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Human aging-associated DNA hypermethylation occurs preferentially at bivalent chromatin domains
Author(s) -
Vardhman K. Rakyan,
Thomas A. Down,
Siarhei Maslau,
Toby Andrew,
Tsun-Po Yang,
Huriya Beyan,
Pamela Whittaker,
Owen T McCann,
Sarah Finer,
Ana M. Valdes,
Richard David Leslie,
Panos Deloukas,
Timothy D. Spector
Publication year - 2010
Publication title -
genome research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 9.556
H-Index - 297
eISSN - 1549-5469
pISSN - 1088-9051
DOI - 10.1101/gr.103101.109
Subject(s) - biology , dna methylation , epigenetics , chromatin , epigenomics , bivalent chromatin , histone , genetics , microbiology and biotechnology , dna , gene , nucleosome , gene expression
There is a growing realization that some aging-associated phenotypes/diseases have an epigenetic basis. Here, we report the first genome-scale study of epigenomic dynamics during normal human aging. We identify aging-associated differentially methylated regions (aDMRs) in whole blood in a discovery cohort, and then replicate these aDMRs in sorted CD4 + T-cells and CD14 + monocytes in an independent cohort, suggesting that aDMRs occur in precursor haematopoietic cells. Further replication of the aDMRs in buccal cells, representing a tissue that originates from a different germ layer compared with blood, demonstrates that the aDMR signature is a multitissue phenomenon. Moreover, we demonstrate that aging-associated DNA hypermethylation occurs predominantly at bivalent chromatin domain promoters. This same category of promoters, associated with key developmental genes, is frequently hypermethylated in cancers and in vitro cell culture, pointing to a novel mechanistic link between aberrant hypermethylation in cancer, aging, and cell culture.

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