Pathophysiology of cardiotoxicity from target therapy and angiogenesis inhibitors

Nicola Maurea1, Carmela Coppola, Giovanna Piscopo

  • 1aDivision of Cardiology, Istituto Nazionale per lo Studio e la Cura dei Tumor 'Fondazione Giovanni Pascale' - IRCCS bCEINGE Biotecnologie Avanzate S.C.A.R.L cDepartment of Breast Surgery and Cancer Prevention, Istituto Nazionale per lo Studio e la Cura dei Tumori 'Fondazione Giovanni Pascale' - IRCCS dDepartment of Molecular Medicine and Medical Biotechnology, University 'Federico II' eDepartment of Senology, Division of Breast Oncology Istituto Nazionale per lo Studio e la Cura dei Tumori 'Fondazione Giovanni Pascale' - IRCCS, Naples fClinic of Cardiovascular Diseases, IRCCS San Martino IST, Genoa gDepartment of Medical Sciences 'Mario Aresu', University of Cagliari, Cagliari, Italy.

Insights

Anticancer drugs can cause serious cardiovascular side effects, including heart failure and arrhythmias. Cardioncology aims to recognize, prevent, and minimize these drug-induced cardiac toxicities in cancer survivors.

Area of Science:

  • Cardiology
  • Oncology
  • Pharmacology

Background:

  • Cancer therapy advancements lead to more long-term survivors, increasing focus on treatment side effects.
  • Cardiotoxicity from anticancer drugs is a significant clinical problem, necessitating serious consideration of cardiac risks.
  • Adverse cardiac events associated with systemic cancer therapies include arrhythmias, myocardial infarction, hypertension, and heart failure.

Purpose of the Study:

  • To review the mechanisms and pathophysiology of cardiotoxicity induced by specific anticancer agents.
  • To highlight the role of cardioncology in managing and mitigating cardiovascular side effects of cancer therapies.
  • To discuss strategies for preventing and reducing long-term cardiac damage from cancer treatments.

Main Methods:

  • Review of literature on cardiovascular side effects of anticancer drugs.
  • Analysis of mechanisms of cardiotoxicity for ErbB2 inhibitors and antiangiogenic drugs.
  • Discussion of the role of cardioncology in clinical practice.

Main Results:

  • ErbB2 inhibitors disrupt cardiomyocyte survival pathways.
  • Vascular endothelial growth factor (VEGF) inhibitors impair vascular growth and myocardial function.
  • Several classes of anticancer drugs, including ErbB2 and VEGF inhibitors, pose significant cardiovascular risks.

Conclusions:

  • Cardiotoxicity is a critical concern in cancer therapy, impacting long-term survivors.
  • Understanding the mechanisms of drug-induced cardiac damage is essential for management.
  • Cardioncology offers a framework for addressing and minimizing cardiovascular toxicity in cancer patients.

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