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Updated: May 8, 2026

Improved Rodent Model of Myocardial Ischemia and Reperfusion Injury
Published on: March 7, 2022
Cyclic nucleotide phosphodiesterase 3A1 protects the heart against ischemia-reperfusion injury
Masayoshi Oikawa1, Meiping Wu, Soyeon Lim
1Aab Cardiovascular Research Institute, Department of Medicine, University of Rochester, Rochester, NY, USA.
Insights
Phosphodiesterase 3A (PDE3A) overexpression in mice reduced cardiac function but protected against heart attack and apoptosis. PDE3A1 inhibits cardiomyocyte apoptosis, suggesting a novel therapeutic target for heart protection.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cellular Physiology
Background:
- Phosphodiesterase 3A (PDE3A) regulates cyclic AMP (cAMP) in heart cells.
- PDE3 inhibitors aid acute heart failure but risk arrhythmias and sudden death with long-term use.
- Previous studies indicated PDE3A downregulation induces myocyte apoptosis in vitro.
Purpose of the Study:
- To investigate the in vivo cardiac protective effects of PDE3A.
- To determine PDE3A's role in myocardial function and survival in a disease model.
Main Methods:
- Generated transgenic (TG) mice overexpressing PDE3A1 in the heart.
- Assessed cardiac function, fibrosis, apoptosis, and survival rates in TG and wild-type (WT) mice.
- Induced myocardial ischemia/reperfusion (I/R) injury to evaluate infarct size and apoptosis.
- Conducted in vitro apoptosis studies on isolated TG and WT cardiomyocytes.
Main Results:
- TG mice exhibited reduced cardiac function (heart rate, ejection fraction) but no increased fibrosis or apoptosis.
- Myocardial infarct size and apoptotic cell number were significantly reduced in TG mice post-I/R injury.
- TG cardiomyocytes showed reduced apoptosis rates under stress, which was reversed by PDE3 inhibition.
Conclusions:
- Myocardial PDE3A1 overexpression protects against ischemia/reperfusion injury.
- PDE3A1 inhibits cardiomyocyte apoptosis, likely by modulating beta-adrenergic receptor (β-AR) signaling.
- PDE3A1 demonstrates a novel cardioprotective role in vivo, distinct from the effects of PDE3 inhibitors.
Abstract:
Phosphodiesterase 3A (PDE3A) is a major regulator of cAMP in cardiomyocytes. PDE3 inhibitors are used for acute treatment of congestive heart failure, but are associated with increased incidence of arrhythmias and sudden death with long-term use. We previously reported that chronic PDE3A downregulation or inhibition induced myocyte apoptosis in vitro. However, the cardiac protective effect of PDE3A has not been demonstrated in vivo in disease models. In this study, we examined the role of PDE3A in regulating myocardial function and survival in vivo using genetically engineered transgenic mice with myocardial overexpression of the PDE3A1 isozyme (TG). TG mice have reduced cardiac function characterized by reduced heart rate and ejection fraction (52.5±7.8% vs. 83.9±4.7%) as well as compensatory expansion of left ventricular diameter (4.19±0.19mm vs. 3.10±0.18mm). However, there was no maladaptive increase of fibrosis and apoptosis in TG hearts compared to wild type (WT) hearts, and the survival rates also remained the same. The diminution of cardiac contractile function is very likely attributed to a decrease in beta-adrenergic receptor (β-AR) response in TG mice. Importantly, the myocardial infarct size (4.0±1.8% vs. 24.6±3.8%) and apoptotic cell number (1.3±1.0% vs. 5.6±1.5%) induced by ischemia/reperfusion (I/R) injury were significantly attenuated in TG mice. This was associated with decreased expression of inducible cAMP early repressor (ICER) and increased expression of anti-apoptotic protein BCL-2. To further verify the anti-apoptotic effects of PDE3A1, we performed in vitro apoptosis study in isolated adult TG and WT cardiomyocytes. We found that the apoptotic rates stimulated by hypoxia/reoxygenation or H2O2 were indeed significantly reduced in TG myocytes, and the differences between TG and WT myocytes were completely reversed in the presence of the PDE3 inhibitor milrinone. These together indicate that PDE3A1 negatively regulates β-AR signaling and protects against I/R injury by inhibiting cardiomyocyte apoptosis.
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