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Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Selective deletion of long but not short Cypher isoforms leads to late-onset dilated cardiomyopathy
Hongqiang Cheng1, Ming Zheng, Angela K Peter
1Department of Medicine, University of California San Diego, 9500 Gilman Drive, La Jolla, CA 92093, USA.
Insights
The long Cypher isoform (CypherL) is crucial for maintaining cardiac Z-line structure and signaling, with its loss leading to dilated cardiomyopathy. The short Cypher isoform (CypherS) plays no significant role in striated muscle.
Area of Science:
- Muscle biology
- Cardiovascular research
- Molecular genetics
Background:
- Cypher protein exists in long (CypherL) and short (CypherS) isoforms, differing in C-terminal LIM domains.
- Both Cypher isoforms are developmentally regulated, and mutations are linked to human muscle diseases.
- The distinct roles of Cypher isoforms in striated muscle remain unclear.
Purpose of the Study:
- To investigate the specific roles of CypherL and CypherS isoforms in striated muscle.
- To determine the contribution of Cypher isoforms to muscle disease pathogenesis.
Main Methods:
- Generation of mouse lines with specific deletion of CypherS or CypherL isoforms.
- Phenotypic analysis of knockout mice, including survival, growth, cardiac function, and cardiac ultrastructure.
- Investigation of signaling pathways, including calcineurin-NFAT and protein kinase C.
Main Results:
- Mice lacking CypherS isoforms showed no muscle phenotype.
- Selective deletion of CypherL isoforms led to neonatal lethality, growth retardation, and late-onset dilated cardiomyopathy.
- CypherL deficiency resulted in cardiac fibrosis, calcification, Z-line defects, and altered signaling pathways, with increased susceptibility to pressure overload.
Conclusions:
- CypherL isoforms have unique, essential roles in maintaining Z-line integrity and signaling pathways in striated muscle.
- Loss of CypherL function contributes to the development of dilated cardiomyopathy.
- CypherS isoforms appear to have non-redundant roles compared to CypherL in striated muscle.
Abstract:
Cypher long (CypherL) and short (CypherS) isoforms are distinguished from each other by the presence and absence of three C-terminal LIM domains, respectively. Cypher isoforms are developmentally regulated, and mutations affecting both long and short isoforms are linked to muscle disease in humans. Given these data, we hypothesized that various Cypher isoforms play overlapping and unique roles in striated muscle. To determine the specific role of Cypher isoforms in striated muscle, we generated two mouse lines in which either CypherS or CypherL isoforms were specifically deleted. Mice specifically, deficient in CypherS isoforms had no detectable muscle phenotype. In contrast, selective loss of CypherL isoforms resulted in partial neonatal lethality. Surviving mutants exhibited growth retardation and late-onset dilated cardiomyopathy, which was associated with cardiac fibrosis and calcification, leading to premature adult mortality. At a young age, preceding development of cardiomyopathy, hearts from these mutants exhibited defects in both Z-line ultrastructure and specific aberrations in calcineurin-NFAT and protein kinase C pathways. Earlier onset of cardiac dilation relative to control wild-type mice was observed in young CypherL isoform knockout mice consequent to pressure overload, suggesting a greater susceptibility to the disease. In summary, we have identified unique roles for CypherL isoforms in maintaining Z-line ultrastructure and signaling that are distinct from the roles of CypherS isoforms, while highlighting the contribution of mutations in the long isoforms to the development of dilated cardiomyopathy.
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