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Myocardial fibrosis in arrhythmogenic cardiomyopathy: a genotype-phenotype correlation study
Diego Segura-Rodríguez1,2, Francisco José Bermúdez-Jiménez1,2, Víctor Carriel2,3
1Cardiology Department, Hospital Universitario Virgen de las Nieves, Avda. De las Fuerzas Armadas 2, 18014 Granada, Spain.
Insights
Genotype-phenotype correlations in arrhythmogenic right ventricular cardiomyopathy/dysplasia (ARVC/D) reveal distinct cardiac magnetic resonance imaging (CMR) findings. Desmin mutation carriers exhibit a specific left ventricular late gadolinium enhancement pattern.
Area of Science:
- Cardiology
- Genetics
- Medical Imaging
Background:
- Arrhythmogenic right ventricular cardiomyopathy/dysplasia (ARVC/D) is a genetic heart condition with varied causes.
- Cardiac magnetic resonance (CMR) with late gadolinium enhancement (LGE) detects myocardial scarring.
Purpose of the Study:
- Investigate genotype-phenotype correlations in ARVC/D.
- Focus on CMR-LGE patterns and myocardial fibrosis in mutation carriers.
Main Methods:
- Analyzed 44 genotyped ARVC/D patients using CMR.
- Correlated genetic status (desmosomal, non-desmosomal) with LGE patterns.
- Performed histopathological analysis on myocardial samples.
Main Results:
- Identified pathogenic mutations in 71.4% of patients.
- Non-desmosomal male patients showed reduced left ventricular (LV) systolic function.
- A specific LV subepicardial circumferential LGE pattern was linked to desmin mutations.
Conclusions:
- Desmosomal and non-desmosomal ARVC/D mutations present different features but similar LV LGE.
- A distinct LV LGE pattern can identify desmin mutation carriers.
- Further research is needed to confirm LGE specificity in ARVC/D.
Aims:
Arrhythmogenic right ventricular cardiomyopathy/dysplasia (ARVC/D) is a life-threatening entity with a highly heterogeneous genetic background. Cardiac magnetic resonance (CMR) imaging can identify fibrofatty scar by late gadolinium enhancement (LGE). Our aim is to investigate genotype-phenotype correlation in ARVC/D mutation carriers, focusing on CMR-LGE and myocardial fibrosis patterns.
Methods And Results:
A cohort of 44 genotyped patients, 33 with definite and 11 with borderline ARVC/D diagnosis, was characterized using CMR and divided into groups according to their genetic condition (desmosomal, non-desmosomal mutation, or negative). We collected information on cardiac volumes and function, as well as LGE pattern and extension. In addition, available ventricular myocardium samples from patients with pathogenic gene mutations were histopathologically analysed. Half of the patients were women, with a mean age of 41.6 ± 17.5 years. Next-generation sequencing identified a potential pathogenic mutation in 71.4% of the probands. The phenotype varied according to genetic status, with non-desmosomal male patients showing lower left ventricular (LV) systolic function. LV fibrosis was similar between groups, but distribution in non-desmosomal patients was frequently located at the posterolateral LV wall; a characteristic LV subepicardial circumferential LGE pattern was significantly associated with ARVC/D caused by desmin mutation. Histological analysis showed increased fibrillar connective tissue and intercellular space in all the samples.
Conclusion:
Desmosomal and non-desmosomal mutation carriers showed different morphofunctional features but similar LV LGE presence. DES mutation carriers can be identified by a specific and extensive LV subepicardial circumferential LGE pattern. Further studies should investigate the specificity of LGE in ARVC/D.
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