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Published on: September 7, 2017
Counteracting aged DNA methylation states to combat ageing and age-related diseases
Anna Reale1, Stefano Tagliatesta2, Giuseppe Zardo1
1Department of Experimental Medicine, Sapienza University of Rome, 00161 Rome, Italy.
Abstract:
DNA methylation (DNAm) overwrites information about multiple extrinsic factors on the genome. Age is one of these factors. Age causes characteristic DNAm changes that are thought to be not only major drivers of normal ageing but also precursors to diseases, cancer being one of these. Although there is still much to learn about the relationship between ageing, age-related diseases and DNAm, we now know how to interpret some of the effects caused by age in the form of changes in methylation marks at specific loci. In fact, these changes form the basis of the so called "epigenetic clocks", which translate the genomic methylation profile into an "epigenetic age". Epigenetic age does not only estimate chronological age but can also predict the risk of chronic diseases and mortality. Epigenetic age is believed to be one of the most accurate metrics of biological age. Initial evidence has recently been gathered pointing to the possibility that the rate of epigenetic ageing can be slowed down or even reversed. In this review, we discuss some of the most relevant advances in this field. Expected outcome is that this approach can provide insights into how to preserve health and reduce the impact of ageing diseases in humans.
Insights
Epigenetic clocks measure biological age using DNA methylation, offering insights into aging and disease risk. Emerging research suggests this epigenetic aging process may be reversible, potentially improving healthspan.
Area of Science:
- Genomics and Epigenetics
- Aging Research
- Molecular Biology
Background:
- DNA methylation (DNAm) changes with age, influencing aging processes and disease development.
- Epigenetic clocks utilize DNAm patterns to estimate biological age, termed 'epigenetic age'.
- Epigenetic age predicts mortality and chronic disease risk, serving as a key aging biomarker.
Purpose of the Study:
- To review recent advances in understanding epigenetic aging.
- To explore the potential for slowing or reversing epigenetic aging.
- To discuss implications for human healthspan and age-related diseases.
Main Methods:
- Analysis of DNA methylation patterns at specific genomic loci.
- Development and application of epigenetic clock algorithms.
- Review of current literature on interventions targeting epigenetic aging.
Main Results:
- Epigenetic age is a robust predictor of health outcomes and mortality.
- Evidence suggests epigenetic aging rate can be modulated.
- Specific interventions show promise in altering epigenetic age.
Conclusions:
- Epigenetic clocks provide valuable insights into the aging process.
- Modulating epigenetic aging may offer novel strategies for disease prevention.
- Further research can illuminate pathways to enhance health and longevity.
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