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Peccate, C.

Publications and source records attributed to Peccate, C..

2 recordsLinked to original sources

The Mutated p.H222P A-type Lamins Drive Loxl2-Mediated Extracellular Matrix Remodeling in Both Patient-Derived Cardiomyocytes and Mouse Models of Dilated Cardiomyopathy

LMNA cardiomyopathy, caused by mutations in the LMNA gene, is a severe form of dilated cardiomyopathy characterized by arrhythmias, contractile dysfunction, and increased myocardial fibrosis, which impairs left ventricular function and predisposes to heart failure. While the disease has been well characterized, a lack of insight into the pathogenesis impeded the development of therapies. We here used patient-derived LMNA p.H222P cardiomyocytes (hiPSC-CMs) and their isogenic controls and a LmnaH222P/H222P mouse model to dissect abnormal cardiac mechanisms leading to the development of the disease. We showed that LMNA p.H222P hiPSC-CMs exhibit elevated diastolic calcium levels and hypocontractility. They displayed nuclear shape abnormalities, a hallmark of LMNA cardiomyopathy, associated with altered chromosome spatial organization and gene expression profiles. Using transcriptomic analysis, we further revealed that genes related to cardiac extracellular matrix (ECM) remodeling, deposition, and components are dysregulated in both LMNA p.H222P hiPSC-CMs and mutated mice, suggesting a conserved pathogenic mechanism across species. Conversely, molecular inhibition of Loxl2, a key component of the ECM establishment, preserved the cardiac function in vivo. Taken together, our findings suggest that targeting Loxl2 could be a promising therapeutic strategy to maintain cardiac function in LMNA cardiomyopathy.

pathology↗

Setdb1 safeguards genome integrity in muscle stem cells to allow for regenerative myogenesis and inflammation

Modulations in chromatin structure orchestrate gene expression and direct stem cell fate. More specifically, the histone 3 lysine 9 Methyltransferase Setdb1 controls transcriptional repression to regulate pluripotency and self-renewal. While Setdb1 functions have been extensively studied in embryonic stem cells and in cancer cells, less is known on its role in adult stem cells in vivo. Here, we show that Setdb1 expression by adult muscle stem cells (MuSCs) is required for muscle tissue regeneration following acute injury. We find that SETDB1 represses the expression of the endogenous retroviruses (ERVs) family of transposable elements in MuSCs. ERV de-expression in Setdb1-null MuSCs prevents their amplification following exit from quiescence and promotes cell death. Multi-omics profiling further shows that the absence of SETDB1 in MuSCs leads to the activation of the DNA-sensing cGAS-STING pathway, entailing increased cytokine expression. In vivo, conditional disruption of Setdb1 in MuSCs provokes aberrant infiltration of inflammatory cells including the appearance of a pathological macrophage lineage. The ensuing histiocytosis is accompanied by necrosis of the newly formed muscle fibers which, in addition with the progressive loss of MuSCs, completely abolish skeletal muscle tissue repair. In contrast, disruption of Setdb1 gene in another muscle-resident cell type, the fibro-adipogenic progenitors (FAPs), does not impact regenerative inflammation. In conclusion, the control of genome stability by SETDB1 in an adult somatic stem cell is necessary for both its regenerative potential and an adequate inflammation regulating tissue repair.

cell biology↗