Literature DB >> 34655509

Many chronological aging clocks can be found throughout the epigenome: Implications for quantifying biological aging.

Hunter L Porter1,2,3, Chase A Brown1,2, Xiavan Roopnarinesingh1,2, Cory B Giles1,2,3, Constantin Georgescu2, Willard M Freeman1,2, Jonathan D Wren1,2,3.   

Abstract

Epigenetic alterations are a hallmark of aging and age-related diseases. Computational models using DNA methylation data can create "epigenetic clocks" which are proposed to reflect "biological" aging. Thus, it is important to understand the relationship between predictive clock sites and aging biology. To do this, we examined over 450,000 methylation sites from 9,699 samples. We found ~20% of the measured genomic cytosines can be used to make many different epigenetic clocks whose age prediction performance surpasses that of telomere length. Of these predictive sites, the average methylation change over a lifetime was small (~1.5%) and these sites were under-represented in canonical regions of epigenetic regulation. There was only a weak association between "accelerated" epigenetic aging and disease. We also compare tissue-specific and pan-tissue clock performance. This is critical to applying clocks both to new sample sets in basic research, as well as understanding if clinically available tissues will be feasible samples to evaluate "epigenetic aging" in unavailable tissues (e.g., brain). Despite the reproducible and accurate age predictions from DNA methylation data, these findings suggest they may have limited utility as currently designed in understanding the molecular biology of aging and may not be suitable as surrogate endpoints in studies of anti-aging interventions. Purpose-built clocks for specific tissues age ranges or phenotypes may perform better for their specific purpose. However, if purpose-built clocks are necessary for meaningful predictions, then the utility of clocks and their application in the field needs to be considered in that context.
© 2021 The Authors. Aging Cell published by Anatomical Society and John Wiley & Sons Ltd.

Entities:  

Keywords:  Aging; bioinformatics; epigenetic clocks; epigenetics

Mesh:

Substances:

Year:  2021        PMID: 34655509      PMCID: PMC8590098          DOI: 10.1111/acel.13492

Source DB:  PubMed          Journal:  Aging Cell        ISSN: 1474-9718            Impact factor:   9.304


  42 in total

1.  Epigenetic age acceleration changes 2 years after antiretroviral therapy initiation in adults with HIV: a substudy of the NEAT001/ANRS143 randomised trial.

Authors:  Andrés Esteban-Cantos; Javier Rodríguez-Centeno; Pilar Barruz; Belén Alejos; Gabriel Saiz-Medrano; Julián Nevado; Artur Martin; Francisco Gayá; Rosa De Miguel; Jose I Bernardino; Rocío Montejano; Beatriz Mena-Garay; Julen Cadiñanos; Eric Florence; Fiona Mulcahy; Denes Banhegyi; Andrea Antinori; Anton Pozniak; Cédrick Wallet; François Raffi; Berta Rodés; Jose R Arribas
Journal:  Lancet HIV       Date:  2021-04       Impact factor: 12.767

2.  YAP/TEAD-mediated transcription controls cellular senescence.

Authors:  Qi Xie; Jing Chen; Han Feng; Shengyi Peng; Ursula Adams; Yujie Bai; Li Huang; Ji Li; Junjian Huang; Songshu Meng; Zengqiang Yuan
Journal:  Cancer Res       Date:  2013-04-10       Impact factor: 12.701

Review 3.  How does DNA methylation mark the fate of cells?

Authors:  Marcella Macaluso; Antonio Giordano
Journal:  Tumori       Date:  2004 Jul-Aug

4.  VISTA Enhancer Browser--a database of tissue-specific human enhancers.

Authors:  Axel Visel; Simon Minovitsky; Inna Dubchak; Len A Pennacchio
Journal:  Nucleic Acids Res       Date:  2006-11-27       Impact factor: 16.971

5.  Absence of genomic hypomethylation or regulation of cytosine-modifying enzymes with aging in male and female mice.

Authors:  Niran Hadad; Dustin R Masser; Sreemathi Logan; Benjamin Wronowski; Colleen A Mangold; Nicholas Clark; Laura Otalora; Archana Unnikrishnan; Matthew M Ford; Cory B Giles; Jonathan D Wren; Arlan Richardson; William E Sonntag; David R Stanford; Willard Freeman
Journal:  Epigenetics Chromatin       Date:  2016-07-13       Impact factor: 4.954

6.  DNA methylation-based measures of biological age: meta-analysis predicting time to death.

Authors:  Brian H Chen; Riccardo E Marioni; Elena Colicino; Marjolein J Peters; Cavin K Ward-Caviness; Pei-Chien Tsai; Nicholas S Roetker; Allan C Just; Ellen W Demerath; Weihua Guan; Jan Bressler; Myriam Fornage; Stephanie Studenski; Amy R Vandiver; Ann Zenobia Moore; Toshiko Tanaka; Douglas P Kiel; Liming Liang; Pantel Vokonas; Joel Schwartz; Kathryn L Lunetta; Joanne M Murabito; Stefania Bandinelli; Dena G Hernandez; David Melzer; Michael Nalls; Luke C Pilling; Timothy R Price; Andrew B Singleton; Christian Gieger; Rolf Holle; Anja Kretschmer; Florian Kronenberg; Sonja Kunze; Jakob Linseisen; Christine Meisinger; Wolfgang Rathmann; Melanie Waldenberger; Peter M Visscher; Sonia Shah; Naomi R Wray; Allan F McRae; Oscar H Franco; Albert Hofman; André G Uitterlinden; Devin Absher; Themistocles Assimes; Morgan E Levine; Ake T Lu; Philip S Tsao; Lifang Hou; JoAnn E Manson; Cara L Carty; Andrea Z LaCroix; Alexander P Reiner; Tim D Spector; Andrew P Feinberg; Daniel Levy; Andrea Baccarelli; Joyce van Meurs; Jordana T Bell; Annette Peters; Ian J Deary; James S Pankow; Luigi Ferrucci; Steve Horvath
Journal:  Aging (Albany NY)       Date:  2016-09-28       Impact factor: 5.682

7.  ALE: automated label extraction from GEO metadata.

Authors:  Cory B Giles; Chase A Brown; Michael Ripperger; Zane Dennis; Xiavan Roopnarinesingh; Hunter Porter; Aleksandra Perz; Jonathan D Wren
Journal:  BMC Bioinformatics       Date:  2017-12-28       Impact factor: 3.169

8.  Cellular senescence and chronological age in various human tissues: A systematic review and meta-analysis.

Authors:  Camilla S L Tuttle; Mariette E C Waaijer; Monique S Slee-Valentijn; Theo Stijnen; Rudi Westendorp; Andrea B Maier
Journal:  Aging Cell       Date:  2019-12-05       Impact factor: 9.304

9.  Aging of blood can be tracked by DNA methylation changes at just three CpG sites.

Authors:  Carola Ingrid Weidner; Qiong Lin; Carmen Maike Koch; Lewin Eisele; Fabian Beier; Patrick Ziegler; Dirk Olaf Bauerschlag; Karl-Heinz Jöckel; Raimund Erbel; Thomas Walter Mühleisen; Martin Zenke; Tim Henrik Brümmendorf; Wolfgang Wagner
Journal:  Genome Biol       Date:  2014-02-03       Impact factor: 13.583

Review 10.  Tracking the Epigenetic Clock Across the Human Life Course: A Meta-analysis of Longitudinal Cohort Data.

Authors:  Riccardo E Marioni; Matthew Suderman; Brian H Chen; Steve Horvath; Stefania Bandinelli; Tiffany Morris; Stephan Beck; Luigi Ferrucci; Nancy L Pedersen; Caroline L Relton; Ian J Deary; Sara Hägg
Journal:  J Gerontol A Biol Sci Med Sci       Date:  2019-01-01       Impact factor: 6.053

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  7 in total

1.  Many chronological aging clocks can be found throughout the epigenome: Implications for quantifying biological aging.

Authors:  Hunter L Porter; Chase A Brown; Xiavan Roopnarinesingh; Cory B Giles; Constantin Georgescu; Willard M Freeman; Jonathan D Wren
Journal:  Aging Cell       Date:  2021-10-16       Impact factor: 9.304

2.  A cautionary note on altered pace of aging in the COVID-19 era.

Authors:  MennattAllah Hassan Attia
Journal:  Forensic Sci Int Genet       Date:  2022-05-17       Impact factor: 4.453

3.  Genetic loci and metabolic states associated with murine epigenetic aging.

Authors:  Khyobeni Mozhui; Ake T Lu; Caesar Z Li; Amin Haghani; Jose Vladimir Sandoval-Sierra; Yibo Wu; Robert W Williams; Steve Horvath
Journal:  Elife       Date:  2022-04-07       Impact factor: 8.713

4.  ZMAT3 hypomethylation contributes to early senescence of preadipocytes from healthy first-degree relatives of type 2 diabetics.

Authors:  Rosa Spinelli; Pasqualina Florese; Luca Parrillo; Federica Zatterale; Michele Longo; Vittoria D'Esposito; Antonella Desiderio; Annika Nerstedt; Birgit Gustafson; Pietro Formisano; Claudia Miele; Gregory Alexander Raciti; Raffaele Napoli; Ulf Smith; Francesco Beguinot
Journal:  Aging Cell       Date:  2022-02-11       Impact factor: 11.005

Review 5.  Human age reversal: Fact or fiction?

Authors:  Adiv A Johnson; Bradley W English; Maxim N Shokhirev; David A Sinclair; Trinna L Cuellar
Journal:  Aging Cell       Date:  2022-07-02       Impact factor: 11.005

6.  Comprehensive analysis of epigenetic clocks reveals associations between disproportionate biological ageing and hippocampal volume.

Authors:  Lidija Milicic; Michael Vacher; Tenielle Porter; Vincent Doré; Samantha C Burnham; Pierrick Bourgeat; Rosita Shishegar; James Doecke; Nicola J Armstrong; Rick Tankard; Paul Maruff; Colin L Masters; Christopher C Rowe; Victor L Villemagne; Simon M Laws
Journal:  Geroscience       Date:  2022-04-21       Impact factor: 7.581

Review 7.  5-methylcytosine turnover: Mechanisms and therapeutic implications in cancer.

Authors:  Marion Turpin; Gilles Salbert
Journal:  Front Mol Biosci       Date:  2022-08-17
  7 in total

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