Cardiovascular Imaging for the Early Detection of Cardiotoxicity from Emerging Cancer Therapies: Mechanistic Insights Across the Pediatric and Adult Spectrum.
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Cancer therapies have significantly improved survival but are frequently limited by cancer therapy-related cardiovascular toxicity (CTR-CVT). Cardiovascular imaging plays a central role in baseline risk stratification, surveillance during therapy and long-term follow-up. Transthoracic echocardiography (TTE) remains the first-line imaging modality; however, conventional parameters such as left ventricular ejection fraction (LVEF) often fail to detect early myocardial injury. Myocardial deformation imaging, particularly global longitudinal strain (GLS), has emerged as a sensitive marker of subclinical dysfunction across multiple cardiotoxic phenotypes. Cardiac magnetic resonance (CMR) further enhances diagnostic accuracy through tissue characterization techniques, enabling the detection of myocardial edema, inflammation, and fibrosis before overt functional decline. Different anticancer therapies induce distinct pathophysiological mechanisms of injury, each associated with characteristic imaging patterns. Emerging imaging biomarkers and multimodality approaches may improve early detection, the spatial characterization of myocardial injury and individualized surveillance strategies. Pediatric patients represent a uniquely vulnerable population due to their myocardial immaturity, altered pharmacokinetics and prolonged post-treatment life expectancy, resulting in a higher cumulative lifetime cardiovascular risk. In conclusion, a mechanism-based multimodality imaging approach integrating echocardiography, CMR and emerging data-driven technologies is essential to optimize early detection, risk stratification and long-term cardiovascular outcomes in both adult and pediatric cardio-oncology populations.