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Automethylation-induced conformational switch in Clr4/Suv39h maintains epigenetic stability

机译:Clr4 / Suv39h中自动甲基化诱导的构象转换保持表观遗传稳定性

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摘要

Histone H3 lysine 9 methylation (H3K9me) mediates heterochromatic gene silencing and is important for genome stability and regulation of gene expression. The establishment and epigenetic maintenance of heterochromatin involve the recruitment of H3K9 methyltransferases to specific sites on DNA followed by the recognition of pre-existing H3K9me by the methyltransferase and methylation of proximal histone H3-. This positive feedback loop must be tightly regulated to prevent deleterious epigenetic gene silencing. Extrinsic anti-silencing mechanisms involving histone demethylation or boundary elements help limit inappropriate H3K9me spreading. However, how H3K9 methyltransferase activity is locally restricted or prevented from initiating random H3K9me leading to aberrant gene silencing and epigenetic instability is not fully understood. Here we reveal an autoinhibited conformation in the conserved fission yeast S. pombe H3K9 methyltransferase Clr4/Suv39h that plays a critical role in preventing aberrant heterochromatin formation. Biochemical and X-ray crystallographic data show that an internal loop in Clr4 inhibits its catalytic activity by blocking the histone H3K9 substrate-binding pocket, and that automethylation of specific lysines in this loop promotes a conformational switch that enhances Clr4 H3K9 methylation activity. Mutations predicted to disrupt this regulation lead to aberrant H3K9me, loss of heterochromatin domains, and growth inhibition, demonstrating the importance of Clr4 intrinsic inhibition and auto-activation in regulating H3K9me deposition and preventing epigenetic instability. Conservation of the Clr4 autoinhibitory loop in other H3K9 methyltransferases, and automethylation of a corresponding lysine in the human SUV39H2 homolog, suggest that the mechanism described here is broadly conserved.
机译:组蛋白H3赖氨酸9甲基化(H3K9me)介导异色基因沉默,对基因组稳定性和基因表达的调控具有重要意义-。异染色质的建立和表观遗传的维护涉及将H3K9甲基转移酶募集到DNA的特定位点,然后通过甲基转移酶和近端组蛋白H3 -的甲基化来识别已存在的H3K9me。必须严格调节此正反馈回路,以防止有害的表观遗传基因沉默。涉及组蛋白去甲基化或边界元素的外源性抗沉默机制有助于限制不适当的H3K9me扩散。但是,如何完全限制或阻止H3K9甲基转移酶活性局部引发或导致随机H3K9me导致基因沉默和表观遗传不稳定的方法尚未完全了解。在这里,我们揭示了保守的裂变酵母粟酒裂殖酵母H3K9甲基转移酶Clr4 / Suv39h中的自抑制构象,它在防止异常异染色质形成中起关键作用。生化和X射线晶体学数据显示,Clr4的内部环通过阻断组蛋白H3K9底物结合口袋来抑制其催化活性,并且特定赖氨酸的自动甲基化促进了构象转换,从而增强了Clr4 H3K9甲基化活性。预测破坏该调控的突变会导致H3K9me异常,异染色质域丢失和生长抑制,这表明Clr4内在抑制和自动激活在调控H3K9me沉积和防止表观遗传不稳定方面的重要性。在其他H3K9甲基转移酶中Clr4自抑制环的保守以及人类SUV39H2同系物 中相应赖氨酸的自甲基化,表明这里描述的机制是广泛保守的。

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