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Published on: July 10, 2019
Glycogen synthase kinase-3α limits ischemic injury, cardiac rupture, post-myocardial infarction remodeling and death
Hind Lal1, Jibin Zhou, Firdos Ahmad
1Center for Translational Medicine, Thomas Jefferson University, College Building, Rm 316, 1025 Walnut St., Philadelphia, PA 19107, USA.
Insights
Glycogen synthase kinase-3α (GSK-3α) protects against heart attack damage by limiting cell death. Loss of GSK-3α worsens injury, increases rupture risk, and accelerates heart failure after myocardial infarction (MI).
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Myocardial Infarction Research
Background:
- The molecular mechanisms governing ischemic injury and post-myocardial infarction (MI) remodeling are not fully understood.
- Glycogen synthase kinase-3α (GSK-3α) has been identified as crucial for the heart's response to pressure overload.
- The specific role of GSK-3α in ischemic injury and its consequences remains unknown.
Purpose of the Study:
- To investigate the role of glycogen synthase kinase-3α (GSK-3α) in the context of ischemic injury and post-myocardial infarction (MI) remodeling.
- To determine if GSK-3α influences the extent of cardiac damage, cardiac rupture, and the progression of heart failure following MI.
Main Methods:
- Myocardial infarction (MI) was induced in wild-type (WT) and GSK-3α knockout (KO) mice via left anterior descending coronary artery ligation.
- Cardiac function, chamber dimensions, mortality, infarct size, apoptosis, and molecular markers of cell death were assessed.
- Isolated cardiomyocytes from WT and KO mice were subjected to hypoxic conditions to evaluate susceptibility to ischemic injury.
Main Results:
- GSK-3α knockout (KO) mice exhibited significantly increased left ventricular dilatation, dysfunction, and mortality post-MI compared to WT mice.
- Cardiac rupture was a major cause of death in KO mice, occurring more frequently than in WT mice.
- KO mice showed larger infarct sizes, increased apoptosis in the infarct border zone, and heightened susceptibility to hypoxia-induced apoptosis in isolated cardiomyocytes, with increased Bax translocation and cytochrome C release.
Conclusions:
- Glycogen synthase kinase-3α (GSK-3α) plays a protective role against ischemic injury, primarily by limiting apoptosis.
- Loss of GSK-3α exacerbates myocardial infarction (MI) injury, elevates the risk of cardiac rupture, worsens post-MI remodeling and left ventricular dysfunction, and accelerates heart failure progression.
- These findings contrast with studies showing protective effects of GSK-3β inhibition, highlighting a distinct role for GSK-3α in cardiac ischemic injury.
Background:
The molecular pathways that regulate the extent of ischemic injury and post-myocardial infarction (MI) remodeling are not well understood. We recently demonstrated that glycogen synthase kinase-3α (GSK-3α) is critical to the heart's response to pressure overload. However, the role, if any, of GSK-3α in regulating ischemic injury and its consequences is not known.
Methods And Results:
MI was induced in wild-type (WT) versus GSK-3α((-/-)) (KO) littermates by left anterior descending coronary artery ligation. Pre-MI, WT, and KO hearts had comparable chamber dimensions and ventricular function, but as early as 1 week post-MI, KO mice had significantly more left ventricular dilatation and dysfunction than WT mice. KO mice also had increased mortality during the first 10 days post-MI (43% versus 22%; P=0.04), and postmortem examination confirmed cardiac rupture as the cause of most of the deaths. In the mice that survived the first 10 days, left ventricular dilatation and dysfunction remained worse in the KO mice throughout the study (8 weeks). Hypertrophy, fibrosis, and heart failure were all increased in the KO mice. Given the early deaths due to rupture and the significant reduction in left ventricular function evident as early as 1 week post-MI, we examined infarct size following a 48-hour coronary artery ligation and found it to be increased in the KO mice. This was accompanied by increased apoptosis in the border zone of the MI. This increased susceptibility to ischemic injury-induced apoptosis was also seen in cardiomyocytes isolated from the KO mice that were exposed to hypoxia. Finally, Bax translocation to the mitochondria and cytochrome C release into the cytosol were increased in the KO mice.
Conclusion:
GSK-3α confers resistance to ischemic injury, at least in part, via limiting apoptosis. Loss of GSK-3α promotes ischemic injury, increases risk of cardiac rupture, accentuates post-MI remodeling and left ventricular dysfunction, and increases the progression to heart failure. These findings are in striking contrast to multiple previous reports in which deletion or inhibition of GSK-3β is protective.
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