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H3K36 methylation promotes longevity by enhancing transcriptional fidelity

机译:H3K36甲基化通过增强转录保真度来延长寿命

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摘要

Epigenetic mechanisms, including histone post-translational modifications, control longevity in diverse organisms. Relatedly, loss of proper transcriptional regulation on a global scale is an emerging phenomenon of shortened life span, but the specific mechanisms linking these observations remain to be uncovered. Here, we describe a life span screen in Saccharomyces cerevisiae that is designed to identify amino acid residues of histones that regulate yeast replicative aging. Our results reveal that lack of sustained histone H3K36 methylation is commensurate with increased cryptic transcription in a subset of genes in old cells and with shorter life span. In contrast, deletion of the K36me2/3 demethylase Rph1 increases H3K36me3 within these genes, suppresses cryptic transcript initiation, and extends life span. We show that this aging phenomenon is conserved, as cryptic transcription also increases in old worms. We propose that epigenetic misregulation in aging cells leads to loss of transcriptional precision that is detrimental to life span, and, importantly, this acceleration in aging can be reversed by restoring transcriptional fidelity.
机译:表观遗传机制,包括组蛋白翻译后修饰,可控制多种生物的寿命。相关地,在全球范围内丧失适当的转录调控是缩短寿命的新兴现象,但是将这些观察结果联系起来的具体机制仍有待发现。在这里,我们描述了酿酒酵母中的寿命筛选,该筛选旨在鉴定调节酵母复制性衰老的组蛋白的氨基酸残基。我们的研究结果表明,缺乏持续的组蛋白H3K36甲基化与旧细胞中一个基因子集的隐秘转录增加以及寿命较短相对应。相反,K36me2 / 3脱甲基酶Rph1的缺失会增加这些基因中的H3K36me3,抑制隐秘转录的起始,并延长寿命。我们证明了这种老化现象是保守的,因为旧蠕虫中的隐秘转录也增加了。我们提出衰老细胞中的表观遗传失调会导致转录精度的降低,这对寿命是不利的,而且重要的是,衰老的这种加速可以通过恢复转录保真度来逆转。

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