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Published on: August 8, 2022
Novel Mutations in β-MYH7 Gene in Indian Patients With Dilated Cardiomyopathy
Deepa Selvi Rani1, Archana Vijaya Kumar1,2, Pratibha Nallari3
1Council of Scientific and Industrial Research-Centre for Cellular and Molecular Biology, Hyderabad, India.
Insights
New β-MYH7 gene mutations were found in Indian patients with dilated cardiomyopathy (DCM). These novel mutations offer insights into DCM
Area of Science:
- Genetics
- Cardiology
- Molecular Biology
Background:
- Heart failure is a key feature of severe hypertrophic cardiomyopathy and dilated cardiomyopathy (DCM).
- Mutations in the β-MYH7 gene are known causes of hypertrophic cardiomyopathy and have recently been linked to DCM in various populations.
Purpose of the Study:
- To identify and analyze the frequency and association of β-MYH7 gene mutations in Indian patients with DCM.
- To investigate the molecular mechanisms underlying DCM caused by β-MYH7 mutations.
Main Methods:
- Sequencing of the β-MYH7 gene in 137 Indian DCM patients and 167 healthy controls.
- Bioinformatic analysis using PolyPhen-2 and SIFT to predict pathogenicity of missense mutations.
- Homology modeling to visualize the structural impact of mutations.
Main Results:
- Seven novel mutations (8.0%) in the β-MYH7 gene were identified exclusively in Indian DCM patients.
- These included 4 missense, 1 frameshift, and 2 splice-site mutations, with missense mutations altering conserved amino acids and predicted as pathogenic.
- Homology models indicated significant structural deviations due to these missense mutations.
Conclusions:
- The study identified novel and rare β-MYH7 gene mutations in Indian DCM patients, contributing to the understanding of DCM's genetic basis.
- These findings elucidate the molecular disruption caused by missense mutations, aiding in DCM diagnosis and personalized therapeutic strategies.
Background:
Heart failure is a hallmark of severe hypertrophic cardiomyopathy and dilated cardiomyopathy (DCM). Several mutations in the β-MYH7 gene lead to hypertrophic cardiomyopathy. Recently, causative mutations in the β-MYH7 gene have also been detected in DCM from different populations.
Methods:
Here, we sequenced the β-MYH7 gene in 137 Indian DCM patients and 167 ethnically matched healthy controls to detect the frequency of mutations and their association.
Results:
Our study revealed 27 variations, of which 7 mutations (8.0%) were detected exclusively in Indian DCM patients for the first time. These included 4 missense mutations-Arg723His, Phe510Leu, His358Leu, and Ser384Tyr (2.9%); a frameshift mutation-Asn676_T-del (1.5%); and 2 splice-site mutations (IVS17+2T) T>G and (IVS19-1G) G>A (3.6%). Remarkably, all 4 missense mutations altered evolutionarily conserved amino acids. All 4 missense mutations were predicted to be pathogenic by 2 bioinformatics tools-polymorphism phenotyping v2 (PolyPhen-2) and sorting intolerant from tolerant (SIFT). In addition, the 4 homology models of β-MYH7-p.Leu358, p.Tyr384, p.Leu510, and p.His723-displayed root-mean-square deviations of ∼2.55 Å, ∼1.24 Å, ∼3.36 Å, and ∼3.86 Å, respectively.
Conclusions:
In the present study, we detected numerous novel, unique, and rare mutations in the β-MYH7 gene exclusively in Indian DCM patients (8.0%). Here, we demonstrated how each mutant (missense) uniquely disrupts a critical network of non-bonding interactions at the mutation site (molecular level) and may contribute to development of dilated cardiomyopathy (DCM). Therefore, our findings may provide insight into the understanding of the molecular bases of disease and into diagnosis along with promoting novel therapeutic strategies (through personalized medicine).
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