3 variant CENP-A and, in most organisms, the presence of heterochromatin. In fission yeast, domains of silent "heterochromatin" flank the CENP-A chromatin domain that forms a platform upon which the kinetochore is assembled. Thus, fission yeast centromeres resemble their metazoan counterparts where the kinetochore is embedded in centromeric heterochromatin. The centromeric outer repeat chromatin is underacetylated on histones H3 and H4, and methylated on lysine 9 of histone H3, which provides a binding site for the chromodomain protein Swi6 (orthologue of Heterochromatin Protein 1, HP1). The remarkable demonstration that the assembly of repressive heterochromatin is dependent on the RNA interference machinery provokes many questions about the mechanisms of this process that may be tractable in fission yeast. Heterochromatin ensures that a high density of cohesin is recruited to centromeric regions, but it could have additional roles in centromere architecture and the prevention of merotely, and it might also act as a trigger for kinetochore assembly. In addition, we discuss an epigenetic model for ensuring that CENP-A is targeted and replenished at the kinetochore domain.

摘要

着丝粒处的染色质与基因组其余部分组装所在的染色质不同。有两个特征始终能区分着丝粒:组蛋白H3变体CENP-A的存在,以及在大多数生物体中异染色质的存在。在裂殖酵母中,沉默的“异染色质”结构域位于CENP-A染色质结构域两侧,CENP-A染色质结构域形成一个平台,动粒在该平台上组装。因此,裂殖酵母着丝粒类似于后生动物的着丝粒,其中动粒嵌入着丝粒异染色质中。着丝粒外侧重复染色质在组蛋白H3和H4上低乙酰化,在组蛋白H3的赖氨酸9上甲基化,这为色域蛋白Swi6(异染色质蛋白1,HP1的直系同源物)提供了一个结合位点。关于抑制性异染色质的组装依赖于RNA干扰机制这一显著证明引发了许多关于这一过程机制的问题,这些问题在裂殖酵母中可能易于处理。异染色质确保着丝粒区域招募高密度的黏连蛋白,但它可能在着丝粒结构和防止染色体错分方面还有其他作用,并且它也可能作为动粒组装的触发因素。此外,我们讨论了一种表观遗传模型,用于确保CENP-A在动粒结构域靶向定位并得到补充。

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