Myocardial Ischemia-Reperfusion and Diabetes: Lessons Learned From Bedside to Bench

Maya Dia1,2, Alexandre Paccalet1, Bruno Pillot1

  • 1Laboratoire CarMeN-équipe IRIS, INSERM, INRA, Université Claude Bernard Lyon-1, INSA-Lyon, Univ-Lyon, Bron, France.

Insights

Type 2 diabetes (T2D) impacts myocardial infarction differently in humans versus diet-induced mice. Anti-diabetic drugs like Metformin show promise for cardioprotection, suggesting their inclusion in preclinical studies.

Area of Science:

  • Cardiovascular Research
  • Translational Medicine
  • Diabetology

Background:

  • Cardioprotective drug translation from bench to bedside is failing.
  • Type 2 diabetes (T2D) is a major risk factor for myocardial infarction (MI) comorbidities.
  • Discrepancies exist between animal models and human studies of diabetes in MI.

Purpose of the Study:

  • Compare diabetes impact on cell death post-cardiac ischemia-reperfusion (I/R) in human ST-elevation myocardial infarction (STEMI) patients and a diet-induced T2D mouse model.
  • Evaluate the efficacy of Metformin in a T2D mouse model of cardiac I/R.

Main Methods:

  • Diet-induced T2D mouse model (16 weeks high-fat high-sucrose diet).
  • Human STEMI patient cohort analysis.
  • In vivo cardiac I/R and in vitro hypoxia-reoxygenation studies on isolated cardiomyocytes.
  • Metformin treatment (6 weeks oral gavage) in HFHSD mice.

Main Results:

  • Diabetic STEMI patients (<14%) showed no increased infarct size compared to non-diabetic patients.
  • HFHSD mice exhibited increased infarct size and cardiomyocyte death after cardiac I/R and hypoxia-reoxygenation.
  • Metformin treatment in HFHSD mice significantly reduced cardiomyocyte death, comparable to standard diet controls.

Conclusions:

  • Anti-diabetic medications, like Metformin, demonstrate cardioprotective potential and should be considered in preclinical studies.
  • Diet-induced T2D mouse models may not be ideal for translating findings to human STEMI patients.
  • Aging, a common factor in infarcted patients, may be a more suitable translational model than T2D.