Cellular mechanism of insulin resistance: potential links with inflammation

G Perseghin1, K Petersen, G I Shulman

  • 1Internal Medicine-Section of Nutrition/Metabolism and Unit of Clinical Spectroscopy, Istituto Scientifico H San Raffaele via Olgettina 60, Milan, Italy.

Insights

Insulin resistance, a precursor to type 2 diabetes, stems from impaired muscle glucose transport. This defect, linked to inflammation and increased fat, offers new therapeutic targets.

Area of Science:

  • Metabolic Physiology
  • Molecular Pathogenesis of Diabetes

Background:

  • Insulin resistance precedes type 2 diabetes by 10-20 years.
  • Impaired insulin-stimulated muscle glucose metabolism is a key factor.
  • Defects in glucose transport, phosphorylation, or storage contribute to insulin resistance.

Purpose of the Study:

  • To identify the rate-controlling defect in insulin-stimulated muscle glucose metabolism.
  • To investigate the mechanisms by which fatty acids induce insulin resistance.
  • To explore the role of inflammation and intramyocellular lipids in insulin resistance.

Main Methods:

  • Utilized (13)C/(31)P magnetic resonance spectroscopy (MRS) to assess muscle glucose metabolism.
  • Investigated the impact of fatty acids on insulin signaling pathways.
  • Examined the role of protein kinase C theta and IKK-beta in insulin resistance.

Main Results:

  • A defect in insulin-stimulated muscle glucose transport activity was identified as the rate-controlling step.
  • Fatty acids induce insulin resistance by decreasing muscle glucose transport, linked to reduced phosphatidylinositol 3-kinase activity.
  • Activation of inflammatory pathways (protein kinase C theta, IKK-beta) may underlie impaired glucose transport.

Conclusions:

  • Impaired insulin-stimulated muscle glucose transport is a critical defect in insulin resistance.
  • Increased intramyocellular lipids, from various metabolic perturbations, converge on this pathway.
  • Understanding these mechanisms provides potential targets for type 2 diabetes treatment.

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