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From the phenotype to precision medicine: an update on the cardiomyopathies diagnostic workflow
Camillo Autore1, Riccardo Bariani2, Barbara Bauce2
1Department of Clinical and Molecular Medicine, Sapienza University of Rome, Rome.
Insights
Genetic cardiomyopathies stem from altered cardiac proteins, leading to diverse heart muscle diseases. Advances in genetics and targeted therapies enable precision medicine for better diagnosis and treatment of these conditions.
Area of Science:
- Cardiology
- Genetics
- Precision Medicine
Background:
- Cardiomyopathies are heart muscle diseases primarily caused by genetic alterations affecting cardiomyocyte structural and functional proteins.
- These genetic defects lead to various clinical manifestations, including hypertrophic, dilated, arrhythmogenic, and restrictive cardiomyopathies.
- Non-hereditary causes like infections and toxicity must be excluded for accurate diagnosis.
Purpose of the Study:
- To highlight the increasing relevance and feasibility of achieving precise phenotypic and etiological diagnoses in cardiomyopathies.
- To emphasize the impact of advancements in genetic diagnostics and tailored treatments.
- To advocate for a precision medicine approach in managing cardiomyopathies.
Main Methods:
- Review of current diagnostic algorithms and therapeutic strategies for cardiomyopathies.
- Integration of advanced imaging, genetic testing, and pathopathological competencies.
- Focus on multidisciplinary collaboration among specialists.
Main Results:
- Genetic diagnostics have improved the identification of specific cardiomyopathies like transthyretin cardiac amyloidosis, Fabry disease, and laminopathies.
- Development of targeted therapies, including myosin inhibitors and genetic therapies, is advancing precision medicine.
- Tailored risk stratification for arrhythmias and device implantation is becoming more refined.
Conclusions:
- A contemporary approach to cardiomyopathies necessitates diagnostic algorithms focused on precise phenotypic and etiological diagnosis.
- Multidisciplinary collaboration and advanced diagnostic tools are crucial for effective management.
- Precision medicine offers new hope for tailored treatments and improved outcomes in cardiomyopathies.
Abstract:
Cardiomyopathies are disease of the cardiac muscle largely due to genetic alterations of proteins with 'structural' or 'functional' roles within the cardiomyocyte, going from the regulation of contraction-relaxation, metabolic and energetic processes to ionic fluxes. Modifications occurring to these proteins are responsible, in the vast majority of cases, for the phenotypic manifestations of the disease, including hypertrophic, dilated, arrhythmogenic and restrictive cardiomyopathies. Secondary nonhereditary causes to be excluded include infections, toxicity from drugs or alcohol or medications, hormonal imbalance and so on. Obtaining a phenotypic definition and an etiological diagnosis is becoming increasingly relevant and feasible, thanks to the availability of new tailored treatments and the diagnostic advancements made particularly in the field of genetics. This is, for example, the case for transthyretin cardiac amyloidosis, Fabry disease or dilated cardiomyopathies due to laminopathies. For these diseases, specific medications have been developed, and a more tailored arrhythmic risk stratification guides the implantation of a defibrillator. In addition, new medications directly targeting the altered protein responsible for the phenotype are becoming available (including the myosin inhibitors mavacantem and aficamten, monoclonal antibodies against Ras-MAPK, genetic therapies for sarcoglycanopathies), thus making a precision medicine approach less unrealistic even in the field of cardiomyopathies. For these reasons, a contemporary approach to cardiomyopathies must consider diagnostic algorithms founded on the clinical suspicion of the disease and developed towards a more precise phenotypic definition and etiological diagnosis, based on a multidisciplinary methodology putting together specialists from different disciplines, facilities for advanced imaging testing and genetic and anatomopathological competencies.
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