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DMD-Associated Dilated Cardiomyopathy: Genotypes, Phenotypes, and Phenocopies
Renee Johnson1,2, Robyn Otway1, Ephrem Chin3,4
1Victor Chang Cardiac Research Institute, Darlinghurst (R.J., R.O., C. Horvat, M.O., M.S., G.G., E.R., C.S.H., A.M.K., P.S.M., E.G., D.F.).
Insights
Genetic testing for dilated cardiomyopathy (DCM) requires specific assays for dystrophin (DMD) gene variants, as multi-gene panels have low yield. Early detection of DMD-associated DCM is crucial for patient management.
Area of Science:
- Cardiovascular Genetics
- Molecular Cardiology
- Genetic Diagnostics
Background:
- Dilated cardiomyopathy (DCM) linked to dystrophin (DMD) gene variants causes severe heart failure and arrhythmias.
- Early identification of at-risk individuals is essential for improved patient outcomes.
Purpose of the Study:
- To evaluate the diagnostic yield of genetic testing for X-linked primary DCM.
- To identify specific genetic variants and assays for diagnosing DMD-associated cardiomyopathy.
Main Methods:
- Genetic testing of 40 male probands with primary DCM using multi-gene panels, PCR, and array CGH.
- Assessed variant location relative to dystrophin isoforms and exon usage.
- Evaluated myocardial and blood telomere length as markers of cardiac dysfunction.
Main Results:
- Pathogenic DMD variants were found in 12.5% of probands, with 3/4 identified only by targeted structural variant assays.
- Autosomal gene variants (TTN, BAG3, LMNA, RBM20) were found in 37.5% of DMD-negative probands.
- Reduced myocardial telomere length was observed in DCM patients, but not in blood samples.
Conclusions:
- Multi-gene panels have limited utility for detecting DMD-associated cardiomyopathy; specific structural variant assays are necessary.
- Differentiating X-linked DCM from autosomal causes is critical for family counseling and management.
Background:
Variants in the DMD gene, that encodes the cytoskeletal protein, dystrophin, cause a severe form of dilated cardiomyopathy (DCM) associated with high rates of heart failure, heart transplantation, and ventricular arrhythmias. Improved early detection of individuals at risk is needed.
Methods:
Genetic testing of 40 male probands with a potential X-linked genetic cause of primary DCM was undertaken using multi-gene panel sequencing, multiplex polymerase chain reaction, and array comparative genomic hybridization. Variant location was assessed with respect to dystrophin isoform patterns and exon usage. Telomere length was evaluated as a marker of myocardial dysfunction in left ventricular tissue and blood.
Results:
Four pathogenic/likely pathogenic DMD variants were found in 5 probands (5/40: 12.5%). Only one rare variant was identified by gene panel testing with 3 additional multi-exon deletion/duplications found following targeted assays for structural variants. All of the pathogenic/likely pathogenic DMD variants involved dystrophin exons that had percent spliced-in scores >90, indicating high levels of constitutive expression in the human adult heart. Fifteen DMD variant-negative probands (15/40: 37.5%) had variants in autosomal genes including TTN, BAG3, LMNA, and RBM20. Myocardial telomere length was reduced in patients with DCM irrespective of genotype. No differences in blood telomere length were observed between genotype-positive family members with/without DCM and controls.
Conclusions:
Primary genetic testing using multi-gene panels has a low yield and specific assays for structural variants are required if DMD-associated cardiomyopathy is suspected. Distinguishing X-linked causes of DCM from autosomal genes that show sex differences in clinical presentation is crucial for informed family management.
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