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Underlying features of epigenetic aging clocks in vivo and in vitro

机译:体内和体外表述老化时钟的基础特征

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摘要

Epigenetic clocks, developed using DNA methylation data, have been widely used to quantify biological aging in multiple tissues/cells. However, many existing epigenetic clocks are weakly correlated with each other, suggesting they may capture different biological processes. We utilize multi‐omics data from diverse human tissue/cells to identify shared features across eleven existing epigenetic clocks. Despite the striking lack of overlap in CpGs, multi‐omics analysis suggested five clocks (Horvath1, Horvath2, Levine, Hannum, and Lin) share transcriptional associations conserved across purified CD14+ monocytes and dorsolateral prefrontal cortex. The pathways enriched in the shared transcriptional association suggested links between epigenetic aging and metabolism, immunity, and autophagy. Results from in vitro experiments showed that two clocks (Levine and Lin) were accelerated in accordance with two hallmarks of aging—cellular senescence and mitochondrial dysfunction. Finally, using multi‐tissue data to deconstruct the epigenetic clock signals, we developed a meta‐clock that demonstrated improved prediction for mortality and robustly related to hallmarks of aging in vitro than single clocks.
机译:使用DNA甲基化数据开发的表观遗传时钟已被广泛用于量化多种组织/细胞中的生物老化。然而,许多现有的表观遗传时钟彼此略微相关,表明它们可以捕获不同的生物过程。我们利用来自各种人类组织/细胞的多OMICS数据来识别11个现有的表观遗传时钟的共享特征。尽管CPGS中缺乏缺乏重叠,但多OMICS分析表明五个时钟(Horvath1,Horvath2,Levine,Hannum和Lin)份额在纯化的CD14 +单核细胞和背侧前额外皮层中保护转录协会。富含共同转录关联的途径建议表观遗传衰老和代谢,免疫和自噬之间的联系。来自体外实验的结果表明,根据老化 - 细胞衰老和线粒体功能障碍的两个标志加速了两个时钟(LEVINE和LIN)。最后,使用多组织数据解构表观遗传时钟信号,我们开发了一个元时钟,表明了对死亡率的改进预测,并强烈地与在体外老化的标志比单个时钟。

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