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A Doxorubicin-induced Cardiomyopathy Model in Adult Zebrafish
Published on: June 7, 2018
Phosphodiesterase 5 Inhibition Limits Doxorubicin-induced Heart Failure by Attenuating Protein Kinase G Iα Oxidation
Oleksandra Prysyazhna1, Joseph Robert Burgoyne1, Jenna Scotcher1
1From the Rayne Institute and.
Insights
Phosphodiesterase 5 (PDE5) inhibitors protect the heart from doxorubicin chemotherapy by preventing PKG Iα oxidation. This mechanism limits apoptosis and cardiac dysfunction, offering a novel therapeutic strategy for chemotherapy-induced cardiotoxicity.
Area of Science:
- Cardiology
- Molecular Biology
- Pharmacology
Background:
- Doxorubicin chemotherapy can cause myocardial injury and apoptosis.
- Phosphodiesterase 5 (PDE5) inhibitors are known to limit this injury.
- PKG Iα disulfide formation is implicated in doxorubicin-induced cardiotoxicity.
Purpose of the Study:
- To investigate the role of PKG Iα disulfide dimerization in doxorubicin-induced cardiomyopathy.
- To determine if PDE5 inhibition protects against doxorubicin-induced cardiac injury by limiting PKG Iα oxidation.
Main Methods:
- Comparison of doxorubicin-induced cardiomyopathy in wild-type (WT) and disulfide-resistant C42S PKG Iα knock-in (KI) mice.
- Echocardiography to assess cardiac function and tissue damage.
- Evaluation of pro-survival signaling and apoptosis markers.
- Administration of tadalafil (a PDE5 inhibitor) in conjunction with doxorubicin.
Main Results:
- Doxorubicin induced myocardial injury and depressed left ventricular function in WT mice.
- KI mice exhibited marked resistance to doxorubicin-induced cardiac dysfunction.
- Tadalafil co-administration with doxorubicin reduced PKG Iα oxidation and protected WT mice from cardiac injury.
- KI mice were innately resistant, and tadalafil provided no additional protection.
- Doxorubicin-induced RhoA/ROCK pathway activation was attenuated in KI mice and in WT mice treated with tadalafil.
Conclusions:
- PKG Iα disulfide formation is a key trigger of doxorubicin-induced cardiac injury.
- Elevating cyclic GMP (cGMP) levels via PDE5 inhibition limits PKG Iα oxidation and protects against cardiotoxicity.
- Pharmacological therapies targeting cGMP signaling offer a promising approach to prevent chemotherapy-induced heart damage.
Abstract:
Phosphodiesterase 5 (PDE5) inhibitors limit myocardial injury caused by stresses, including doxorubicin chemotherapy. cGMP binding to PKG Iα attenuates oxidant-induced disulfide formation. Because PDE5 inhibition elevates cGMP and protects from doxorubicin-induced injury, we reasoned that this may be because it limits PKG Iα disulfide formation. To investigate the role of PKG Iα disulfide dimerization in the development of apoptosis, doxorubicin-induced cardiomyopathy was compared in male wild type (WT) or disulfide-resistant C42S PKG Iα knock-in (KI) mice. Echocardiography showed that doxorubicin treatment caused loss of myocardial tissue and depressed left ventricular function in WT mice. Doxorubicin also reduced pro-survival signaling and increased apoptosis in WT hearts. In contrast, KI mice were markedly resistant to the dysfunction induced by doxorubicin in WTs. In follow-on experiments the influence of the PDE5 inhibitor tadalafil on the development of doxorubicin-induced cardiomyopathy in WT and KI mice was investigated. In WT mice, co-administration of tadalafil with doxorubicin reduced PKG Iα oxidation caused by doxorubicin and also protected against cardiac injury and loss of function. KI mice were again innately resistant to doxorubicin-induced cardiotoxicity, and therefore tadalafil afforded no additional protection. Doxorubicin decreased phosphorylation of RhoA (Ser-188), stimulating its GTPase activity to activate Rho-associated protein kinase (ROCK) in WTs. These pro-apoptotic events were absent in KI mice and were attenuated in WTs co-administered tadalafil. PKG Iα disulfide formation triggers cardiac injury, and this initiation of maladaptive signaling can be blocked by pharmacological therapies that elevate cGMP, which binds kinase to limit its oxidation.
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