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由组蛋白H3和H4相对水平驱动的裂殖酵母CENP-A染色质可塑性。

Plasticity of fission yeast CENP-A chromatin driven by relative levels of histone H3 and H4.

作者信息

Castillo Araceli G, Mellone Barbara G, Partridge Janet F, Richardson William, Hamilton Georgina L, Allshire Robin C, Pidoux Alison L

机构信息

Wellcome Trust Centre for Cell Biology, University of Edinburgh, Edinburgh, United Kingdom.

出版信息

PLoS Genet. 2007 Jul;3(7):e121. doi: 10.1371/journal.pgen.0030121. Epub 2007 Jun 7.

Abstract

The histone H3 variant CENP-A assembles into chromatin exclusively at centromeres. The process of CENP-A chromatin assembly is epigenetically regulated. Fission yeast centromeres are composed of a central kinetochore domain on which CENP-A chromatin is assembled, and this is flanked by heterochromatin. Marker genes are silenced when placed within kinetochore or heterochromatin domains. It is not known if fission yeast CENP-A(Cnp1) chromatin is confined to specific sequences or whether histone H3 is actively excluded. Here, we show that fission yeast CENP-A(Cnp1) can assemble on noncentromeric DNA when it is inserted within the central kinetochore domain, suggesting that in fission yeast CENP-A(Cnp1) chromatin assembly is driven by the context of a sequence rather than the underlying DNA sequence itself. Silencing in the central domain is correlated with the amount of CENP-A(Cnp1) associated with the marker gene and is also affected by the relative level of histone H3. Our analyses indicate that kinetochore integrity is dependent on maintaining the normal ratio of H3 and H4. Excess H3 competes with CENP-A(Cnp1) for assembly into central domain chromatin, resulting in less CENP-A(Cnp1) and other kinetochore proteins at centromeres causing defective kinetochore function, which is manifest as aberrant mitotic chromosome segregation. Alterations in the levels of H3 relative to H4 and CENP-A(Cnp1) influence the extent of DNA at centromeres that is packaged in CENP-A(Cnp1) chromatin and the composition of this chromatin. Thus, CENP-A(Cnp1) chromatin assembly in fission yeast exhibits plasticity with respect to the underlying sequences and is sensitive to the levels of CENP-A(Cnp1) and other core histones.

摘要

组蛋白H3变体CENP-A仅在着丝粒处组装进入染色质。CENP-A染色质组装过程受到表观遗传调控。裂殖酵母着丝粒由一个中央动粒结构域组成,CENP-A染色质在该结构域上组装,其两侧为异染色质。标记基因置于动粒或异染色质结构域内时会被沉默。目前尚不清楚裂殖酵母CENP-A(Cnp1)染色质是否局限于特定序列,或者组蛋白H3是否被主动排除。在此,我们表明,当非着丝粒DNA插入中央动粒结构域时,裂殖酵母CENP-A(Cnp1)可以在其上组装,这表明在裂殖酵母中,CENP-A(Cnp1)染色质组装是由序列背景驱动的,而不是由潜在的DNA序列本身驱动的。中央结构域中的沉默与与标记基因相关的CENP-A(Cnp1)的量相关,并且也受组蛋白H3相对水平的影响。我们的分析表明,动粒完整性取决于维持H3和H4的正常比例。过量的H3与CENP-A(Cnp1)竞争组装进入中央结构域染色质,导致着丝粒处的CENP-A(Cnp1)和其他动粒蛋白减少,从而导致动粒功能缺陷,表现为有丝分裂染色体分离异常。相对于H4和CENP-A(Cnp1),H3水平的改变会影响着丝粒处包装在CENP-A(Cnp1)染色质中的DNA范围以及该染色质的组成。因此,裂殖酵母中的CENP-A(Cnp1)染色质组装在潜在序列方面表现出可塑性,并且对CENP-A(Cnp1)和其他核心组蛋白的水平敏感。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8fa/1934396/2c3c0f301147/pgen.0030121.g001.jpg

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