Oxyntomodulin ameliorates glucose intolerance in mice fed a high-fat diet

Edwin T Parlevliet1, Annemieke C Heijboer, Janny P Schröder-van der Elst

  • 1Leiden University Medical Center, Dept. of Endocrinology and Metabolic Diseases, P. O. Box 9600, 2300 RC Leiden, The Netherlands. E.T.Parlevliet@lumc.nl

Insights

Oxytocin (OXM) improves glucose tolerance in diet-induced insulin-resistant mice by increasing insulin levels, not by enhancing insulin action. This study highlights OXM

Area of Science:

  • Metabolic research
  • Endocrinology
  • Pharmacology

Background:

  • Diet-induced obesity leads to insulin resistance, a major risk factor for type 2 diabetes.
  • Understanding novel therapeutic targets for improving glucose metabolism is crucial.

Purpose of the Study:

  • To investigate the acute effects of Oxytocin (OXM) on glucose metabolism in diet-induced insulin-resistant mice.
  • To determine if OXM improves glucose tolerance and insulin sensitivity.

Main Methods:

  • Male C57Bl/6 mice with diet-induced insulin resistance were used.
  • Glucose tolerance was assessed via intraperitoneal glucose tolerance tests after OXM injection.
  • Insulin action was quantified using hyperinsulinemic euglycemic clamps with OXM infusion.
  • Measurements included glucose infusion rate, glucose production, and glucose disposal.

Main Results:

  • OXM dose-dependently improved glucose tolerance.
  • OXM increased glucose-induced insulin levels.
  • During hyperinsulinemic clamp, OXM enhanced glucose infusion rate and glucose disposal.
  • OXM increased basal endogenous glucose production (EGP).
  • However, when normalized for circulating insulin levels, OXM did not alter insulin action on glucose disposal or production.

Conclusions:

  • OXM ameliorates glucose intolerance in diet-induced insulin-resistant mice.
  • The beneficial effect of OXM on glucose metabolism is primarily attributed to elevated glucose-induced plasma insulin concentrations.
  • OXM does not appear to directly impact insulin action on glucose disposal and production.

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