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Centromeric Nucleosomes Induce Positive DNA Supercoils

机译:着丝粒核小体诱导阳性DNA超螺旋

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Centromeres of higher eukaryotes are epigenetically maintained; however, the mechanism that underlies centromere inheritance is unknown. Centromere identity and inheritance require the assembly of nucleosomes containing the CenH3 histone variant in place of canonical H3. Although H3 nucleosomes wrap DNA in a left-handed manner and induce negative supercoils, we show here that CenH3 nucleosomes reconstituted from Drosophila histones induce positive supercoils. Furthermore, we show that CenH3 likewise induces positive supercoils in functional centromeres in vivo, using a budding yeast minichromosome system and temperature-sensitive mutations in kinetochore proteins. The right-handed wrapping of DNA around the histone core implied by positive supercoiling indicates that centromere nucleosomes are unlikely to be octameric and that the exposed surfaces holding the nucleosome together would be available for kinetochore protein recruitment. The mutual incompatibility of nucleosomes with opposite topologies could explain how centromeres are efficiently maintained as unique loci on chromosomes.
机译:高级真核生物的着丝粒在表观遗传上得以维持;然而,着丝粒遗传的基础机制尚不清楚。着丝粒的同一性和遗传要求组装包含CenH3组蛋白变体的核小体来代替规范H3。尽管H3核小体以左手方式包裹DNA并诱导负超螺旋,但我们在这里显示从果蝇组蛋白重构的CenH3核小体诱导了正超螺旋。此外,我们显示,CenH3同样在体内使用萌芽的酵母微型染色体系统和动粒蛋白中的温度敏感突变在功能性着丝粒中诱导阳性超螺旋。阳性超螺旋暗示DNA围绕组蛋白核心的右旋包装表明着丝粒核小体不太可能是八聚体,并且将核小体结合在一起的裸露表面可用于线粒体蛋白募集。具有相反拓扑结构的核小体的相互不相容性可以解释着丝粒如何作为染色体上的独特位点有效地维持。

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