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Updated: May 15, 2026

A Doxorubicin-induced Cardiomyopathy Model in Adult Zebrafish
Published on: June 7, 2018
Cancer genetics and the cardiotoxicity of the therapeutics
Hind Lal1, Kyle L Kolaja, Thomas Force
1Center for Translational Medicine and Cardiology Division, Temple University School of Medicine, Philadelphia, Pennsylvania 19140, USA.
Abstract:
Cancer genomics has focused on the discovery of mutations and chromosomal structural rearrangements that either increase susceptibility to cancer or support the cancer phenotype. Protein kinases are the most frequently mutated genes in the cancer genome, making them attractive therapeutic targets for drug design. However, the use of some of the kinase inhibitors (KIs) has been associated with toxicities to the heart and vasculature, including acute coronary syndromes and heart failure. Herein we discuss the genetic basis of cancer, focusing on mutations in the kinase genome (kinome) that lead to tumorigenesis. This will allow an understanding of the real and potential power of modern cancer therapeutics. The underlying mechanisms that drive the cardiotoxicity of the KIs are also examined. The preclinical models for predicting cardiotoxicity, including induced pluripotent stem cells and zebrafish, are reviewed, with the hope of eventually being able to identify problematic agents before their use in patients. Finally, the use of biomarkers in the clinic is discussed, and newer strategies (i.e., metabolomics and enhanced imaging strategies) that may allow earlier and more accurate detection of cardiotoxicity are reviewed.
Insights
Cancer genomics targets mutated kinases for therapy. However, kinase inhibitors can cause heart toxicity, necessitating better prediction methods and early detection strategies for patient safety.
Area of Science:
- Oncology
- Genetics
- Cardiology
Background:
- Cancer genomics identifies mutations driving tumor growth.
- Protein kinases are frequent targets in cancer therapy.
- Kinase inhibitors (KIs) can cause cardiotoxicity.
Purpose of the Study:
- To review the genetic basis of cancer and kinome mutations.
- To examine mechanisms of KI-induced cardiotoxicity.
- To discuss preclinical models and biomarkers for predicting and detecting cardiotoxicity.
Main Methods:
- Review of cancer genomics literature focusing on kinome mutations.
- Examination of mechanisms underlying kinase inhibitor cardiotoxicity.
- Analysis of preclinical models (iPSCs, zebrafish) and clinical biomarkers for cardiotoxicity.
Main Results:
- Kinase mutations are central to cancer development and therapeutic targeting.
- Cardiotoxicity is a significant side effect of some kinase inhibitors.
- Preclinical models and biomarkers show promise for predicting and detecting cardiotoxicity.
Conclusions:
- Understanding kinome mutations is key to cancer therapeutics.
- Addressing KI-induced cardiotoxicity is crucial for patient safety.
- Advancements in preclinical models and biomarkers will improve early detection of cardiotoxicity.
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