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Human aging DNA methylation signatures are conserved but accelerated in cultured fibroblasts

Gabriel Sturm, Andrés Cárdenas, Marie‐Abèle Bind, Steve Horvath, Shuang Wang, Yunzhang Wang, Sara Hägg, Michio Hirano, Martin Picard

Epigenetics · 2019 · ▲ 71 citations

Abstract

Aging is associated with progressive and site-specific changes in DNA methylation (DNAm). These global changes are captured by DNAm clocks that accurately predict chronological age in humans but relatively little is known about how clocks perform in vitro. Here we culture primary human fibroblasts across the cellular lifespan (~6 months) and use four different DNAm clocks to show that age-related DNAm signatures are conserved and accelerated in vitro. The Skin & Blood clock shows the best linear correlation with chronological time (r = 0.90), including during replicative senescence(definition). Although similar in nature, the rate of epigenetic aging is approximately 62x times faster in cultured cells than in the human body. Consistent with in vivo data, cells aged under hyperglycemic conditions exhibit an approximately three years elevation in baseline DNAm age. Moreover, candidate gene-based analyses further corroborate the conserved but accelerated biological aging process in cultured fibroblasts. Fibroblasts mirror the established DNAm topology of the age-related ELOVL2 gene in human blood and the rapid hypermethylation of its promoter cg16867657, which correlates with a linear decrease in ELOVL2 mRNA levels across the lifespan. Using generalized additive modeling on twelve timepoints across the lifespan, we also show how single CpGs exhibit loci-specific, linear and nonlinear trajectories that reach rates up to −47% (hypomethylation) to +23% (hypermethylation) per month. Together, these high-temporal resolution global, gene-specific, and single CpG data highlight the conserved and accelerated nature of epigenetic aging in cultured fibroblasts, which may constitute a system to evaluate age-modifying interventions across the lifespan.

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OpenAlex
DOI
10.1080/15592294.2019.1626651
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2026-07-22 MST

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APA
Sturm, G., Cárdenas, A., Bind, M., Horvath, S., Wang, S., Wang, Y., Hägg, S., Hirano, M., &amp; Picard, M. (2019). Human aging DNA methylation signatures are conserved but accelerated in cultured fibroblasts. <em>Epigenetics</em>. https://doi.org/10.1080/15592294.2019.1626651
Vancouver
Sturm G, Cárdenas A, Bind M, Horvath S, Wang S, Wang Y, et al. Human aging DNA methylation signatures are conserved but accelerated in cultured fibroblasts. Epigenetics. 2019. doi:10.1080/15592294.2019.1626651.
BibTeX
@article{gabriel2019Humana, title = {Human aging DNA methylation signatures are conserved but accelerated in cultured fibroblasts}, author = {Gabriel Sturm and Andrés Cárdenas and Marie‐Abèle Bind and Steve Horvath and Shuang Wang and Yunzhang Wang and Sara Hägg and Michio Hirano and Martin Picard}, journal = {Epigenetics}, year = {2019}, doi = {10.1080/15592294.2019.1626651}, }

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