bioRxiv · 10.1101/2022.10.07.511382
Causal Epigenetic Age Uncouples Damage and Adaptation
Abstract
Machine learning models based on DNA methylation data can predict biological age but often lack causal insights. By harnessing large-scale genetic data through epigenome-wide Mendelian Randomization, we identified CpG sites potentially causal for aging-related traits. Neither the existing epigenetic clocks nor age-related differential DNA methylation are enriched in these sites. These CpGs include sites that contribute to aging and protect against it, yet their combined contribution negatively affects age-related traits. We established a novel framework to introduce causal information into epigenetic clocks, resulting in DamAge and AdaptAge--clocks that track detrimental and adaptive methylation changes, respectively. DamAge correlates with adverse outcomes, including mortality, while AdaptAge is associated with beneficial adaptations. These causality-enriched clocks exhibit sensitivity to short-term interventions. Our findings provide a detailed land-scape of CpG sites with putative causal links to lifespan and healthspan, facilitating the development of aging biomarkers, assessing interventions, and studying reversibility of age-associated changes.
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Ying, K., Liu, H., Tarkhov, A. E., Lu, A. T., Horvath, S., Kutalik, Z., Shen, X., Gladyshev, V. N.. 2022-10-08. Causal Epigenetic Age Uncouples Damage and Adaptation. https://doi.org/10.1101/2022.10.07.511382
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