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Published on: May 16, 2020
Molecular and cellular mechanisms of anthracycline cardiotoxicity
Billy Chen1, Xuyang Peng, Laura Pentassuglia
1Department of Molecular Medicine, Boston University, Boston, TN, USA.
Abstract:
The molecular and cellular mechanisms that cause cumulative dose-dependent anthracycline-cardiotoxicity remain controversial and incompletely understood. Studies examining the effects of anthracyclines in cardiac myocytes inA vitro have demonstrated several forms of cellular injury. Cell death in response to anthracyclines can be observed by one of several mechanisms including apoptosis and necrosis. Cell death by apoptosis can be inhibited by dexrazoxane, the iron chelator that is known to prevent clinical development of heart failure at high cumulative anthracycline exposure. Together with clinical evidence for myocyte death after anthracycline exposure, in the form of elevations in serum troponin, make myocyte cell death a probable mechanism for anthracycline-induced cardiac injury. Other mechanisms of myocyte injury include the development of cellular \'sarcopenia\' characterized by disruption of normal sarcomere structure. Anthracyclines suppress expression of several cardiac transcription factors, and this may play a role in the development of myocyte death as well as sarcopenia. Degradation of the giant myofilament protein titin may represent an important proximal step that leads to accelerated myofilament degradation. Titin is an entropic spring element in the sarcomere that regulates length-dependent calcium sensitivity. Thus titin degradation may lead to impaired diastolic as well as systolic dysfunction, as well as potentiate the effect of suppression of transcription of sarcomere proteins. An interesting interaction has been noted clinically between anthracyclines and newer cancer therapies that target the erbB2 receptor tyrosine kinase. Studies of erbB2 function in viro suggest that signaling through erbB2 by the growth factor neuregulin may regulate cardiac myocyte sarcomere turnover, as well as myocyte-myocyte/myocyte-matrix force coupling. A combination of further in vitro studies, with more careful monitoring of cardiac function after exposure to these cancer therapies, may help to understand to what extent these mechanisms are at work during clinical exposure of the heart to these important pharmaceuticals.
Insights
Anthracyclines cause heart damage through myocyte cell death and sarcopenia, potentially involving titin degradation. Dexrazoxane may prevent this, and erbB2 signaling might influence cardiac repair.
Area of Science:
- Cardiology
- Oncology
- Molecular Biology
Background:
- Anthracycline chemotherapy can cause dose-dependent cardiotoxicity, but underlying mechanisms are not fully understood.
- Observed cellular injuries include apoptosis, necrosis, and sarcopenia (disrupted sarcomere structure) in cardiac myocytes.
- Titin degradation and suppression of cardiac transcription factors are implicated in myocyte dysfunction.
Purpose of the Study:
- To elucidate the molecular and cellular mechanisms of anthracycline-induced cardiotoxicity.
- To investigate the role of titin degradation and transcription factor suppression in myocyte injury.
- To explore potential interactions between anthracyclines, erbB2-targeted therapies, and cardiac function.
Main Methods:
- In vitro studies using cardiac myocytes exposed to anthracyclines.
- Analysis of cellular injury mechanisms, including apoptosis, necrosis, and sarcomere structure.
- Investigation of titin degradation and cardiac transcription factor expression.
- Examination of erbB2 signaling pathways and their influence on myocyte mechanics.
Main Results:
- Anthracyclines induce myocyte cell death (apoptosis/necrosis) and sarcopenia, evidenced by sarcomere disruption.
- Dexrazoxane, an iron chelator, inhibits anthracycline-induced apoptosis.
- Titin degradation appears to be an early event leading to impaired systolic and diastolic function.
- erbB2 signaling, modulated by neuregulin, may influence sarcomere turnover and force coupling.
Conclusions:
- Myocyte cell death and sarcopenia are probable mechanisms of anthracycline cardiotoxicity.
- Titin degradation and suppressed transcription factors contribute to cardiac dysfunction.
- Interactions with erbB2-targeted therapies warrant further investigation for understanding and mitigating cardiotoxicity.
Related Concept Videos
Myocarditis I: Introduction
Cellular Injury I: Introduction
Pathophysiology of Heart Failure
Cardiomyopathy II: Dilated Cardiomyopathy
Cardiomyopathy I: Introduction and Classification
Cellular Injury II: Classification

