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Detection of cardiovascular disease in elite athletes using cardiac magnetic resonance imaging
Insights
Cardiac MRI in elite athletes found abnormal findings in over 5% of participants, but their prognostic significance is unclear. Routine cardiac MRI is not recommended for athlete care.
Area of Science:
- Cardiology
- Sports Medicine
- Medical Imaging
Background:
- Sudden cardiac death (SCD) in competitive athletes stems from various cardiovascular conditions like cardiomyopathies and coronary artery disease.
- Identifying risk factors for SCD in athletes is crucial for preventative strategies.
Purpose of the Study:
- To assess the utility of cardiac magnetic resonance (CMR) imaging in identifying cardiovascular risk factors for SCD in elite athletes.
- To evaluate cardiac structure and function in competitive athletes using CMR.
Main Methods:
- 95 elite athletes (73 male, 22 female) underwent CMR imaging.
- Standard CMR sequences assessed myocardial hypertrophy, wall motion, ventricular volumes, and mass.
- Delayed gadolinium enhancement and MR angiography evaluated myocardial scarring and coronary arteries.
Main Results:
- Quantitative analysis revealed eccentric left ventricular hypertrophy and enlarged right ventricular volumes in athletes.
- Abnormal findings, including a coronary anomaly and late gadolinium enhancement, were detected in 6.3% of athletes.
- No athletes exhibited wall motion abnormalities or signs of myocardial ischemia.
Conclusions:
- CMR imaging identified abnormal findings in over 5% of endurance athletes.
- The prognostic implications of these findings in athletes remain uncertain.
- Current evidence does not support the routine use of cardiac MRI in athlete screening.
Purpose:
Sudden cardiac death [SCD] in competitive athletes is caused by a diverse set of cardiovascular diseases such as hypertrophic and dilated cardiomyopathy [HCM/DCM], myocarditis, coronary anomalies or even coronary artery disease. In order to identify potential risk factors responsible for SCD, elite athletes underwent cardiac magnetic resonance [CMR] imaging.
Materials And Methods:
73 male [M] and 22 female [F] athletes (mean age 35.2 ± 11.4 years) underwent CMR imaging. ECG-gated breath-hold cine SSFP sequences were used for the evaluation of wall motion abnormalities and myocardial hypertrophy as well as for quantitative analysis (left and right ventricular [LV, RV] end-diastolic and end-systolic volume [EDV, ESV], stroke volume [SV], ejection fraction [EF] and myocardial mass [MM]). Furthermore, left and right atrial sizes were assessed by planimetry and delayed enhancement imaging was performed 10 minutes after the application of contrast agent. Coronary arteries were depicted using free-breathing Flash-3 D MR angiography.
Results:
The quantitative analyses showed eccentric hypertrophy of the left ventricle (remodeling index [MM/LV-EDV]: M 0.75, F 0.665), enlargement of the RV volumes (RV-EDV: M 122.6 ± 19.0 ml/m², F 99.9 ± 7.2 ml/m²) and an increased SV (LV-SV: M 64.7 ± 10.0 ml/m², F 56.5 ± 5.7 ml/m²; RV-SV; M 66.7 ± 10.4 ml/m², F 54.2 ± 7.1 ml/m²). Abnormal findings were detected in 6 athletes (6.3 %) including one benign variant of coronary anomaly and abnormal late gadolinium enhancement in 2 cases. None of the athletes showed wall motion abnormalities or signs of myocardial ischemia.
Conclusion:
CMR imaging of endurance athletes revealed abnormal findings in more than 5 % of the athletes. However, the prognostic significance remains unclear. Thus, cardiac MRI cannot be recommended as a routine examination in the care of athletes.
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An X-ray, or radiograph, is a non-invasive method that uses ionizing radiation to take images of internal structures. It is mainly used in cardiac imaging to examine the heart, lungs, and major blood vessels, aiming to identify abnormalities in the heart's size, shape, and position, such as heart failure, congenital defects, and vascular...

