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Ischemic cardiomyopathy (ICM) is the clinical endpoint of coronary heart disease and a leading cause of heart failure. Despite growing demands to develop personalized approaches to treat ICM, progress is limited by inadequate knowledge of its pathogenesis. Since epigenetics has been implicated in the development of other chronic diseases, the current study was designed to determine whether transcriptional and/or epigenetic changes are sufficient to distinguish ICM from other etiologies of heart failure. Specifically, we hypothesize that genome-wide DNA methylation encodes transcriptional reprogramming in ICM. RNA-sequencing analysis was performed on human ischemic left ventricular tissue obtained from patients with end-stage heart failure, which enriched known targets of the polycomb methyltransferase EZH2 compared to non-ischemic hearts. Combined RNA sequencing and genome-wide DNA methylation analysis revealed a robust gene expression pattern consistent with suppression of oxidative metabolism, induced anaerobic glycolysis, and altered cellular remodeling. Lastly, KLF15 was identified as a putative upstream regulator of metabolic gene expression that was itself regulated by EZH2 in a SET domain-dependent manner. Our observations therefore define a novel role of DNA methylation in the metabolic reprogramming of ICM. Furthermore, we identify EZH2 as an epigenetic regulator of KLF15 along with DNA hypermethylation, and we propose a novel mechanism through which coronary heart disease reprograms the expression of both intermediate enzymes and upstream regulators of cardiac metabolism such as KLF15.
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http://dx.doi.org/10.1038/s41374-018-0104-x | DOI Listing |
Trends Plant Sci
September 2025
School of Agriculture and Food Sustainability, The University of Queensland, St Lucia, QLD, Australia, 4072. Electronic address:
Advances in genome engineering have paved the way for targeted epigenome engineering, providing fundamental insights into the role of epigenetic modifications in trait inheritance. Engineered epialleles have already delivered stable, heritable changes in agronomic traits. Despite this capacity, progress in the field has not yet achieved its potential, leaving many avenues of research unexplored.
View Article and Find Full Text PDFInt J Biol Macromol
September 2025
Faculty of Applied Sciences, Macao Polytechnic University, Macao. Electronic address:
Osteosarcoma (OS), the most prevalent primary bone malignancy in adolescents, is characterized by aggressive progression and early metastasis. However, the epigenetic drivers of its metastatic heterogeneity remain poorly understood. Herein, we integrated bulk DNA methylation profiling and single-cell RNA sequencing (scRNA-seq) to elucidate the epigenetic mechanisms driving OS metastatic heterogeneity.
View Article and Find Full Text PDFNeurosci Biobehav Rev
September 2025
Instituto de Neurobiología, Universidad Nacional Autónoma de México.
Epigenetic mechanisms are essential in neurogenesis during development and adulthood. DNA methylation, histone post-translational modifications, and non-coding RNAs regulate gene expression to maintain the neural stem cell pool and direct the fate of newborn neurons by modulating cell proliferation, migration, differentiation, maturation, and survival. Adult neurogenesis exhibits bidirectional interactions with non-social and socio-sexual factors such as sexual behavior, mate recognition, pair bonding, parental behavior, and offspring recognition.
View Article and Find Full Text PDFCerebrovasc Dis
September 2025
Background: Intracranial aneurysm (IA), known as pathological dilation of cerebral arteries,commonly occurring at bifurcating arteries,carries a high risk of severe morbidity and mortality if left untreated.Although the treatment and early diagnosis have significantly improved,the complex pathophysiological process of IA formation presents significant challenges in the development of targeted therapies.Efficient disease-modifying therapies for IA are not yet available.
View Article and Find Full Text PDFCell Rep
September 2025
Weill Cornell Medicine, New York, NY 10065, USA. Electronic address:
An adverse gestational environment is a risk factor for the development of psychiatric disorders. Although studies have implicated modifications in neuronal DNA and chromatin, how these changes come about and lead to abnormal behaviors is not known. We sought to identify persistent DNA/chromatin and transcriptomic signatures induced by a proinflammatory gestational environment in the ventral dentate gyrus (vDG), a hippocampal region linked to anxiety.
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