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In silico identification of DNMT1 inhibitors from the PlantCyc database through computational approach to assess the anti-cancer potential of nutraceutical compounds in breast cancer.

Breast cancer accounts for a disproportionate share of global cancer-related deaths, with 670,000 fatalities and 2.3 million new diagnoses recorded in women during 2022 alone. Existing treatment modalities carry considerable toxicity burdens, and resistance to available agents remains an unresolved clinical problem. DNA methyltransferase 1 (DNMT1), the enzyme chiefly responsible for maintaining genome-wide methylation patterns during DNA replication, has been mapped out as a high-value target in breast cancer because its dysregulation silences tumour suppressor genes through promoter hypermethylation. The present work involves hierarchical in silico workflow to screen 4549 plant-derived compounds from the PlantCyc database (v16.0.3) against the human DNMT1 catalytic domain (PDB ID: 4WXX). Ten top-scoring compounds were taken forward for molecular docking via AutoDock Vina; Quercetin and Kaempferol both recorded the highest binding affinities at -9.5 kcal/mol, Wogonin (-9.3 kcal/mol) and Xanthohumol (-8.1 kcal/mol) also emerged as strong binders. Pharmacokinetic evaluation using ADMET-AI confirmed that all 10 compounds met Lipinski's rule of five, with human intestinal absorption values at or above 0.98. Wogonin and Xanthohumol were selected for a 100 ns all-atom molecular dynamics (MD) simulation in GROMACS due to their well-rounded ADMET profiles and limited existing data on their specific interactions with DNMT1 in breast cancer. Across all measured trajectory metrics, backbone RMSD, residue fluctuation, radius of gyration, solvent-accessible surface area, and intermolecular hydrogen bond count, Wogonin formed a more stable, compact complex. These findings suggest that Wogonin and Xanthohumol are non-toxic nutraceutical candidates suitable for DNMT1 targeted epigenetic therapy, with computational foundation strong enough to facilitate future in vitro and in vivo validation work.

Humans

Epigenetics and In Silico Transcriptome Analysis of Pediatric Acute Myeloid Leukemia.

Pediatric acute myeloid leukemia (AML) is a heterogeneous hematologic malignancy that accounts for about 15%-20% of childhood leukemias. Despite therapeutic advances, relapses remain common, and survival for high-risk patients is below 60%. Unlike adult AML, pediatric AML displays distinct genetic mutations, including FLT3-ITD, NPM1, KMT2A rearrangements, and core-binding factors (CBF) fusions, as well as extensive epigenetic dysregulation. Aberrant DNA methylation, histone modifications, and altered non-coding RNA expressions disrupt hematopoietic differentiation and activate oncogenic transcriptional networks. Recent advances in silico transcriptomic analysis have transformed the study of pediatric AML by integrating gene expression and epigenetic data to identify molecular drivers and regulatory networks. Computational RNA-seq pipelines and pathway analyses have highlighted key epigenetic regulators, including DNMT3A, TET2, and HDACs, as potential therapeutic targets. Multi-omics approaches combining transcriptomic, methylomic, and chromatin accessibility data are increasingly used to define biomarkers for diagnosis, prognosis, and therapeutic response. This review provides a comprehensive overview of the molecular and epigenetic landscape of pediatric AML, emphasizing the power of in silico transcriptome analysis to uncover disease mechanisms, refine patient stratification, and guide the development of precision-based epigenetic therapies aimed at improving long-term outcomes in children with AML.

Humans

Histone deacetylases: From acetylation homeostasis to oncogenic and neurodegenerative disorders.

Histone deacetylases (HDACs) are central regulators of acetylation homeostasis, governing chromatin architecture, transcriptional dynamics, and diverse cellular processes through reversible lysine deacetylation. Dysregulation of HDAC activity disrupts epigenetic balance and is strongly implicated in oncogenic transformation and the progression of neurodegenerative disorders. This chapter provides a comprehensive overview of HDAC biology with a particular emphasis on experimental and analytical methodologies used to investigate their function. We describe the structural and functional diversity of HDAC classes and their roles in multiprotein complexes that regulate gene expression and cellular signaling. A major focus is placed on screening-compatible and mechanistic assays, including fluorometric, colorimetric, radiometric, fluorescence polarization, TR-FRET, AlphaScreen/AlphaLISA, and differential scanning fluorimetry approaches for quantitative measurement of enzymatic activity and inhibitor profiling. In addition, advanced methodologies such as mass spectrometry-based acetylome analysis, chromatin immunoprecipitation sequencing (ChIP-seq), recombinant enzyme assays, and cell-based reporter systems are discussed in the context of functional genomics and drug discovery. The integration of high-throughput screening, structural biology, and multi-omics strategies is highlighted as essential for dissecting HDAC-mediated regulatory networks. Collectively, this chapter serves as a methodological framework for studying HDAC function and developing targeted epigenetic therapies in cancer and neurodegenerative diseases.

Histone Deacetylases

3D epigenomic remodelling mediated by Foxa1 drives gemcitabine resistance in pancreatic cancer.

Gemcitabine remains a cornerstone treatment for pancreatic ductal adenocarcinoma (PDAC), yet the emergence of resistance constitutes a major clinical challenge with poorly understood epigenomic mechanisms. Here, we identified the pioneer transcription factor Foxa1 as a master regulator of gemcitabine resistance through multi-omics analysis. Mechanistically, Foxa1 drives widespread super-enhancer (SE) reprogramming and 3D genome remodelling in resistant cells, which coordinately activates the expression of key resistance genes, notably Rrm1 and Cdadc1. This is accompanied by increased chromatin accessibility, elevated H3K27ac enrichment at SEs, and enhanced Foxa1 binding at regulatory elements. Moreover, post-translational stabilization of Foxa1 via USP7-mediated deubiquitination sustains this epigenomic program. Genetic ablation of Foxa1 or specific SE regions near Rrm1 resensitizes resistant cells to gemcitabine. Building upon this mechanism, we demonstrate that bromodomain and extraterminal (BET) inhibitors, which disrupt SE function, potently reverse resistance. Notably, the clinical-stage BET inhibitor AZD5153, in combination with gemcitabine, achieves robust tumor suppression and overcomes resistance in cell-derived xenograft (CDX) models by dismantling the Foxa1-mediated resistant transcriptome and reinvigorating drug sensitivity. Our findings establish Foxa1-orchestrated enhancer reprogramming as a fundamental mechanism of gemcitabine resistance and unveil a promising epigenetic therapy to restore treatment efficacy in PDAC.

Hepatocyte Nuclear Factor 3-alpha

Epigenetic priming and locus-specific demethylation enhance cell-death susceptibility in liver cancer.

Liver cancer treatment with epigenetic drugs remains challenging because demethylating agents such as 5-azacytidine (5-AZA) induce genome-wide toxicity and may activate oncogenes. We hypothesized that a low, nontoxic dose of 5-AZA could prime liver cancer cells by partially relaxing chromatin at selected loci to restore silenced cell-death regulators. HepG2 cells treated with 2 μM 5-AZA underwent ATAC-seq and RNA-seq to identify genes with promoter opening and increased expression. Among ten candidates, BFL-1 and SQOR were prioritized for roles in cell death and redox control. Forced expression of either gene increased sensitivity to TNF-α/cycloheximide (CHX) and sorafenib, both of which elevated mitochondrial reactive oxygen species. To establish causality in a physiological context, we used CRISPR-dCas9-TET1 to demethylate CpG-rich promoter regions of BFL-1 or SQOR. Locus-specific editing sensitized cells to TNF-α/CHX more rapidly than conventional overexpression and reproduced the heightened death response elicited by low-dose 5-AZA without baseline toxicity. Analysis of the cancer cell line encyclopedia and The Cancer Genome Atlas datasets showed consistent BFL-1 downregulation in liver cancer, variable SQOR expression across cancers, and positive correlations of both genes with tumor-suppression markers and immune-cell infiltration. These results indicate that targeted reactivation of BFL-1 and SQOR increases cell-death susceptibility in liver cancer cells. Integrating low-dose pharmacologic priming with precise epigenetic editing may preserve genome-wide methylation while restoring cell-death competence, providing proof-of-concept for locus-specific epigenetic therapy in liver cancer.

Humans

Targeting the transcription factor YY1 is synthetic lethal with loss of the histone demethylase KDM5C.

An understanding of the enzymatic and scaffolding functions of epigenetic modifiers is important for the development of epigenetic therapies for cancer. The H3K4me2/3 histone demethylase KDM5C has been shown to regulate transcription. The diverse roles of KDM5C are likely determined by its interacting partners, which are still largely unknown. In this study, we screen for KDM5C-binding proteins and show that YY1 interacts with KDM5C. A synergistic antitumor effect is exerted when both KDM5C and YY1 are depleted, and targeting YY1 appears to be a vulnerability in KDM5C-deficient cancer cells. Mechanistically, KDM5C promotes global YY1 chromatin recruitment, especially at promoters. Moreover, an intact KDM5C JmjC domain but not KDM5C histone demethylase activity is required for KDM5C-mediated YY1 chromatin binding. Transcriptional profiling reveals that dual inhibition of KDM5C and YY1 increases transcriptional repression of cell cycle- and apoptosis-related genes. In summary, our work demonstrates a synthetic lethal interaction between YY1 and KDM5C and suggests combination therapies for cancer treatments.

YY1 Transcription Factor

Novel approaches and applications in identifying DNA methylation markers of cardio-kidney-metabolic disease.

Cardio-kidney-metabolic (CKM) diseases represent a major public health challenge, accounting for a large proportion of global burden of morbidity and mortality. These conditions share risk factors, including genetic predisposition, environmental exposures, and lifestyle influences, which collectively drive disease development and progression. Epigenetic modifications, particularly DNA methylation (DNAm), serve as key mediators and biomarkers between these risk factors and disease phenotypes by regulating gene expression without altering the DNA sequence. Epigenome-wide association studies have identified DNAm markers associated with CKM diseases and related phenotypes, highlighting both shared pathways and disease-specific epigenetic signatures in inflammation, metabolic dysfunction, and aging-related processes. Longitudinal studies further demonstrate the dynamic nature of DNAm changes over time, offering insights into disease trajectories. Additionally, methylation risk scores integrating multiple epigenetic markers show promise in improving disease prediction and risk stratification beyond traditional clinical factors. To synthesize the current evidence, we conducted a targeted literature search in PubMed for English-language, peer-reviewed articles published between 2014 and the present. Future research leveraging large, well-phenotyped cohorts, advanced statistical methods, and innovative study designs will be critical for uncovering novel biomarkers, refining risk prediction models, and developing targeted epigenetic therapies to mitigate the global burden.

Humans

Impact of Maternal Aspirin Therapy on Neonatal Epigenetic Patterns.

BACKGROUND: Low-dose aspirin (LDA) is an intervention recommended to prevent the development of hypertensive disorders of pregnancy (HDP) in high-risk pregnancies. Maternal conditions such as HDP have been associated with cord blood epigenetic changes including those related to cardiovascular processes; however, it is unclear whether maternal aspirin therapy may impact neonatal epigenetics in otherwise healthy high-risk pregnancy. OBJECTIVE: This study aimed to determine if maternal LDA exposure in utero leads to altered DNA methylation in umbilical cord blood cells in term neonates compared with controls not exposed to aspirin, and to identify if these methylation changes alter key pathways in the development of chronic disease. METHODS: Umbilical cord blood was collected from 10 neonates without LDA exposure and 13 neonates with LDA exposure in utero. Patients with hypertensive disorders of pregnancy, COVID-19, and chorioamnionitis were excluded. Genomic DNA was isolated from umbilical cord blood cells and genome-wide DNA methylation was performed using Illumina Methylation EPIC assay. RESULTS: A total of 155 differentially methylated loci (81 genes were hypermethylated and 74 were hypomethylated) were identified in LDA-exposed neonatal umbilical cord blood compared with the control group. Important canonical pathways identified by Ingenuity Pathway Analysis (IPA) were related to Th1 and Th2 signaling and classical (M1) macrophage activation. The genes affected by LDA exposure were associated with cardiac and renal systems. CONCLUSION: LDA exposure led to differential DNA methylation in umbilical cord blood. The differentially methylated genes were related to inflammatory pathways as well as cardiac and renal toxicity pathways. LDA exposure in utero may promote altered health programming in the neonate in areas impacting cardiovascular health. KEY POINTS: · Maternal aspirin exposure is associated with differential DNA methylation in cord blood.. · Cord blood epigenetic changes associated with maternal aspirin relate to anti-inflammatory pathways.. · Research on potential protective impact of maternal aspirin on neonatal epigenetics is warranted..

Humans

Dual EZH1/2 inhibition enhances DNMT inhibitor efficacy in colon cancer through targeting H3K27me1.

Our recent work showed that low-dose DNMT inhibitor (DNMTi) treatment sensitizes colon cancer cells to EZH2 inhibitors (EZH2i), synergistically upregulating tumor suppressor genes (TSGs) and transposable elements through activation of the calcium-calcineurin-NFAT signaling pathway. A key observation was that EZH2i displayed variable sensitivities in combination therapy, which could not be explained solely by loss of lysine 27 trimethylation on histone H3 (H3K27me3), the most commonly studied EZH2 product. This led us to perform a comprehensive pharmacologic screen of Polycomb Repressive Complex 2 (PRC2) antagonists. Here, we show that compounds targeting both EZH2 and its interchangeable catalytic subunit, EZH1, achieved superior TSG re-expression when combined with DNMTi. Integrative proteomic and epigenomic analyses revealed that EZH1/2 inhibitors reduce all three H3K27 methylation states, whereas EZH2-selective inhibitors preserve EZH1-dependent H3K27me1 at deeply Polycomb-repressed genomic regions. Notably, H3K27me1 loss coincided with deposition of p300/CBP-dependent lysine 27 acetylation on histone H3 (H3K27ac), which proved essential for TSG re-expression. Paradoxically, blocking p300/CBP activity further enhanced the growth-inhibitory effects of combined DNMT and EZH1/2 inhibition. Mechanistically, we show that EZH1/2 inhibition redistributes p300/CBP activity, reducing H3K27ac from oncogenic loci and redirecting it to bivalent regions that enable TSG re-expression. Collectively, these findings reveal a coordinated role for EZH1-dependent H3K27me1 and DNA methylation in sustaining oncogenic transcriptional programs and provide strong rationale for advancing dual EZH1/2 inhibitors for combination epigenetic cancer therapy.

DNA methylation

Epigenetic mechanisms in breast cancer therapy and resistance.

The majority of breast cancers express the estrogen receptor (ERα) and agents targeting this pathway represent the main treatment modality. Endocrine therapy has proven successful in the treatment of hormone-responsive breast cancer since its early adoption in the 1940s as an ablative therapy. Unfortunately, therapeutic resistance arises, leading to disease recurrence and relapse. Recent studies increased our understanding in how changes to the chromatin landscape and deregulation of epigenetic factors orchestrate the resistant phenotype. Here, we will discuss how the epigenome is an integral determinant in hormone therapy response and why epigenetic factors are promising targets for overcoming clinical resistance.

Antineoplastic Agents, Hormonal

Machine learning on multiple epigenetic features reveals H3K27Ac as a driver of gene expression prediction across patients with glioblastoma.

Epigenetic mechanisms play a crucial role in driving transcript expression and shaping the phenotypic plasticity of glioblastoma stem cells (GSCs), contributing to tumor heterogeneity and therapeutic resistance. These mechanisms dynamically regulate the expression of key oncogenic and stemness-associated genes, enabling GSCs to adapt to environmental cues and evade targeted therapies. Importantly, epigenetic reprogramming allows GSCs to transition between cellular states, including therapy-resistant mesenchymal-like phenotypes, underscoring the need for epigenetic-targeting strategies to disrupt these adaptive processes. Understanding these epigenetic drivers of gene expression provides a foundation for novel therapeutic interventions aimed at eradicating GSCs and improving glioblastoma outcomes. Using machine learning (ML), we employ cross-patient prediction of transcript expression in GSCs by combining epigenetic features from various sources, including ATAC-seq, CTCF ChIP-seq, RNAPII ChIP-seq, H3K27Ac ChIP-seq, and RNA-seq. We investigate different ML and deep learning (DL) models for this task and ultimately build our final pipeline using XGBoost. The model trained on one patient generalizes to other 11 patients with high performance. Notably, H3K27Ac alone from a single patient is sufficient to predict gene expression in all 11 patients. Furthermore, the distribution of H3K27Ac peaks across the genomes of all patients is remarkably similar. These findings suggest that GSCs share a common distributional pattern of enhancer activity characterized by H3K27Ac, which can be utilized to predict gene expression in GSCs across patients. In summary, while GSCs are known for their transcriptomic and phenotypic heterogeneity, we propose that they share a common epigenetic pattern of enhancer activation that defines their underlying transcriptomic expression pattern. This pattern can predict gene expression across patient samples, providing valuable insights into the biology of GSCs.

Glioblastoma

CARM1 in human cancer: a multifunctional epigenetic node driving tumor plasticity and therapeutic vulnerability.

Coactivator-associated arginine methyltransferase 1 (CARM1/PRMT4) is a signal-responsive epigenetic regulator that couples oncogenic and stress signals to chromatin, transcription, RNA processing, metabolism, and genome maintenance. Its effects arise from both asymmetric arginine methylation of histone and non-histone substrates and methyltransferase-independent scaffolding activities. This review critically synthesizes the structural basis, substrate networks, methylarginine readers, and cancer-contextual functions of CARM1. We propose that its apparently opposing oncogenic and tumor-suppressive activities are determined by lineage-specific substrates, regulatory post-translational modifications, cofactor and chromatin availability, and stage- or microenvironment-dependent stress signals. We further evaluate CARM1-directed therapy using an evidence-graded framework. Catalytic inhibitors such as TP-064 and EZM2302 differ in binding mode and substrate coverage, whereas emerging degraders can remove scaffolding functions but remain constrained by delivery, E3-ligase heterogeneity, pharmacokinetics, and therapeutic-window uncertainties. Biomarker-guided synthetic-lethal and immunotherapy combinations may therefore offer the most tractable route to clinical translation. This framework positions CARM1 as a context-conditioned signal-to-chromatin translator rather than a uniformly druggable oncogene.

Humans

Epigenetic regulation of transgenes.

Gene therapy holds significant potential for treating genetic disorders, but the use of viral vectors is limited by factors such as immunogenicity, payload capacity, and high manufacturing costs. Nonviral gene delivery (NVGD) using plasmid DNA presents an attractive alternative; however, it typically provides a limited magnitude or duration of transgene expression. One potential reason for these shortcomings is the host cell's epigenetic regulation mechanisms, which can silence both viral and nonviral transgenes. Specifically, when foreign DNA enters the nucleus, it is detected by nuclear DNA sensors, such as IFI16, which initiate the assembly of a "restrictosome" or nuclear domain 10 (ND10) body. This multiprotein complex contains several components, such as PML, Speckled Proteins (e.g., SP100), DAXX, and ATRX that act as a scaffold for recruiting various epigenetic modifiers that subsequently deposit repressive histone modifications like H3K9me3 and H3K27me3 on the transgene chromatin. These marks induce DNA methylation and the subsequent condensation of plasmids or episomes into heterochromatin, which represses transgene expression. Alternatively, unmethylated CpG motifs in bacterial plasmid DNA can trigger innate immune responses in the cytosol, but this review will specifically focus on the detailed mechanisms of epigenetic regulation responsible for silencing plasmid DNA within the host cell nucleus. Addressing these nuclear defense mechanisms, potentially through strategies that manipulate DNA methylation or inhibit restrictosome activity, is crucial for advancing the development of safe, effective, and long-lasting plasmid viral and non-viral gene therapies.

Epigenesis, Genetic

Epi-Allele elicits compensatory expression of the non-targeted allele and prevents haploinsufficiency in dominant genetic diseases.

Epigenetic regulation may underlie asymmetric allelic expression of many genes during development and disease pathogenesis. Allele-specific epigenetic modification could provide an efficient therapy for dominant genetic diseases due to heterozygous mutations. We developed an allele-specific epigenetic editing method ("Epi-Allele") for silencing pathogenic alleles and found surprisingly elevated expression of the non-targeted alleles, leaving total gene expression unchanged. Genome-wide screening revealed that such compensated allelic expression represents a common phenomenon, suggesting that the Epi-Allele approach could avoid the haploinsufficiency induced by current allele-specific silencing therapies. This notion was validated by allele-specific epigenetic remodeling of Myh6 and MYH7 genes in ameliorating cardiac phenotypes in a hypertrophic cardiomyopathy (HCM) mouse model and HCM patient iPSC-derived cardiomyocytes, respectively. Thus, Epi-Allele offers an allele-specific haploinsufficiency-free therapeutic approach for treating dominant genetic diseases.

DNA methylation

Translating CRISPR-Cas Therapeutics: Approaches and Challenges.

CRISPR-Cas clinical trials have begun, offering a first glimpse at how DNA and RNA targeting could enable therapies for many genetic and epigenetic human diseases. The speedy progress of CRISPR-Cas from discovery and adoption to clinical use is built on decades of traditional gene therapy research and belies the multiple challenges that could derail the successful translation of these new modalities. Here, we review how CRISPR-Cas therapeutics are translated from technological systems to therapeutic modalities, paying particular attention to the therapeutic cascade from cargo to delivery vector, manufacturing, administration, pipelines, safety, and therapeutic target profiles. We also explore potential solutions to some of the obstacles facing successful CRISPR-Cas translation. We hope to illuminate how CRISPR-Cas is brought from the academic bench toward use in the clinic.

CRISPR-Cas Systems

The effects of tildrakizumab in the epigenetic aging deviation of psoriasis: A 52-week open-label study.

BACKGROUND: While biologic therapies targeting interleukin-23 control cutaneous inflammation in psoriasis, their impact on epigenetic aging has not been previously demonstrated. OBJECTIVES: To evaluate the effects of tildrakizumab treatment in the epigenetic aging deviation of moderate-to severe psoriasis. METHODS: In an open-label 52-week clinical trial, 20 adults with psoriasis were treated with tildrakizumab-asmn 100 mg injections until week 28. Ten age-matched controls without psoriasis were enrolled. Genome-wide DNA methylation was profiled in peripheral blood leukocyte DNA (MethylationEPICv2.0, Illumina) to calculate epigenetic aging clocks predictive of all-cause-mortality, phenotypic age, chronological age, pace of aging, and telomere length. Epigenetic age deviation was calculated as the residuals against chronological age. RESULTS: Psoriasis patients had increased epigenetic age deviation in clocks predictive of mortality: PCGrimAge (P = .008), cytosine-phosphate-guanine (CpG) PTPCGrimAge3 (P = .019), CpGPTGrimAge3 (P = .019), GrimAge2 (P = .049). PCGrimAge was reversed by 0.3 years (week 28, P = .005) and 0.5 years (week 52, P = .04) after the use of tildrakizumab-asmn. The pace of aging was increased in psoriasis patients: DunedinPACE (P = .049). LIMITATIONS: Pilot study (small sample size). CONCLUSIONS: Psoriasis patients presented accelerated epigenetic aging in mortality-predictive clocks. Treatment with tildrakizumab-asmn (interleukin-23 inhibition) showed partial reversal of those clocks in 28 weeks. (Funded by Sun Pharmaceutical Industries, Inc; ClinicalTrials.gov number, NCT05110313).

DNA methylation clocks

Drug resistance in breast cancer brain metastasis: mechanisms and therapeutic strategies.

Brain-metastatic breast cancer (BMBC) is a severe complication of advanced breast cancer, affecting 15-30% of metastatic patients, particularly those with HER2-positive or triple-negative subtypes, and is associated with dismal prognosis and median survival under 12 months. Therapeutic resistance, driven by the central nervous system's sanctuary role, poses a major barrier to effective treatment, often resulting in discordant intracranial versus extracranial responses. This comprehensive review highlights BMBC resistance mechanisms, drawing from preclinical models, clinical studies, and genomic analyses. Key drivers include genetic/epigenetic alterations, BBB-mediated drug exclusion via efflux transporters, and microenvironmental interactions with astrocytes and immune cells that promote survival signaling. Additional factors encompass cancer stem cell plasticity/dormancy enabling therapy evasion, metabolic reprogramming and extracellular matrix remodeling that shields tumor from drugs. We highlight how these interconnected pathways create a protective niche for metastatic cells. Promising strategies to overcome resistance include BBB-penetrant agents, antibody-drug conjugates, nanomedicine, and combination therapies targeting the tumor microenvironment and epigenetics. By integrating mechanistic insights with translational opportunities, this review emphasizes the potential for personalized, multi-targeted approaches to improve patient outcomes in BMBC.

Humans

Targeting SUV4-20H2-mediated H4K20 methylation restrains growth and migration in pediatric high-grade astrocytomas.

Pediatric astrocytomas are characterized by increased molecular and clinical heterogeneity with epigenetic alterations contributing to aggressiveness and therapy resistance. The repressive histone mark H4K20 trimethylation (H4K20me3) and the methyltransferase SUV4-20H2 (KMT5C) are critical regulators of chromatin integrity and genome stability, with limited investigation in pediatric astrocytomas. KMT5C mRNA levels were evaluated in a publicly available pediatric gliomas database using bioinformatic analysis. Investigation of SUV4-20H2 and H4K20me3 expression was performed in a cohort of 43 pediatric astrocytoma tissues by immunohistochemistry. Their functional role and mechanism of action was investigated in pediatric glioma cell lines by using the substrate-competitive inhibitor of SUV4-20, A-196. Cell viability, apoptosis and migration were assessed using XTT, cleaved PARP, and wound healing assays, respectively. Effects of treatment on H4K20 methylation, DNA damage, mitotic stress [Polo-like kinase (PLK1) expression], and invasion markers (N-cadherin, β-catenin expression) were examined by western immunoblotting. KMT5C mRNA was significantly enriched in pediatric high-grade astrocytomas compared to low-grade tumors. A significant elevation of SUV4-20H2 and H4K20me3 expression was detected in astrocytoma tissues indicating epigenetic dysregulation contributing to malignancy. Treatment with A-196 reduced cell proliferation of pediatric glioma cell lines and induced apoptosis in a dose-dependent manner. It further impaired cell migration, accompanied by reduced N-cadherin and β-catenin expression. Mechanistically, inhibition of SUV4-20 depleted H4K20me3, inducing chromatin destabilization, replication-associated DNA damage and was associated with increased PLK1 expression, consistent with activation of a mitotic stress response. Our findings indicate that SUV4-20H2-mediated H4K20 activity in pediatric high-grade astrocytomas maintains their growth and migratory potential by regulating chromatin integrity and may serve as potential therapeutic target.

H4K20me2/3