The Epigenetic Landscape: From Molecular Mechanisms to Biological Aging.

Rejuvenation research Pub Date : 2025-06-01 Epub Date: 2025-03-17 DOI:10.1089/rej.2024.0102
Rachel Evangelina, Subhashree Ganesan, Melvin George
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Abstract

Epigenetics, the study of heritable changes in gene expression that do not involve alterations to the deoxyribonucleic acid (DNA) sequence, plays a pivotal role in cellular function, development, and aging. This review explores key epigenetic mechanisms, including DNA methylation (DNAm), histone modifications, chromatin remodeling, RNA-based regulation, and long-distance chromosomal interactions. These modifications contribute to cellular differentiation and function, mediating the dynamic interplay between the genome and environmental factors. Epigenetic clocks, biomarkers based on DNAm patterns, have emerged as powerful tools to measure biological age and predict health span. This article highlights the evolution of epigenetic clocks, from first-generation models such as Horvath's multi-tissue clock to advanced second- and third-generation clocks such as DNAGrimAge and DunedinPACE, which incorporate biological parameters and clinical biomarkers for precise age estimation. Moreover, the role of epigenetics in aging and age-related diseases is discussed, emphasizing its impact on genomic stability, transcriptional regulation, and cellular senescence. Epigenetic dysregulation is implicated in cancer, genetic disorders, and neurodegenerative diseases, making it a promising target for therapeutic interventions. The reversibility of epigenetic modifications offers hope for mitigating age acceleration and enhancing health span through lifestyle changes and pharmacological approaches.

表观遗传景观:从分子机制到生物衰老。
表观遗传学是研究不涉及脱氧核糖核酸(DNA)序列改变的基因表达的可遗传变化的学科,在细胞功能、发育和衰老中起着关键作用。这篇综述探讨了关键的表观遗传机制,包括DNA甲基化(DNAm)、组蛋白修饰、染色质重塑、rna调控和远距离染色体相互作用。这些修饰有助于细胞分化和功能,介导基因组和环境因素之间的动态相互作用。表观遗传时钟,一种基于dna模式的生物标志物,已经成为测量生物年龄和预测健康寿命的有力工具。这篇文章强调了表观遗传时钟的进化,从第一代模型如Horvath的多组织时钟到先进的第二代和第三代时钟,如DNAGrimAge和DunedinPACE,它们结合了生物参数和临床生物标志物来精确估计年龄。此外,还讨论了表观遗传学在衰老和年龄相关疾病中的作用,强调了其对基因组稳定性、转录调控和细胞衰老的影响。表观遗传失调与癌症、遗传疾病和神经退行性疾病有关,使其成为治疗干预的一个有希望的目标。表观遗传修饰的可逆性为通过改变生活方式和药理学方法减轻年龄加速和延长健康寿命提供了希望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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