DNMT3A clonal hematopoiesis-driver mutations induce cardiac fibrosis by paracrine activation of fibroblasts.
Mariana ShumliakivskaGuillermo LuxánInga HemmerlingMarina SchellerXue LiCarsten Muller-TidowBianca SchuhmacherZhengwu SunAndreas DendorferAlisa DebesSimone-Franziska GlaserMarion Muhly-ReinholzKlara KirschbaumJedrzej HoffmannEike NagelValentina O PuntmannSebastian CremerFlorian LeuschnerWesley Tyler AbplanalpDavid JohnAndreas M ZeiherStefanie DimmelerPublished in: Nature communications (2024)
Hematopoietic mutations in epigenetic regulators like DNA methyltransferase 3 alpha (DNMT3A), play a pivotal role in driving clonal hematopoiesis of indeterminate potential (CHIP), and are associated with unfavorable outcomes in patients suffering from heart failure (HF). However, the precise interactions between CHIP-mutated cells and other cardiac cell types remain unknown. Here, we identify fibroblasts as potential partners in interactions with CHIP-mutated monocytes. We used combined transcriptomic data derived from peripheral blood mononuclear cells of HF patients, both with and without CHIP, and cardiac tissue. We demonstrate that inactivation of DNMT3A in macrophages intensifies interactions with cardiac fibroblasts and increases cardiac fibrosis. DNMT3A inactivation amplifies the release of heparin-binding epidermal growth factor-like growth factor, thereby facilitating activation of cardiac fibroblasts. These findings identify a potential pathway of DNMT3A CHIP-driver mutations to the initiation and progression of HF and may also provide a compelling basis for the development of innovative anti-fibrotic strategies.
Keyphrases
- growth factor
- dna methylation
- left ventricular
- end stage renal disease
- heart failure
- high throughput
- circulating tumor cells
- ejection fraction
- newly diagnosed
- chronic kidney disease
- single cell
- extracellular matrix
- prognostic factors
- type diabetes
- induced apoptosis
- single molecule
- peritoneal dialysis
- stem cells
- acute heart failure
- systemic sclerosis
- immune response
- dendritic cells
- metabolic syndrome
- cell death
- adipose tissue
- transcription factor
- dna binding
- circulating tumor
- signaling pathway
- rna seq
- artificial intelligence
- patient reported outcomes
- weight loss
- hematopoietic stem cell
- binding protein