Literature DB >> 33930583

A systematic review of biological, social and environmental factors associated with epigenetic clock acceleration.

Lara Oblak1, Jeroen van der Zaag2, Albert T Higgins-Chen3, Morgan E Levine4, Marco P Boks2.   

Abstract

Aging involves a diverse set of biological changes accumulating over time that leads to increased risk of morbidity and mortality. Epigenetic clocks are now widely used to quantify biological aging, in order to investigate determinants that modify the rate of aging and to predict age-related outcomes. Numerous biological, social and environmental factors have been investigated for their relationship to epigenetic clock acceleration and deceleration. The aim of this review was to synthesize general trends concerning the associations between human epigenetic clocks and these investigated factors. We conducted a systematic review of all available literature and included 156 publications across 4 resource databases. We compiled a list of all presently existing blood-based epigenetic clocks. Subsequently, we created an extensive dataset of over 1300 study findings in which epigenetic clocks were utilized in blood tissue of human subjects to assess the relationship between these clocks and numeral environmental exposures and human traits. Statistical analysis was possible on 57 such relationships, measured across 4 different epigenetic clocks (Hannum, Horvath, Levine and GrimAge). We found that the Horvath, Hannum, Levine and GrimAge epigenetic clocks tend to agree in direction of effects, but vary in size. Body mass index, HIV infection, and male sex were significantly associated with acceleration of one or more epigenetic clocks. Acceleration of epigenetic clocks was also significantly related to mortality, cardiovascular disease, cancer and diabetes. Our findings provide a graphical and numerical synopsis of the past decade of epigenetic age estimation research and indicate areas where further attention could be focused in the coming years.
Copyright © 2021 The Author(s). Published by Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Age estimation; Aging; Biological age; Epigenetic clock; Epigenetics; Methylation

Year:  2021        PMID: 33930583     DOI: 10.1016/j.arr.2021.101348

Source DB:  PubMed          Journal:  Ageing Res Rev        ISSN: 1568-1637            Impact factor:   10.895


  26 in total

1.  Methylation of the serotonin transporter gene moderates the depressive subjective effect of cocaine.

Authors:  Riley B Longtain; David P Graham; Mark J Harding; Richard De La Garza Ii; David A Nielsen
Journal:  Behav Brain Res       Date:  2021-11-16       Impact factor: 3.332

2.  Sexual Minority Stress and Cellular Aging in Methamphetamine-Using Sexual Minority Men With Treated HIV.

Authors:  Delaram Ghanooni; Adam W Carrico; Renessa Williams; Tiffany R Glynn; Judith T Moskowitz; Savita Pahwa; Suresh Pallikkuth; Margaret E Roach; Samantha Dilworth; Bradley E Aouizerat; Annesa Flentje
Journal:  Psychosom Med       Date:  2022-08-16       Impact factor: 3.864

Review 3.  Aging and cancer epigenetics: Where do the paths fork?

Authors:  Raúl Fernández Pérez; Juan Ramón Tejedor; Agustín Fernández Fernández; Mario Fernández Fraga
Journal:  Aging Cell       Date:  2022-09-14       Impact factor: 11.005

4.  Social mobility and biological aging among older adults in the United States.

Authors:  Gloria Huei-Jong Graf; Yalu Zhang; Benjamin W Domingue; Kathleen Mullan Harris; Meeraj Kothari; Dayoon Kwon; Peter Muennig; Daniel W Belsky
Journal:  PNAS Nexus       Date:  2022-03-29

5.  The impact of prenatal and early-life arsenic exposure on epigenetic age acceleration among adults in Northern Chile.

Authors:  Anne K Bozack; Philippe Boileau; Alan E Hubbard; Fenna C M Sillé; Catterina Ferreccio; Craig M Steinmaus; Martyn T Smith; Andres Cardenas
Journal:  Environ Epigenet       Date:  2022-06-01

6.  Relative contributions of six lifestyle- and health-related exposures to epigenetic aging: the Coronary Artery Risk Development in Young Adults (CARDIA) Study.

Authors:  Kyeezu Kim; Yinan Zheng; Brian T Joyce; Hongmei Jiang; Philip Greenland; David R Jacobs; Kai Zhang; Lei Liu; Norrina B Allen; John T Wilkins; Sarah N Forrester; Donald M Lloyd-Jones; Lifang Hou
Journal:  Clin Epigenetics       Date:  2022-07-07       Impact factor: 7.259

7.  Evaluation of short-term epigenetic age fluctuation.

Authors:  Shohei Komaki; Hideki Ohmomo; Tsuyoshi Hachiya; Yoichi Sutoh; Kanako Ono; Ryohei Furukawa; So Umekage; Yayoi Otsuka-Yamasaki; Shiori Minabe; Akira Takashima; Kozo Tanno; Makoto Sasaki; Atsushi Shimizu
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Review 8.  The Achilles' heel of cancer survivors: fundamentals of accelerated cellular senescence.

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9.  Longitudinal Study of DNA Methylation and Epigenetic Clocks Prior to and Following Test-Confirmed COVID-19 and mRNA Vaccination.

Authors:  Alina P S Pang; Albert T Higgins-Chen; Florence Comite; Ioana Raica; Christopher Arboleda; Hannah Went; Tavis Mendez; Michael Schotsaert; Varun Dwaraka; Ryan Smith; Morgan E Levine; Lishomwa C Ndhlovu; Michael J Corley
Journal:  Front Genet       Date:  2022-06-03       Impact factor: 4.772

10.  The association of epigenetic clocks in brain tissue with brain pathologies and common aging phenotypes.

Authors:  Francine Grodstein; Bernardo Lemos; Lei Yu; Hans-Ulrich Klein; Artemis Iatrou; Aron S Buchman; Gemma L Shireby; Jonathan Mill; Julie A Schneider; Philip L De Jager; David A Bennett
Journal:  Neurobiol Dis       Date:  2021-06-19       Impact factor: 7.046

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