Epigenetics, Memory and Aging
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Publisher
Springer Nature Switzerland
Link
https://link.springer.com/content/pdf/10.1007/978-3-031-61257-2_3
Reference11 articles.
1. Debes, C., Papadakis, A., Gronke, S., Karalay, O., Tain, L. S., Mizi, A., Nakamura, S., Hahn, O., Weigelt, C., Josipovic, N., et al. (2023). Ageing-associated changes in transcriptional elongation influence longevity. Nature, 616, 814–821.
2. Field, A. E., Robertson, N. A., Wang, T., Havas, A., Ideker, T., & Adams, P. D. (2018). DNA methylation clocks in aging: Categories, causes, and consequences. Molecular Cell, 71, 882–895.
3. Fitz-James, M. H., & Cavalli, G. (2022). Molecular mechanisms of transgenerational epigenetic inheritance. Nature Reviews Genetics, 23, 325–341.
4. Horvath, S., & Raj, K. (2018). DNA methylation-based biomarkers and the epigenetic clock theory of ageing. Nature Reviews Genetics, 19, 371–384.
5. Kabacik, S., Lowe, D., Fransen, L., Leonard, M., Ang, S.-L., Whiteman, C., Corsi, S., Cohen, H., Felton, S., Bali, R., et al. (2022). The relationship between epigenetic age and the hallmarks of aging in human cells. Nature Aging, 2, 484–493.
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