Metformin Prevents Hyperglycemia-Associated, Oxidative Stress-Induced Vascular Endothelial Dysfunction: Essential

Vivek Krishna Pulakazhi Venu1, Mahmoud Saifeddine2, Koichiro Mihara2

  • 1Inflammation Research Network and Snyder Institute for Chronic Diseases, Department of Physiology & Pharmacology (V.K.P.V, M.S., K.M., M.M., S.A.H., M.D.H.), and Department of Medicine (M.D.H.), University of Calgary Cumming School of Medicine, Calgary AB, Canada; Alberta Children's Hospital Research Institute and Department of Chemistry, University of Calgary AB, Canada (E.G., A.J.F., D.D.); Departments of Pharmacology and Medical Education, Weill Cornell Medicine in Qatar, Al-Rayyan, Doha, Qatar (I. M., D. A-M., H.D., C.R.T.) and Bioinformatics (M.F.), Jamia Millia Islamia (Central University), Jaima Nagar, Okhla New Delhi, India mhollenb@ucalgary.ca vivek.pulakazhivenu@ucalgary.ca.

Molecular Pharmacology
|August 28, 2021
PubMed

Insights

Metformin protects vascular endothelial cells from diabetes-related damage by reducing reactive oxygen species and preserving mitochondrial function, a process dependent on the orphan nuclear receptor NR4A1.

Area of Science:

  • Endocrinology
  • Cardiovascular Biology
  • Pharmacology

Background:

  • Diabetes mellitus increases vascular pathology due to reactive oxygen species (ROS)-induced endothelial cell damage.
  • Metformin is a primary treatment for diabetes, but its vascular protective mechanisms beyond glycemic control are not fully understood.

Purpose of the Study:

  • To elucidate the mechanism by which therapeutic concentrations of metformin protect vascular endothelial cells from hyperglycemia-induced damage.
  • To investigate the role of the orphan nuclear receptor NR4A1 in metformin's vascular protective effects.

Main Methods:

  • In vitro and in vivo studies using streptozotocin-induced diabetes models.
  • Assessment of endothelial cell function, ROS production, and mitochondrial respiration.
  • In silico modeling, mutagenesis, and cell-based assays to study metformin-NR4A1 interactions.

Main Results:

  • Metformin (1-50 µM) protected endothelial cells from hyperglycemia/ROS-induced dysfunction and mitochondrial damage.
  • These protective effects were absent in NR4A1-null tissues, indicating a critical role for NR4A1.
  • Specific proline residues in NR4A1 were identified as key for metformin's mitochondrial effects.

Conclusions:

  • Therapeutic metformin concentrations require NR4A1 expression to protect vasculature from hyperglycemia-induced dysfunction.
  • This study reveals a novel mechanism for metformin's cardioprotective effects, independent of glycemic control.
  • Findings have implications for developing new metformin-related therapeutic agents targeting diabetic vascular complications.

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