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Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Mutations in NEXN, a Z-disc gene, are associated with hypertrophic cardiomyopathy
Hu Wang1, Zhaohui Li, Jizheng Wang
1Department of Pediatrics, Texas Children's Hospital, Baylor College of Medicine, Houston, 77030, USA.
Insights
Mutations in the NEXN gene, encoding a cardiac Z-disc protein, were identified in hypertrophic cardiomyopathy (HCM) patients. These findings expand the understanding of genetic causes for this inherited cardiac disorder.
Area of Science:
- Cardiovascular Genetics
- Molecular Cardiology
- Inherited Cardiac Diseases
Background:
- Hypertrophic cardiomyopathy (HCM) is the most common inherited cardiac disorder, characterized by ventricular wall thickening.
- Genetic mutations explain only 50% of HCM cases, indicating other genes are involved.
- Nexilin (NEXN) is a cardiac Z-disc protein vital for sarcomere stability.
Purpose of the Study:
- To investigate the role of NEXN mutations in HCM pathogenesis.
- To screen for mutations in NEXN in HCM patients lacking mutations in known myofilament genes.
Main Methods:
- Genetic screening of NEXN in 121 unrelated HCM patients.
- Segregation analysis within families and control population screening.
- In silico, cellular transfection, and coimmunoprecipitation studies to assess mutation effects.
Main Results:
- Two missense mutations (p.Q131E and p.R279C) in NEXN were identified in two HCM probands.
- Both mutations segregated with the HCM phenotype and were absent in controls.
- In vitro studies demonstrated that mutations impair nexilin's F-actin binding and interaction with α-actin.
Conclusions:
- Mutations in NEXN are associated with hypertrophic cardiomyopathy.
- These findings highlight NEXN as a novel Z-disc gene involved in HCM pathogenesis.
- Further research into Z-disc proteins may uncover more genetic contributors to HCM.
Abstract:
Hypertrophic cardiomyopathy (HCM), the most common inherited cardiac disorder, is characterized by increased ventricular wall thickness that cannot be explained by underlying conditions, cadiomyocyte hypertrophy and disarray, and increased myocardial fibrosis. In as many as 50% of HCM cases, the genetic cause remains unknown, suggesting that more genes may be involved. Nexilin, encoded by NEXN, is a cardiac Z-disc protein recently identified as a crucial protein that functions to protect cardiac Z-discs from forces generated within the sarcomere. We screened NEXN in 121 unrelated HCM patients who did not carry any mutation in eight genes commonly mutated in myofilament disease. Two missense mutations, c.391C>G (p.Q131E) and c.835C>T (p.R279C), were identified in exons 5 and 8 of NEXN, respectively, in two probands. Each of the two mutations segregated with the HCM phenotype in the family and was absent in 384 control chromosomes. In silico analysis revealed that both of the mutations affect highly conserved amino acid residues, which are predicted to be functionally deleterious. Cellular transfection studies showed that the two mutations resulted in local accumulations of nexilin and that the expressed fragment of actin-binding domain containing p.Q131E completely lost the ability to bind F-actin in C2C12 cells. Coimmunoprecipitation assay indicated that the p.Q131E mutation decreased the binding of full-length NEXN to α-actin and abolished the interaction between the fragment of actin-binding domain and α-actin. Therefore, the mutations in NEXN that we describe here may further expand the knowledge of Z-disc genes in the pathogenesis of HCM.
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