Aug 2026· Molecular therapy. Advances· Vol 34, pp. 201831· 0 citations· 124 references
Medicine
TL;DR
Current technologies for epigenetic mark detection are summarized and the transition from global pharmacological approaches to programmable, modular editing systems that enable spatial and temporal control of gene regulation are discussed.
Abstract
Although cells within an organism share nearly identical genomes, their transcriptional programs differ markedly due to reversible chemical modifications known as epigenetic marks. These marks, including DNA methylation and histone modifications, regulate gene expression without altering DNA sequence and play a central role in development and disease. While epigenetic drugs such as DNA methyltransferase inhibitors have shown clinical benefit, their genome-wide activity often results in off-target toxicity limiting broader therapeutic applications. This has driven the development of locus-specific epigenetic editing strategies. Programmable epigenetic modifiers (PEMs) combine customizable DNA-binding platforms, such as CRISPR-dCas systems, transcription activator-like effectors (TALEs), or zinc fingers, with epigenetic effector domains to precisely install or remove regulatory marks at defined genomic loci. Because effective editing depends on the pre-existing epigenetic landscape, detection and characterization of target-site epigenetic states is a prerequisite for rational editor design, increasingly aided by machine-learning models that predict editing outcomes. In this review, we summarize current technologies for epigenetic mark detection and discuss the transition from global pharmacological approaches to programmable, modular editing systems that enable spatial and temporal control of gene regulation. We further address heritability and delivery constraints. Reversible, site-specific epigenetic editing represents a promising therapeutic paradigm for cancer, genetic disorders, and regenerative medicine.
This review comprehensively discusses the molecular mechanisms underlying epigenetic regulation, key epigenome editing tools, their modes of action, and the emerging applications of epigenome editing in plant biology, highlighting it as a potential tool for sustainable agriculture and precision breeding.
Marifa Gulzar, Gazala Nazir, F. Mushtaq et al.· Saudi Journal of Food Securi...· 0 citations
Cell-specific epigenetic editing holds very high therapeutic value for atherosclerosis, cardiomyopathy, and fibrosis, provided that delivery, specificity, and safety challenges are also addressed.
Majed Alsulami, Mahmood Rasool, Ahmed Masoud et al.· The Cardiology· 0 citations
The mechanisms and roles of DNA methylation in epigenetic regulation are examined, the current landscape of DNA methylation modulators are evaluated, from traditional DNMT inhibitors to cutting-edge CRISPR-dCas9 fusion systems and protein-protein interaction disruptors, and their clinical relevance are evaluated.
Julie Gilbert, Francesco Calzaferri· Chemical Research in Toxicol...· 0 citations
This review presents an in-depth analysis of the most recent advances in small-molecule epigenetic modulators, focusing on their mechanisms of action, therapeutic applications, and the challenges impeding their clinical development, with the aim of informing the rational design and optimization of next-generation epigenetic treatment strategies for cancer.
Peng Jin, Yi Wang, Na Zhao et al.· Biochimica et biophysica act...· 0 citations
Histone post-translational modifications are central regulators of chromatin organization and genome function, acting independently of alterations in DNA sequence. This review comprehensively summarizes the multifaceted roles of major histone modifications including acetylation, methylation, ubiquitination, phosphorylation and emerging metabolism-linked acylations in governing critical DNA-templated processes such as replication, transcription, and the DNA damage response. We further discuss the concept of the nuclear metabolic microenvironment, in which local metabolite availability and enzyme activity directly influence the deposition of histone acylation marks and thereby connect metabolic state to chromatin regulation. We also examine how dysregulation of these pathways promotes tumor initiation and progression, facilitates immune evasion, and drives therapeutic resistance. On this basis, we evaluate current therapeutic strategies targeting histone-modifying machinery in cancer, including approved epigenetic drugs, agents in clinical development, biomarker-guided applications, resistance mechanisms, and combination approaches. We further distinguish direct pharmacological targeting of histone writers, erasers, and readers separately from indirect interventions against upstream kinases, metabolic pathways, or organelle-level metabolic remodeling. Together, these observations highlight the biological and translational importance of histone modifications in cancer and support continued development of mechanism-informed and biomarker-guided epigenetic therapies in precision oncology.
Lingli Wang, Shi-Ying Li, Xiaoyan Hu et al.· Precision Clinical Medicine· 0 citations
Chromatin contains genetic information in eukaryotes. Multiple epigenetic mechanisms, such as chemical modifications of DNA and histone post-translational modifications (PTMs), regulate chromatin organization and architecture, influencing RNA transcription and driving diverse gene expression patterns from the same genome. This epigenetic control is highly dynamic and influenced by various events, such as DNA insults which cause altered gene expressions to drive aging, neurodegeneration, and cancer. However, this interplay remains poorly understood and identifying novel molecular effectors may shed light for therapeutic purposes. Here, we investigate the consequences of UV exposure in cells expressing a mutant form of damage-specific DNA-binding protein 2 (DDB2), a key protein for UV damage repair, in which interaction with PCNA is disrupted, thereby impairing proper DDB2 degradation. Our data reports that overexpression of mutant DDB2 resulted in persistent epigenetic alterations after UV irradiation, which led to elevated detection of H3K9 acetylation and trimethylation, as well as increments in 5-methylcytosine and altered subnuclear localization of γ-H2AX. Collectively, these findings demonstrate that DDB2–PCNA interaction regulates not only DDB2 stability, but also the epigenetic landscape of the genome.
C. Casali, Margherita Cavallo, Adel Diaf et al.· Histochemistry and Cell Biol...· 1 citation
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