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.

Circulation
|November 17, 2011
PubMed

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.
Abstract