SGLT2 inhibition with empagliflozin improves coronary microvascular function and cardiac contractility in prediabetic

Damilola D Adingupu1, Sven O Göpel2, Julia Grönros1

  • 1Bioscience, Cardiovascular, Renal and Metabolic Diseases, IMED Biotech Unit, AstraZeneca Gothenburg, Pepparedsleden 1, Mölndal, 431 83, Gothenburg, Sweden.

Abstract

Insights

Sodium-glucose cotransporter 2 inhibitors (SGLT2i) improve heart function and metabolism in diabetic mice. This study shows SGLT2i treatment enhances coronary microvascular function and cardiac performance, offering a valuable translational model for cardiometabolic diseases.

Area of Science:

  • Cardiology
  • Metabolic Diseases
  • Pharmacology

Background:

  • Sodium-glucose cotransporter 2 inhibitors (SGLT2i) are a key anti-diabetic treatment reducing heart failure hospitalizations.
  • SGLT2i promote a fasting-like metabolic state, impacting weight, glucose, and ketone levels.
  • Ob/ob-/- mice, a model for diabetes and hepatic steatosis, exhibit cardiac and microvascular dysfunction, making them suitable for translational research.

Purpose of the Study:

  • To investigate the metabolic and cardiovascular effects of SGLT2 inhibitors in ob/ob-/- mice.
  • To assess if empagliflozin treatment in this model mimics human clinical responses.
  • To test the hypothesis that SGLT2 inhibition directly improves coronary microvascular and cardiac contractile function.

Main Methods:

  • Lean and ob/ob-/- mice were treated with SGLT2i for 10 weeks.
  • Coronary flow velocity reserve (CFVR) and fractional area change (FAC) were assessed using Doppler ultrasound.
  • Metabolic parameters, including HbA1c, liver steatosis, and L-Arginine/ADMA ratio, were evaluated.

Main Results:

  • SGLT2i treatment induced a catabolic state, decreasing HbA1c and liver triglycerides while increasing the glucagon/insulin ratio and ketone levels.
  • Endothelial function improved, indicated by an increased L-Arginine/ADMA ratio.
  • Cardiac contractile function (FAC) and coronary microvascular function (CFVR) were significantly improved.

Conclusions:

  • SGLT2 inhibition in ob/ob-/- mice effectively replicates key clinical metabolic and cardiovascular findings.
  • The study demonstrates direct improvements in coronary microvascular and cardiac contractile function by SGLT2 inhibition.
  • Ob/ob-/- mice treated with SGLT2i serve as a valuable preclinical model for studying prediabetes and heart failure.

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