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Pathophysiology

Free Fatty Acids Induce Peripheral Insulin Resistance Without Increasing Muscle Hexosamine Pathway Product Levels in Rats

  1. Cheol S. Choi,
  2. Felix N. Lee and
  3. Jang H. Youn
  1. From the Diabetes Research Center, Department of Physiology and Biophysics, Keck School of Medicine, University of Southern California, Los Angeles, California.
  1. Address correspondence and reprint requests to Jang H. Youn, PhD, Department of Physiology and Biophysics, University of Southern California Keck School of Medicine, 1333 San Pablo Ave., MMR 626, Los Angeles, CA 90089-9142. E-mail: youn{at}usc.edu .
Diabetes 2001 Feb; 50(2): 418-424. https://doi.org/10.2337/diabetes.50.2.418
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Abstract

To evaluate the role of the hexosamine biosynthesis pathway (HBP) in fat-induced insulin resistance, we examined whether fat-induced insulin resistance is additive to that induced by increased HBP flux via glucosamine infusion and, if so, whether such additive effects correlate with muscle HBP product levels. Prolonged hyperinsulinemic (∼550 pmol/l) euglycemic clamps were conducted in conscious overnight-fasted rats. After the initial 150 min to attain steady-state insulin action, rats received an additional infusion of saline, Intralipid, glucosamine, or Intralipid and glucosamine (n = 8 or 9 for each) for 330 min. At the conclusion of clamps, skeletal muscles (soleus, extensor digitorum longus, and tibialis anterior) were taken for the measurement of HBP product levels. Intralipid and glucosamine infusions decreased insulin-stimulated glucose uptake (Rd) by 38 and 28%, respectively. When the infusions were combined, insulin-stimulated Rd decreased 47%, significantly more than with Intralipid or glucosamine alone (P < 0.05). The glucosamine-induced insulin resistance was associated with four- to fivefold increases in muscle HBP product levels. In contrast, the Intralipid-induced insulin resistance was accompanied by absolutely no increase in HBP product levels in all of the muscles examined. Also, when infused with glucosamine, Intralipid decreased insulin action below that with glucosamine alone without changing HBP product levels. In a separate study, short-term (50 and 180 min) Intralipid infusion also failed to increase muscle HBP product levels. In conclusion, increased availability of plasma free fatty acids induces peripheral insulin resistance without increasing HBP product levels in skeletal muscle.

Footnotes

  • dpm, disintegrations per minute; EDL, extensor digitorum longus; F-6-P, fructose-6-phosphate; FFA, free fatty acid; G-6-P, glucose-6-phosphate; GFAT, glutamine F-6-P amidotransferase; GINF, glucose infusion rate; HBP, hexosamine biosynthesis pathway; HGO, hepatic glucose output; HPLC, high-performance liquid chromatography; Rd, glucose uptake; TBS, tetrabutylammonium sulfate; UDP-Gal, UDP-galactose; UDP-GalNAc, uridinediphospho-N-acetylgalactosamine; UDP-Glc, UDP-glucose; UDP-Glc-NAc, uridinediphospho-N-acetylglucosamine.

    • Accepted October 23, 2000.
    • Received June 12, 2000.
  • by the American Diabetes Association, Inc.
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Free Fatty Acids Induce Peripheral Insulin Resistance Without Increasing Muscle Hexosamine Pathway Product Levels in Rats
Cheol S. Choi, Felix N. Lee, Jang H. Youn
Diabetes Feb 2001, 50 (2) 418-424; DOI: 10.2337/diabetes.50.2.418

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Free Fatty Acids Induce Peripheral Insulin Resistance Without Increasing Muscle Hexosamine Pathway Product Levels in Rats
Cheol S. Choi, Felix N. Lee, Jang H. Youn
Diabetes Feb 2001, 50 (2) 418-424; DOI: 10.2337/diabetes.50.2.418
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