MYRF is Essential for Epicardial Development

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This study found that the transcription factor MYRF is highly expressed in epicardial cells and is essential for their proper development, with loss of MYRF in these cells leading to cardiac abnormalities.

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This study investigated how MYRF deficiency causes cardiac abnormalities associated with cardiac urogenital syndrome (CUGS) by examining MYRF expression in the heart and using mouse genetic models. The authors found MYRF is most highly expressed in epicardial cells (EPCs), and Myrf global knockout mice showed impeded epicardial development with reduced epicardial coverage of the myocardial surface. EPC-specific deletion of MYRF led to severely degenerated epicardium, markedly reduced epicardial-derived cells, and a thin myocardial wall, whereas cardiomyocyte-specific MYRF ablation produced no overt cardiac phenotypes. The paper’s limitation acknowledged by the authors is that prior work lacked cell-type-specific loss-of-function models, which they addressed here. Relevance to endometriosis: the paper is not explicitly about endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

SUMMARY Myelin Regulatory Factor (MYRF) is a transcription factor previously known for myelination of neurons in the central nervous system. Accumulating evidence has recently implicated MYRF mutations in the pathogenesis of cardiac urogenital syndrome (CUGS), in which patients exhibit a range of cardiac abnormalities, including atrial septal defect (ASD), ventricular septal defect (VSD), and hypoplastic left heart syndrome (HLHS). However, the mechanisms by which MYRF deficiency leads to cardiac anomalies remain poorly defined. Moreover, in part due to the lack of cell-type specific loss-of-function models, it is unclear which cardiac cell types contribute to the defects observed in MYRF-related CUGS. To address these questions, we examined the expression pattern of MYRF in the heart and found that it is most highly expressed in epicardial cells (EPCs) among all cardiac cell types. Importantly, Myrf global knockout (KO) mice displayed impeded epicardial development, with markedly reduced epicardial coverage of the myocardial surface. Furthermore, specifically deleting MYRF in EPCs results in severely degenerated epicardium, dramatically reduced epicardial derived cells (EPDCs), and thin myocardial wall. Conversely, ablating MYRF in cardiomyocytes (CMs) did not lead to any overt cardiac phenotypes, indicating that MYRF is dispensable for the developing CMs. Taken together, our findings suggest that compromised function of MYRF in EPCs may contribute to the pathogenesis of MYRF-related CUGS. To our knowledge, this is the first study to link impaired epicardial development to this disease.
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SUMMARY Myelin Regulatory Factor (MYRF) is a transcription factor previously known for myelination of neurons in the central nervous system. Accumulating evidence has recently implicated MYRF mutations in the pathogenesis of cardiac urogenital syndrome (CUGS), in which patients exhibit a range of cardiac abnormalities, including atrial septal defect (ASD), ventricular septal defect (VSD), and hypoplastic left heart syndrome (HLHS). However, the mechanisms by which MYRF deficiency leads to cardiac anomalies remain poorly defined. Moreover, in part due to the lack of cell-type specific loss-of-function models, it is unclear which cardiac cell types contribute to the defects observed in MYRF-related CUGS. To address these questions, we examined the expression pattern of MYRF in the heart and found that it is most highly expressed in epicardial cells (EPCs) among all cardiac cell types. Importantly, Myrf global knockout (KO) mice displayed impeded epicardial development, with markedly reduced epicardial coverage of the myocardial surface. Furthermore, specifically deleting MYRF in EPCs results in severely degenerated epicardium, dramatically reduced epicardial derived cells (EPDCs), and thin myocardial wall. Conversely, ablating MYRF in cardiomyocytes (CMs) did not lead to any overt cardiac phenotypes, indicating that MYRF is dispensable for the developing CMs. Taken together, our findings suggest that compromised function of MYRF in EPCs may contribute to the pathogenesis of MYRF-related CUGS. To our knowledge, this is the first study to link impaired epicardial development to this disease. Competing Interest Statement The authors have declared no competing interest.

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last seen: 2026-05-20T01:45:00.602351+00:00