ArticleCardiovascular research2025
DNA double-stranded breaks, a hallmark of aging, defined at the nucleotide resolution, are increased and associated with transcription in the cardiac myocytes in LMNA-cardiomyopathy.
Article in Cardiovascular research, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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11 citing papers in PubMed, 13 citations in OpenAlex.
- Lamins gate nuclear and chromatin structures for cardiomyocyte maturation genes.bioRxiv : the preprint server for biology · 2026Article
- The Pathogenic Role of the DNA Double-Stranded Breaks in Hereditary Cardiomyopathies.Heart failure clinics · 2026Review
- LMNA-related cardiomyopathy: From molecular pathology to cardiac gene therapy.Journal of advanced research · 2025Review
- Lamin: guardian against DNA damage by transcription stress.Cardiovascular research · 2025Article
- Cardiomyocyte cytosolic nuclear self-DNA contributes to the pathogenesis of desmoplakin cardiomyopathy.JCI insight · 2025Article
- Anti-senescence therapies: a new concept to address cardiovascular disease.Cardiovascular research · 2025Review
- Phenotypic diversity of the LMNA mutations.Current opinion in cardiology · 2025Article
- Cardiac phenotypes in LMNA mutations.Current opinion in cardiology · 2025Review
- Causes and consequences of DNA double-stranded breaks in cardiovascular disease.Molecular and cellular biochemistry · 2025Review
- The CGAS-STING1 Pathway as a Mediator of Innate Immune Response in Cardiovascular Disease.JACC. Asia · 2025Review
- Nuclear factor erythroid 2-related factor 2 ameliorates disordered glucose and lipid metabolism in liver: Involvement of gasdermin D in regulating pyroptosis.Clinical and translational medicine · 2025Article
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6 authors at 2 institutions in 1 country.
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Abstract
aimsAn intrinsic feature of gene transcription is the formation of DNA superhelices near the transcription bubble, which are resolved upon induction of transient double-stranded breaks (DSBs) by topoisomerases. Unrepaired DSBs are pathogenic as they lead to cell cycle arrest, senescence, inflammation, and organ dysfunction. We posit that DSBs would be more prevalent at the genomic sites that are associated with gene expression. The objectives were to identify and characterize genome-wide DSBs at the nucleotide resolution and determine the association of DSBs with transcription in cardiac myocytes. METHODS AND
resultsWe identified the genome-wide DSBs in ∼1 million cardiac myocytes per heart in three wild-type and three myocyte-specific LMNA-deficient (Myh6-Cre:LmnaF/F) mice by END-Sequencing. The prevalence of DSBs was 0.8% and 2.2% in the wild-type and Myh6-Cre:LmnaF/F myocytes, respectively. The END-Seq signals were enriched for 8 and 6764 DSBs in the wild-type and Myh6-Cre:LmnaF/F myocytes, respectively (q < 0.05). The DSBs were preferentially localized to the gene regions, transcription initiation sites, cardiac transcription factor motifs, and the G quadruplex forming structures. Because LMNA regulates transcription through the lamin-associated domains (LADs), we defined the LADs in cardiac myocytes by a Cleavage Under Targets & Release Using Nuclease (CUT&RUN) assay (N = 5). On average there were 818 LADs per myocyte. Constitutive LADs (cLADs), defined as LADs that were shared by at least three genomes (N = 2572), comprised about a third of the mouse cardiac myocyte genomes. Transcript levels of the protein-coding genes located at the cLADs (N = 3975) were ∼16-fold lower than those at the non-LAD regions (N = ∼17 778). The prevalence of DSBs was higher in the non-LAD as compared to the cLAD regions. Likewise, DSBs were more common in the loss-of-LAD regions, defined as the genomic regions in the Myh6-Cre:LmnaF/F that were juxtaposed to the LAD regions in the wild-type myocytes.
conclusionTo our knowledge, this is the first identification of the DSBs, at the nucleotide resolution in the cardiovascular system. The prevalence of DSBs was higher in the genomic regions associated with transcription. Because transcription is pervasive, DSBs are expected to be common and pathogenic in various states and aging.
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