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The pivotal role of ECG in cardiomyopathies
Elisa Silvetti1, Oreste Lanza1, Fabiana Romeo1
1Division of Cardiology, Policlinico Casilino, Rome, Italy.
Insights
The electrocardiogram (ECG) is crucial for diagnosing cardiomyopathies, identifying specific types like arrhythmogenic cardiomyopathy of the right ventricle (ARVC) and cardiac amyloidosis, and assessing patient prognosis.
Area of Science:
- Cardiology
- Medical Diagnostics
- Electrophysiology
Background:
- Cardiomyopathies are diverse heart conditions affecting structure and function.
- Cardiovascular imaging advances aid in detailed phenotypic and etiological characterization.
- Electrocardiogram (ECG) is a primary tool for evaluating cardiac patients.
Purpose of the Study:
- To highlight the critical role of ECG in diagnosing various cardiomyopathies.
- To describe key ECG findings associated with different cardiomyopathy types.
- To emphasize ECG's utility in raising diagnostic suspicion and guiding further investigations.
Main Methods:
- Review of electrocardiographic findings in cardiomyopathies.
- Correlation of ECG patterns with specific disease entities (e.g., ARVC, amyloidosis).
- Discussion of ECG's role alongside advanced imaging techniques like MRI.
Main Results:
- Specific ECG signs can diagnose certain cardiomyopathies (e.g., inverted T waves in ARVC, low voltages in amyloidosis).
- Non-specific ECG changes (e.g., QRS fragmentation, voltage alterations) suggest cardiomyopathy and prompt further workup.
- ECG findings correlate with imaging results and have prognostic value.
- Conduction disturbances and arrhythmias on ECG indicate advanced disease and impact prognosis.
Conclusions:
- Expert ECG interpretation is vital for suspecting cardiomyopathy, identifying specific types, and stratifying risk.
- ECG serves as an essential, non-invasive tool in the comprehensive diagnostic pathway for cardiomyopathies.
- Understanding ECG patterns aids in early detection and management of structural heart diseases.
Abstract:
Cardiomyopathies are a heterogeneous group of pathologies characterized by structural and functional alterations of the heart. Recent technological advances in cardiovascular imaging offer an opportunity for deep phenotypic and etiological definition. Electrocardiogram (ECG) is the first-line diagnostic tool in the evaluation of both asymptomatic and symptomatic individuals. Some electrocardiographic signs are pathognomonic or fall within validated diagnostic criteria of individual cardiomyopathy such as the inverted T waves in right precordial leads (V1-V3) or beyond in individuals with complete pubertal development in the absence of complete right bundle branch block for the diagnosis of arrhythmogenic cardiomyopathy of the right ventricle (ARVC) or the presence of low voltages typically seen in more than 60% of patients with amyloidosis. Most other electrocardiographic findings such as the presence of depolarization changes including QRS fragmentation, the presence of epsilon wave, the presence of reduced or increased voltages as well as alterations in the repolarization phase including the negative T waves in the lateral leads, or the profound inversion of the T waves or downsloping of the ST tract are more non-specific signs which can however raise the clinical suspicion of cardiomyopathy in order to initiate a diagnostic procedure especially using imaging techniques for diagnostic confirmation. Such electrocardiographic alterations not only have a counterpart in imaging investigations such as evidence of late gadolinium enhancement on magnetic resonance imaging, but may also have an important prognostic value once a definite diagnosis has been made. In addition, the presence of electrical stimulus conduction disturbances or advanced atrioventricular blocks that can be seen especially in conditions such as cardiac amyloidosis or sarcoidosis, or the presence of left bundle branch block or posterior fascicular block in dilated or arrhythmogenic left ventricular cardiomyopathies are recognized as a possible expression of advanced pathology. Similarly, the presence of ventricular arrhythmias with typical patterns such as non-sustained or sustained ventricular tachycardia of LBBB morphology in ARVC or non-sustained or sustained ventricular tachycardia with an RBBB morphology (excluding the "fascicular pattern") in arrhythmogenic left ventricle cardiomyopathy could have a significant impact on the course of each disease. It is therefore clear that a learned and careful interpretation of ECG features can raise suspicion of the presence of a cardiomyopathy, identify diagnostic "red flags" useful for orienting the diagnosis toward specific forms, and provide useful tools for risk stratification. The purpose of this review is to emphasize the important role of the ECG in the diagnostic workup, describing the main ECG findings of different cardiomyopathies.
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