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Molecular Imaging Biomarkers in Cardiooncology: A View on Established Technologies and Future Perspectives
David Kersting1,2, Ilektra-Antonia Mavroeidi2,3, Stephan Settelmeier4
1Department of Nuclear Medicine, West German Cancer Center, University Hospital Essen, University of Duisburg-Essen, Essen, Germany; david.kersting@uni-due.de.
Abstract:
Novel therapeutic options have significantly improved survival and long-term outcomes in many cancer entities. Unfortunately, this improvement in outcome is often accompanied by new and increasingly relevant therapy-related cardiovascular toxicity. In this context, cardiooncology has emerged as a new field of interdisciplinary individual patient care. Important tasks are pretherapeutic risk stratification and early detection and treatment of cardiotoxicity, which comprises cardiac damage in relation to cardiovascular comorbidities, the tumor disease, and cancer treatment. Clinical manifestations can cover a broad spectrum, ranging from subtle and usually asymptomatic abnormalities to serious acute or chronic complications. Typical manifestations include acute and chronic heart failure, myo- and pericarditis, arrythmias, ischemia, and endothelial damage. They can be related to almost all current cancer treatments, including cytotoxic chemotherapy, targeted therapy, immunotherapy, hormonal therapy, and radiotherapy. Molecular imaging biomarkers can aid in pretherapeutic cardiooncologic assessment for primary prevention and personalized surveillance, detection, and differential diagnosis of cardiotoxic complications. Potential advantages over conventional diagnostics are the higher detection sensitivity for subtle changes in cardiac homeostasis, higher reproducibility, and better observer independence. Hybrid imaging with highly sensitive PET/MRI may be particularly suited for early diagnosis. Important technologies that are encouraged in current multidisciplinary guidelines are equilibrium radionuclide angiography for evaluation of ventricular function and chamber morphology, as well as myocardial perfusion imaging for additional detection of ischemia. Novel modalities that may detect even earlier signs of cardiotoxicity comprise 123I-metaiodobenzylguanidine SPECT to visualize sympathetic innervation, 18F-FDG and somatostatin receptor (68Ga-DOTATOC/DOTATATE) PET to indicate a metabolic shift and inflammation, and 68Ga-fibroblast activation protein inhibitor PET to monitor cardiac remodeling. In addition, PET imaging of mitochondrial function has recently been introduced in preclinical models and will potentially broaden the field of application through higher sensitivity and specificity and by enabling higher individualization of diagnostic concepts.
Insights
Cardiooncology addresses cancer treatment's cardiovascular side effects. Molecular imaging offers sensitive, early detection and personalized monitoring of cardiotoxicity, improving patient outcomes.
Area of Science:
- Cardiooncology
- Cardiovascular Medicine
- Oncology
- Medical Imaging
Background:
- Cancer therapies improve survival but can cause significant cardiovascular toxicity.
- Cardiooncology is an emerging interdisciplinary field focused on managing cancer treatment-related cardiac damage.
- Cardiotoxicity manifests diversely, from asymptomatic changes to severe cardiac events, impacting patients with comorbidities, cancer, and undergoing treatment.
Purpose of the Study:
- To review the role of molecular imaging biomarkers in cardiooncology.
- To highlight their utility in pretherapeutic risk stratification, early detection, and personalized surveillance of cardiotoxicity.
- To discuss novel imaging techniques for improved sensitivity and specificity in diagnosing cardiac complications.
Main Methods:
- Review of current literature on molecular imaging in cardiooncology.
- Discussion of established techniques like equilibrium radionuclide angiography and myocardial perfusion imaging.
- Exploration of novel PET and SPECT imaging modalities (e.g., 123I-metaiodobenzylguanidine, 18F-FDG, 68Ga-based tracers, PET of mitochondrial function).
Main Results:
- Molecular imaging offers higher sensitivity, reproducibility, and observer independence compared to conventional diagnostics for detecting subtle cardiac changes.
- Hybrid imaging (PET/MRI) shows promise for early diagnosis.
- Novel PET/SPECT tracers can visualize sympathetic innervation, metabolic shifts, inflammation, cardiac remodeling, and mitochondrial function, enabling earlier detection.
Conclusions:
- Molecular imaging biomarkers are crucial for pretherapeutic assessment, personalized surveillance, and early diagnosis of cardiotoxicity in cardiooncology.
- Advanced imaging techniques provide sensitive and specific detection of cardiac damage, aiding in individualized patient management.
- Future applications of PET imaging, particularly of mitochondrial function, hold potential for further enhancing diagnostic capabilities and personalizing care.
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