Lipps H-J, Postberg J, Jackson DA (2010) Epigenetics, Disease and Behaviour, vol 48. Portland Press, London
Aging and health [https://www.who.int/news-room/fact-sheets/detail/aging-and-health]
Piefke M, Onur OA, Fink GR (2012) Aging-related changes of neural mechanisms underlying visual-spatial working memory. Neurobiol Aging 33(7):1284–1297
Lopez-Otin C, Blasco MA, Partridge L, Serrano M, Kroemer G (2013) The hallmarks of aging. Cell 153(6):1194–1217
Article CAS PubMed PubMed Central Google Scholar
Lessel D, Kubisch C (2019) Hereditary Syndromes with Signs of Premature Aging. Dtsch Arztebl Int 116(29–30):489–496
PubMed PubMed Central Google Scholar
Schnabel F, Kornak U, Wollnik B (2021) Premature aging disorders: A clinical and genetic compendium. Clin Genet 99(1):3–28
Article CAS PubMed Google Scholar
Darrow SM, Verhoeven JE, Révész D, Lindqvist D, Penninx BW, Delucchi KL, Wolkowitz OM, Mathews CA (2016) The Association Between Psychiatric Disorders and Telomere Length: A Structured review Involving 14,827 Persons. Psychosom Med 78(7):776–787
Article PubMed PubMed Central Google Scholar
Wertz J, Caspi A, Ambler A, Broadbent J, Hancox RJ, Harrington H, Hogan S, Houts RM, Leung JH, Poulton R et al (2021) Association of History of Psychopathology With Accelerated Aging at Midlife. JAMA Psychiat 78(5):530–539
Walker ER, McGee RE, Druss BG (2015) Mortality in mental disorders and global disease burden implications: a systematic review and structured review. JAMA Psychiat 72(4):334–341
Booth LN, Brunet A (2016) The Aging Epigenome. Mol Cell 62(5):728–744
Article CAS PubMed PubMed Central Google Scholar
Zhang W, Qu J, Liu GH, Belmonte JCI (2020) The aging epigenome and its rejuvenation. Nat Rev Mol Cell Biol 21(3):137–150
Article CAS PubMed Google Scholar
Postberg J, Lipps HJ, Cremer T (2010) Evolutionary origin of the cell nucleus and its functional architecture. Essays Biochem 48(1):1–24
Bird AP (1986) CpG-rich islands and the function of DNA methylation. Nature 321(6067):209–213
Article CAS PubMed Google Scholar
Biliya S, Bulla LA Jr (2010) Genomic imprinting: the influence of differential methylation in the two sexes. Exp Biol Med (Maywood) 235(2):139–147
Article CAS PubMed Google Scholar
Hackett JA, Surani MA (2013) DNA methylation dynamics during the mammalian life cycle. Philos Trans R Soc Lond B Biol Sci 368(1609):20110328
Article PubMed PubMed Central Google Scholar
Hermann A, Gowher H, Jeltsch A (2004) Biochemistry and biology of mammalian DNA methyltransferases. Cell Mol Life Sci 61(19–20):2571–2587
Article CAS PubMed Google Scholar
Hirasawa R, Feil R (2010) Genomic imprinting and human disease. Essays Biochem 48(1):187–200
Smith ZD, Meissner A (2013) DNA methylation: roles in mammalian development. Nat Rev Genet 14(3):204–220
Article CAS PubMed Google Scholar
Roth TL, Roth ED, Sweatt JD (2010) Epigenetic regulation of genes in learning and memory. Essays Biochem 48(1):263–274
McGowan PO, Szyf M (2010) Environmental epigenomics: understanding the effects of parental care on the epigenome. Essays Biochem 48(1):275–287
Jones MJ, Goodman SJ, Kobor MS (2015) DNA methylation and healthy human aging. Aging Cell 14(6):924–932
Article CAS PubMed PubMed Central Google Scholar
Murgatroyd C, Wu Y, Bockmühl Y, Spengler D (2010) The Janus face of DNA methylation in aging. Aging (Albany NY) 2(2):107–110
Article CAS PubMed Google Scholar
Bocklandt S, Lin W, Sehl ME, Sánchez FJ, Sinsheimer JS, Horvath S, Vilain E (2011) Epigenetic predictor of age. PLoS ONE 6(6):e14821
Article CAS PubMed PubMed Central Google Scholar
Horvath S, Raj K (2018) DNA methylation-based biomarkers and the epigenetic clock theory of aging. Nat Rev Genet 19(6):371–384
Article CAS PubMed Google Scholar
Oblak L, van der Zaag J, Higgins-Chen AT, Levine ME, Boks MP (2021) A systematic review of biological, social and environmental factors associated with epigenetic clock acceleration. Aging Res Rev 69:101348
Horvath S (2013) DNA methylation age of human tissues and cell types. Genome Biol 14(10):R115
Article PubMed PubMed Central Google Scholar
Horvath S (2015) Erratum to: DNA methylation age of human tissues and cell types. Genome Biol 16(1):96
Article PubMed PubMed Central Google Scholar
Hannum G, Guinney J, Zhao L, Zhang L, Hughes G, Sadda S, Klotzle B, Bibikova M, Fan JB, Gao Y et al (2013) Genome-wide methylation profiles reveal quantitative views of human aging rates. Mol Cell 49(2):359–367
Article CAS PubMed Google Scholar
Levine ME, Lu AT, Quach A, Chen BH, Assimes TL, Bandinelli S, Hou L, Baccarelli AA, Stewart JD, Li Y et al (2018) An epigenetic biomarker of aging for lifespan and healthspan. Aging (Albany NY) 10(4):573–591
Liu C, Jiao C, Wang K, Yuan N (2018) DNA Methylation and Psychiatric Disorders. Prog Mol Biol Transl Sci 157:175–232
Article CAS PubMed Google Scholar
Grodstein F, Lemos B, Yu L, Klein HU, Iatrou A, Buchman AS, Shireby GL, Mill J, Schneider JA, De Jager PL et al (2021) The association of epigenetic clocks in brain tissue with brain pathologies and common aging phenotypes. Neurobiol Dis 157:105428
Article CAS PubMed PubMed Central Google Scholar
Moola S, Munn Z, Tufanuru C, Aromataris E, Sears K, Sfetcu R, Currie M, Lisy K, Qureshi R, Mattis P, Mu PF (ed.) (2020) Chapter 7: Systematic reviews of etiology and risk: In: JBI Manual for Evidence Synthesis (https://synthesismanual.jbi.global): The Joanna Briggs Institute: ISBN 978-0-6488488-2-0: https://doi.org/10.46658/JBIMES-24-06
Schünemann H, Brożek J, Guyatt G, Oxman A (2013) GRADE handbook for grading quality of evidence and strength of recommendations. https://gdt.gradepro.org/app/handbook/handbook.html
Sterling TD (1959) Publication Decisions and their Possible Effects on Inferences Drawn from Tests of Significance—or Vice Versa. J Am Stat Assoc 54(285):30–34
Meerpohl JJ, Langer G, Perleth M, Gartlehner G, Kaminski-Hartenthaler A, Schünemann H (2012) GRADE guidelines: 3. Rating the quality of evidence (confidence in the estimates of effect). Z Evid Fortbild Qual Gesundhwes 106(6):449–456
Fries GR, Bauer IE, Scaini G, Valvassori SS, Walss-Bass C, Soares JC, Quevedo J (2020) Accelerated hippocampal biological aging in bipolar disorder. Bipolar Disord 22(5):498–507
Comments (0)