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.

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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