Open access · CC-BY
via OpenAlex
Development of an epigenetic clock resistant to changes in immune cell composition
Alan Tomusiak, Ariel Floro, Ritesh Tiwari, Rebeccah Riley, Hiroyuki Matsui, Nicolas Andrews, Herbert G. Kasler, Eric Verdin
Communications Biology · 2024 · ▲ 62 citations
Epigenetic alterations
Cellular senescence
Partial reprogramming (OSK)
Cell culture / in vitro
Human
In vitro
Abstract
Epigenetic clocks are age predictors that use machine-learning models trained on DNA CpG methylation values to predict chronological or biological age. Increases in predicted epigenetic age relative to chronological age (epigenetic age acceleration) are connected to aging-associated pathologies, and changes in epigenetic age are linked to canonical aging hallmarks. However, epigenetic clocks rely on training data from bulk tissues whose cellular composition changes with age. Here, we found that human naive CD8+ T cells, which decrease in frequency during aging, exhibit an epigenetic age 15–20 years younger than effector memory CD8+ T cells from the same individual. Importantly, homogenous naive T cells isolated from individuals of different ages show a progressive increase in epigenetic age, indicating that current epigenetic clocks measure two independent variables, aging and immune cell composition. To isolate the age-associated cell intrinsic changes, we created an epigenetic clock(definition), the IntrinClock, that did not change among 10 immune cell types tested. IntrinClock shows a robust predicted epigenetic age increase in a model of replicative senescence(definition) in vitro and age reversal during OSKM-mediated reprogramming. IntrinClock is an epigenetic clock that is resistant to potential confounds arising from age-dependent changes in immune cell composition and can robustly predict epigenetic aging in multiple contexts.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1038/s42003-024-06609-4
- Canonical
- link ↗
- Fetched
- 2026-09-13 MST
Cite this
APA
Tomusiak, A., Floro, A., Tiwari, R., Riley, R., Matsui, H., Andrews, N., Kasler, H.G., & Verdin, E. (2024). Development of an epigenetic clock resistant to changes in immune cell composition. <em>Communications Biology</em>. https://doi.org/10.1038/s42003-024-06609-4
Vancouver
Tomusiak A, Floro A, Tiwari R, Riley R, Matsui H, Andrews N, et al. Development of an epigenetic clock resistant to changes in immune cell composition. Communications Biology. 2024. doi:10.1038/s42003-024-06609-4.
BibTeX
@article{alan2024Develo,
title = {Development of an epigenetic clock resistant to changes in immune cell composition},
author = {Alan Tomusiak and Ariel Floro and Ritesh Tiwari and Rebeccah Riley and Hiroyuki Matsui and Nicolas Andrews and Herbert G. Kasler and Eric Verdin},
journal = {Communications Biology},
year = {2024},
doi = {10.1038/s42003-024-06609-4},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Molecular Brain 2021
Open access · CC-BY
Novel epigenetic clock for fetal brain development predicts prenatal age for cellular stem cell models and derived neurons
Aging 2017
Preprint · CC-BY
Accelerated epigenetic aging in Werner syndrome
Aging 2015
Open access · CC-BY
Increased epigenetic age and granulocyte counts in the blood of Parkinson's disease patients
GeroScience 2021
Open access · OA
Epigenetic clock and DNA methylation analysis of porcine models of aging and obesity
Nature Aging 2021
Preprint · OA
Profiling epigenetic age in single cells
Genome biology 2022
Open access · CC-BY