Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Pudong, China.
University of Chinese Academy of Sciences, Beijing, China.
Elife. 2018 May 29;7:e35368. doi: 10.7554/eLife.35368.
Epigenetic alteration has been implicated in aging. However, the mechanism by which epigenetic change impacts aging remains to be understood. H3K27me3, a highly conserved histone modification signifying transcriptional repression, is marked and maintained by Polycomb Repressive Complexes (PRCs). Here, we explore the mechanism by which age-modulated increase of H3K27me3 impacts adult lifespan. Using , we reveal that aging leads to loss of fidelity in epigenetic marking and drift of H3K27me3 and consequential reduction in the expression of glycolytic genes with negative effects on energy production and redox state. We show that a reduction of H3K27me3 by PRCs-deficiency promotes glycolysis and healthy lifespan. While perturbing glycolysis diminishes the pro-lifespan benefits mediated by PRCs-deficiency, transgenic increase of glycolytic genes in wild-type animals extends longevity. Together, we propose that epigenetic drift of H3K27me3 is one of the molecular mechanisms that contribute to aging and that stimulation of glycolysis promotes metabolic health and longevity.
表观遗传改变与衰老有关。然而,表观遗传变化影响衰老的机制仍有待理解。H3K27me3 是一种高度保守的组蛋白修饰,标志着转录抑制,由多梳抑制复合物(PRC)标记和维持。在这里,我们探讨了年龄调节的 H3K27me3 增加如何影响成年寿命的机制。使用 ,我们揭示了衰老导致表观遗传标记的保真度丧失和 H3K27me3 的漂移,以及糖酵解基因表达的减少,对能量产生和氧化还原状态产生负面影响。我们表明,PRC 缺陷导致的 H3K27me3 减少促进糖酵解和健康寿命。虽然扰乱糖酵解会降低 PRC 缺陷介导的延长寿命的益处,但在野生型动物中转基因增加糖酵解基因可延长寿命。总之,我们提出 H3K27me3 的表观遗传漂移是导致衰老的分子机制之一,而刺激糖酵解可促进代谢健康和长寿。