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PMID: 16622294 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Review

Insulin resistance and improvements in signal transduction.

Endocrine ·Vol. 29 ·No. 1 ·2006-02-00 ·Pages 73-80

Musi N, Goodyear LJ

Abstract

Type 2 diabetes and obesity are common metabolic disorders characterized by resistance to the actions of insulin to stimulate skeletal muscle glucose disposal. Insulin-resistant muscle has defects at several steps of the insulin-signaling pathway, including decreases in insulin-stimulated insulin receptor and insulin receptor substrate-1 tyrosine phosphorylation, and phosphatidylinositol 3-kinase (PI 3-kinase) activation. One approach to increase muscle glucose disposal is to reverse/improve these insulin-signaling defects. Weight loss and thiazolidinediones (TZDs) improve glucose disposal, in part, by increasing insulin-stimulated insulin receptor and IRS-1 tyrosine phosphorylation and PI 3-kinase activity. In contrast, physical training and metformin improve whole-body glucose disposal but have minimal effects on proximal insulin-signaling steps. A novel approach to reverse insulin resistance involves inhibition of the stress-activated protein kinase Jun N-terminal kinase (JNK) and the protein tyrosine phosphatases (PTPs). A different strategy to increase muscle glucose disposal is by stimulating insulin-independent glucose transport. AMP-activated protein kinase (AMPK) is an enzyme that works as a fuel gauge and becomes activated in situations of energy consumption, such as muscle contraction. Several studies have shown that pharmacologic activation of AMPK increases glucose transport in muscle, independent of the actions of insulin. AMPK activation is also involved in the mechanism of action of metformin and adiponectin. Moreover, in the hypothalamus, AMPK regulates appetite and body weight. The effect of AMPK to stimulate muscle glucose disposal and to control appetite makes it an important pharmacologic target for the treatment of type 2 diabetes and obesity.

MeSH Terms
AMP-Activated Protein Kinases Adiponectin/pharmacology Appetite Regulation/drug effects,physiology Diabetes Mellitus, Type 2/drug therapy,physiopathology Enzyme Activation/drug effects,physiology Exercise/physiology Glucose/metabolism Glucose Transport Proteins, Facilitative/pharmacology,therapeutic use Humans Insulin/physiology Insulin Resistance/physiology JNK Mitogen-Activated Protein Kinases/physiology Metformin/pharmacology,therapeutic use Multienzyme Complexes/physiology Muscle, Skeletal/metabolism Obesity/drug therapy,physiopathology Protein Serine-Threonine Kinases/physiology Protein Tyrosine Phosphatases/physiology Signal Transduction/drug effects,physiology Thiazolidinediones/pharmacology,therapeutic use Weight Loss/physiology
Chemicals
Adiponectin Glucose Transport Proteins, Facilitative Insulin Multienzyme Complexes Thiazolidinediones Metformin Protein Serine-Threonine Kinases JNK Mitogen-Activated Protein Kinases AMP-Activated Protein Kinases Protein Tyrosine Phosphatases Glucose
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Musi Nicolas
Texas Diabetes Institute and University of Texas Health Science Center at San Antonio, USA.
Goodyear Laurie J
References (115)
115 references, click to expand
  1. Exercise increases muscle GLUT-4 levels and insulin action in subjects with impaired glucose tolerance.
    Am J Physiol. 1993 Jun;264(6 Pt 1):E855-62 PMID: 8333511
  2. Effects of acute changes of plasma free fatty acids on intramyocellular fat content and insulin resistance in healthy subjects.
    Diabetes. 2001 Jul;50(7):1612-7 PMID: 11423483
  3. C-peptide stimulates glucose transport in isolated human skeletal muscle independent of insulin receptor and tyrosine kinase activation.
    Diabetologia. 1996 Mar;39(3):306-13 PMID: 8721776
  4. AMP-activated protein kinase plays a role in the control of food intake.
    J Biol Chem. 2004 Mar 26;279(13):12005-8 PMID: 14742438
  5. Insulin receptor kinase in human skeletal muscle from obese subjects with and without noninsulin dependent diabetes.
    J Clin Invest. 1987 May;79(5):1330-7 PMID: 3033021
  6. Effect of metformin on carbohydrate and lipoprotein metabolism in NIDDM patients.
    Diabetes Care. 1990 Jan;13(1):1-8 PMID: 2404714
  7. Clinical review 125: The insulin receptor and its cellular targets.
    J Clin Endocrinol Metab. 2001 Mar;86(3):972-9 PMID: 11238471
  8. AMP-activated protein kinase alpha2 activity is not essential for contraction- and hyperosmolarity-induced glucose transport in skeletal muscle.
    J Biol Chem. 2005 Nov 25;280(47):39033-41 PMID: 16186119
  9. The effects of weight loss on insulin sensitivity, skeletal muscle composition and capillary density in obese non-diabetic subjects.
    Int J Obes Relat Metab Disord. 1996 Feb;20(2):154-60 PMID: 8646252
  10. Glucose transport in human skeletal muscle cells in culture. Stimulation by insulin and metformin.
    J Clin Invest. 1992 Oct;90(4):1386-95 PMID: 1401073
  11. Clinical review 26: Insulin resistance in obese and nonobese man.
    J Clin Endocrinol Metab. 1991 Oct;73(4):691-5 PMID: 1890146
  12. Effects of weight loss on regional fat distribution and insulin sensitivity in obesity.
    Diabetes. 1999 Apr;48(4):839-47 PMID: 10102702
  13. Troglitazone but not metformin restores insulin-stimulated phosphoinositide 3-kinase activity and increases p110beta protein levels in skeletal muscle of type 2 diabetic subjects.
    Diabetes. 2002 Feb;51(2):443-8 PMID: 11812753
  14. The effect of insulin on the disposal of intravenous glucose. Results from indirect calorimetry and hepatic and femoral venous catheterization.
    Diabetes. 1981 Dec;30(12):1000-7 PMID: 7030826
  15. Treadmill running increases phosphatidylinostol 3-kinase activity in rat skeletal muscle.
    Biochem Biophys Res Commun. 1997 Jul 30;236(3):647-50 PMID: 9245706
  16. Insulin-stimulated protein kinase C lambda/zeta activity is reduced in skeletal muscle of humans with obesity and type 2 diabetes: reversal with weight reduction.
    Diabetes. 2003 Aug;52(8):1935-42 PMID: 12882908
  17. Insulin resistance and a diabetes mellitus-like syndrome in mice lacking the protein kinase Akt2 (PKB beta).
    Science. 2001 Jun 1;292(5522):1728-31 PMID: 11387480
  18. Role of AMP-activated protein kinase in mechanism of metformin action.
    J Clin Invest. 2001 Oct;108(8):1167-74 PMID: 11602624
  19. Prevention of fat-induced insulin resistance by salicylate.
    J Clin Invest. 2001 Aug;108(3):437-46 PMID: 11489937
  20. Atypical protein kinase C in insulin action and insulin resistance.
    Biochem Soc Trans. 2005 Apr;33(Pt 2):350-3 PMID: 15787604
  21. Protein-tyrosine phosphatase-1B negatively regulates insulin signaling in l6 myocytes and Fao hepatoma cells.
    J Biol Chem. 2001 Mar 30;276(13):10207-11 PMID: 11136729
  22. Effect of AMPK activation on muscle glucose metabolism in conscious rats.
    Am J Physiol. 1999 May;276(5):E938-44 PMID: 10329989
  23. Peroxisome proliferator-activated receptor gene expression in human tissues. Effects of obesity, weight loss, and regulation by insulin and glucocorticoids.
    J Clin Invest. 1997 May 15;99(10):2416-22 PMID: 9153284
  24. Fiber type-specific expression of GLUT4 in human skeletal muscle: influence of exercise training.
    Diabetes. 2000 Jul;49(7):1092-5 PMID: 10909963
  25. Selective interaction of JNK protein kinase isoforms with transcription factors.
    EMBO J. 1996 Jun 3;15(11):2760-70 PMID: 8654373
  26. The effects of rosiglitazone on insulin sensitivity, lipolysis, and hepatic and skeletal muscle triglyceride content in patients with type 2 diabetes.
    Diabetes. 2002 Mar;51(3):797-802 PMID: 11872682
  27. Impaired activation of skeletal muscle glycogen synthase in non-insulin-dependent diabetes mellitus is unrelated to the degree of obesity.
    Metabolism. 1991 Mar;40(3):252-60 PMID: 1900343
  28. Protein tyrosine phosphatase 1B reduction regulates adiposity and expression of genes involved in lipogenesis.
    Diabetes. 2002 Aug;51(8):2405-11 PMID: 12145151
  29. Insulin receptor phosphorylation, insulin receptor substrate-1 phosphorylation, and phosphatidylinositol 3-kinase activity are decreased in intact skeletal muscle strips from obese subjects.
    J Clin Invest. 1995 May;95(5):2195-204 PMID: 7537758
  30. Effect of short-term exercise training on insulin-stimulated PI 3-kinase activity in human skeletal muscle.
    Am J Physiol. 1999 Dec;277(6):E1055-60 PMID: 10600795
  31. Effect of metformin on insulin-stimulated glucose transport in isolated skeletal muscle obtained from patients with NIDDM.
    Diabetologia. 1994 Aug;37(8):826-32 PMID: 7988785
  32. Increased energy expenditure, decreased adiposity, and tissue-specific insulin sensitivity in protein-tyrosine phosphatase 1B-deficient mice.
    Mol Cell Biol. 2000 Aug;20(15):5479-89 PMID: 10891488
  33. Effect of training on insulin sensitivity of glucose uptake and lipolysis in human adipose tissue.
    Am J Physiol Endocrinol Metab. 2000 Aug;279(2):E376-85 PMID: 10913038
  34. Increments in skeletal muscle GLUT-1 and GLUT-4 after endurance training in humans.
    Am J Physiol. 1996 Mar;270(3 Pt 1):E456-62 PMID: 8638693
  35. Intramyocellular triglyceride content is a determinant of in vivo insulin resistance in humans: a 1H-13C nuclear magnetic resonance spectroscopy assessment in offspring of type 2 diabetic parents.
    Diabetes. 1999 Aug;48(8):1600-6 PMID: 10426379
  36. Effect of metformin treatment on insulin action in diabetic rats: in vivo and in vitro correlations.
    Metabolism. 1990 Apr;39(4):425-35 PMID: 2157941
  37. Metformin improves peripheral but not hepatic insulin action in obese patients with type II diabetes.
    Acta Endocrinol (Copenh). 1989 Mar;120(3):257-65 PMID: 2648723
  38. Postreceptor effect of metformin on insulin action in mice.
    J Pharm Pharmacol. 1985 Nov;37(11):821-3 PMID: 2867167
  39. Cellular mechanism of metformin action involves glucose transporter translocation from an intracellular pool to the plasma membrane in L6 muscle cells.
    Endocrinology. 1992 Sep;131(3):1165-73 PMID: 1505458
  40. Insulin signaling and insulin sensitivity after exercise in human skeletal muscle.
    Diabetes. 2000 Mar;49(3):325-31 PMID: 10868952
  41. AMP-kinase regulates food intake by responding to hormonal and nutrient signals in the hypothalamus.
    Nature. 2004 Apr 1;428(6982):569-74 PMID: 15058305
  42. Insulin resistance differentially affects the PI 3-kinase- and MAP kinase-mediated signaling in human muscle.
    J Clin Invest. 2000 Feb;105(3):311-20 PMID: 10675357
  43. Rosiglitazone improves downstream insulin receptor signaling in type 2 diabetic patients.
    Diabetes. 2003 Aug;52(8):1943-50 PMID: 12882909
  44. Insulin receptor substrate-1 phosphorylation and phosphatidylinositol 3-kinase activity in skeletal muscle from NIDDM subjects after in vivo insulin stimulation.
    Diabetes. 1997 Mar;46(3):524-7 PMID: 9032113
  45. PTP1B antisense oligonucleotide lowers PTP1B protein, normalizes blood glucose, and improves insulin sensitivity in diabetic mice.
    Proc Natl Acad Sci U S A. 2002 Aug 20;99(17):11357-62 PMID: 12169659
  46. Involvement of protein kinase C in human skeletal muscle insulin resistance and obesity.
    Diabetes. 2000 Aug;49(8):1353-8 PMID: 10923637
  47. Insulin signaling after exercise in insulin receptor substrate-2-deficient mice.
    Diabetes. 2002 Feb;51(2):479-83 PMID: 11812758
  48. Mammalian AMP-activated protein kinase subfamily.
    J Biol Chem. 1996 Jan 12;271(2):611-4 PMID: 8557660
  49. Evidence for 5' AMP-activated protein kinase mediation of the effect of muscle contraction on glucose transport.
    Diabetes. 1998 Aug;47(8):1369-73 PMID: 9703344
  50. Effect of exercise on insulin action in human skeletal muscle.
    J Appl Physiol (1985). 1989 Feb;66(2):876-85 PMID: 2496078
  51. Effects of metformin and rosiglitazone treatment on insulin signaling and glucose uptake in patients with newly diagnosed type 2 diabetes: a randomized controlled study.
    Diabetes. 2005 May;54(5):1459-67 PMID: 15855334
  52. Effect of pioglitazone on circulating adipocytokine levels and insulin sensitivity in type 2 diabetic patients.
    J Clin Endocrinol Metab. 2004 Sep;89(9):4312-9 PMID: 15356026
  53. C75, a fatty acid synthase inhibitor, reduces food intake via hypothalamic AMP-activated protein kinase.
    J Biol Chem. 2004 May 7;279(19):19970-6 PMID: 15028725
  54. Insulin-stimulated phosphorylation of the Akt substrate AS160 is impaired in skeletal muscle of type 2 diabetic subjects.
    Diabetes. 2005 Jun;54(6):1692-7 PMID: 15919790
  55. Alterations in the expression and cellular localization of protein kinase C isozymes epsilon and theta are associated with insulin resistance in skeletal muscle of the high-fat-fed rat.
    Diabetes. 1997 Feb;46(2):169-78 PMID: 9000691
  56. Interaction of carbohydrate and fat fuels in human skeletal muscle: impact of obesity and NIDDM.
    Am J Physiol. 1996 Mar;270(3 Pt 1):E463-70 PMID: 8638694
  57. The c-Jun NH(2)-terminal kinase promotes insulin resistance during association with insulin receptor substrate-1 and phosphorylation of Ser(307).
    J Biol Chem. 2000 Mar 24;275(12):9047-54 PMID: 10722755
  58. Potential role of 3-phosphoinositide-dependent protein kinase 1 (PDK1) in insulin-stimulated glucose transporter 4 translocation in adipocytes.
    FEBS Lett. 1999 Nov 19;461(3):277-9 PMID: 10567711
  59. Transgenic overexpression of protein-tyrosine phosphatase 1B in muscle causes insulin resistance, but overexpression with leukocyte antigen-related phosphatase does not additively impair insulin action.
    J Biol Chem. 2004 Jun 4;279(23):24844-51 PMID: 15031294
  60. Unraveling the mechanism of action of thiazolidinediones.
    J Clin Invest. 2000 Dec;106(11):1305-7 PMID: 11104782
  61. The AMP-activated protein kinase--fuel gauge of the mammalian cell?
    Eur J Biochem. 1997 Jun 1;246(2):259-73 PMID: 9208914
  62. Cellular mechanisms of insulin resistance.
    J Clin Invest. 2000 Jul;106(2):171-6 PMID: 10903330
  63. Overexpression of protein tyrosine phosphatase-alpha (PTP-alpha) but not PTP-kappa inhibits translocation of GLUT4 in rat adipose cells.
    Biochem Biophys Res Commun. 1999 Feb 16;255(2):200-7 PMID: 10049686
  64. Energy-sensing and signaling by AMP-activated protein kinase in skeletal muscle.
    J Appl Physiol (1985). 2001 Sep;91(3):1017-28 PMID: 11509493
  65. In vivo metformin treatment ameliorates insulin resistance: evidence for potentiation of insulin-induced translocation and increased functional activity of glucose transporters in obese (fa/fa) Zucker rat adipocytes.
    Endocrinology. 1993 Jul;133(1):304-11 PMID: 8391425
  66. Reduced glycogen synthase activity in skeletal muscle from obese patients with and without type 2 (non-insulin-dependent) diabetes mellitus.
    Diabetologia. 1991 Apr;34(4):239-45 PMID: 1906024
  67. Involvement of AMP-activated protein kinase in glucose uptake stimulated by the globular domain of adiponectin in primary rat adipocytes.
    Diabetes. 2003 Jun;52(6):1355-63 PMID: 12765944
  68. Insulin signaling in human skeletal muscle: time course and effect of exercise.
    Diabetes. 1997 Nov;46(11):1775-81 PMID: 9356025
  69. Protein-tyrosine phosphatase 1B is a negative regulator of insulin- and insulin-like growth factor-I-stimulated signaling.
    J Biol Chem. 1996 Aug 16;271(33):19810-6 PMID: 8702689
  70. Muscle insulin receptor concentrations in obese patients post bariatric surgery: relationship to hyperinsulinemia.
    Int J Obes Relat Metab Disord. 2004 Mar;28(3):363-9 PMID: 14724657
  71. Role of the adipocyte, free fatty acids, and ectopic fat in pathogenesis of type 2 diabetes mellitus: peroxisomal proliferator-activated receptor agonists provide a rational therapeutic approach.
    J Clin Endocrinol Metab. 2004 Feb;89(2):463-78 PMID: 14764748
  72. AMP-activated protein kinase: the energy charge hypothesis revisited.
    Bioessays. 2001 Dec;23(12):1112-9 PMID: 11746230
  73. JNK: a new therapeutic target for diabetes.
    Curr Opin Pharmacol. 2003 Aug;3(4):420-5 PMID: 12901952
  74. Effect of metformin on insulin-stimulated tyrosine kinase activity of erythrocytes from obese women with normal glucose tolerance.
    Diabetes Metab. 1997 Apr;23(2):143-8 PMID: 9137903
  75. Postexercise dose-response relationship between plasma glucose and insulin secretion.
    J Appl Physiol (1985). 1988 Mar;64(3):988-99 PMID: 3284873
  76. Role of skeletal muscle in thiazolidinedione insulin sensitizer (PPARgamma agonist) action.
    Endocrinology. 1998 Dec;139(12):5034-41 PMID: 9832442
  77. AMP-activated protein kinase activity and glucose uptake in rat skeletal muscle.
    Am J Physiol Endocrinol Metab. 2001 May;280(5):E677-84 PMID: 11287349
  78. Complexes between the LKB1 tumor suppressor, STRAD alpha/beta and MO25 alpha/beta are upstream kinases in the AMP-activated protein kinase cascade.
    J Biol. 2003;2(4):28 PMID: 14511394
  79. A role for protein kinase Bbeta/Akt2 in insulin-stimulated GLUT4 translocation in adipocytes.
    Mol Cell Biol. 1999 Nov;19(11):7771-81 PMID: 10523666
  80. Activation of protein kinase C-zeta by insulin and phosphatidylinositol-3,4,5-(PO4)3 is defective in muscle in type 2 diabetes and impaired glucose tolerance: amelioration by rosiglitazone and exercise.
    Diabetes. 2003 Aug;52(8):1926-34 PMID: 12882907
  81. Dealing with energy demand: the AMP-activated protein kinase.
    Trends Biochem Sci. 1999 Jan;24(1):22-5 PMID: 10087918
  82. Metabolic stress and altered glucose transport: activation of AMP-activated protein kinase as a unifying coupling mechanism.
    Diabetes. 2000 Apr;49(4):527-31 PMID: 10871188
  83. Wortmannin inhibits insulin-stimulated but not contraction-stimulated glucose transport activity in skeletal muscle.
    FEBS Lett. 1995 Mar 13;361(1):51-4 PMID: 7890039
  84. Insulin stimulation of GLUT4 exocytosis, but not its inhibition of endocytosis, is dependent on RabGAP AS160.
    Mol Biol Cell. 2004 Oct;15(10):4406-15 PMID: 15254270
  85. Evidence for defects in the trafficking and translocation of GLUT4 glucose transporters in skeletal muscle as a cause of human insulin resistance.
    J Clin Invest. 1998 Jun 1;101(11):2377-86 PMID: 9616209
  86. Increased insulin sensitivity and obesity resistance in mice lacking the protein tyrosine phosphatase-1B gene.
    Science. 1999 Mar 5;283(5407):1544-8 PMID: 10066179
  87. Effect of physical training on insulin action in obesity.
    Diabetes. 1987 Dec;36(12):1379-85 PMID: 3315786
  88. Metformin increases AMP-activated protein kinase activity in skeletal muscle of subjects with type 2 diabetes.
    Diabetes. 2002 Jul;51(7):2074-81 PMID: 12086935
  89. Muscle glucose metabolism following exercise in the rat: increased sensitivity to insulin.
    J Clin Invest. 1982 Apr;69(4):785-93 PMID: 6804492
  90. Circulating concentrations of the adipocyte protein adiponectin are decreased in parallel with reduced insulin sensitivity during the progression to type 2 diabetes in rhesus monkeys.
    Diabetes. 2001 May;50(5):1126-33 PMID: 11334417
  91. Contraction stimulates translocation of glucose transporter GLUT4 in skeletal muscle through a mechanism distinct from that of insulin.
    Proc Natl Acad Sci U S A. 1995 Jun 20;92(13):5817-21 PMID: 7597034
  92. LKB1 is the upstream kinase in the AMP-activated protein kinase cascade.
    Curr Biol. 2003 Nov 11;13(22):2004-8 PMID: 14614828
  93. Exercise training increases glycogen synthase activity and GLUT4 expression but not insulin signaling in overweight nondiabetic and type 2 diabetic subjects.
    Metabolism. 2004 Sep;53(9):1233-42 PMID: 15334390
  94. Proteolytic cleavage product of 30-kDa adipocyte complement-related protein increases fatty acid oxidation in muscle and causes weight loss in mice.
    Proc Natl Acad Sci U S A. 2001 Feb 13;98(4):2005-10 PMID: 11172066
  95. The antidiabetic drug metformin elevates receptor tyrosine kinase activity and inositol 1,4,5-trisphosphate mass in Xenopus oocytes.
    Endocrinology. 1996 Jul;137(7):2990-9 PMID: 8770923
  96. Adiponectin stimulates glucose utilization and fatty-acid oxidation by activating AMP-activated protein kinase.
    Nat Med. 2002 Nov;8(11):1288-95 PMID: 12368907
  97. Enhanced muscle fat oxidation and glucose transport by ACRP30 globular domain: acetyl-CoA carboxylase inhibition and AMP-activated protein kinase activation.
    Proc Natl Acad Sci U S A. 2002 Dec 10;99(25):16309-13 PMID: 12456889
  98. Plasma adiponectin concentrations predict insulin sensitivity of both glucose and lipid metabolism.
    Diabetes. 2003 Feb;52(2):239-43 PMID: 12540592
  99. Skeletal muscle peroxisome proliferator- activated receptor-gamma expression in obesity and non- insulin-dependent diabetes mellitus.
    J Clin Invest. 1998 Feb 1;101(3):543-8 PMID: 9449686
  100. Biguanide treatment increases the number of insulin-receptor sites on human erythrocytes.
    N Engl J Med. 1981 Sep 3;305(10):563-6 PMID: 7019705
  101. A central role for JNK in obesity and insulin resistance.
    Nature. 2002 Nov 21;420(6913):333-6 PMID: 12447443
  102. Endurance training improves responsiveness to insulin and modulates insulin signal transduction through the phosphatidylinositol 3-kinase/Akt-1 pathway.
    Eur J Endocrinol. 2002 Jul;147(1):149-57 PMID: 12088932
  103. Relationship of adiponectin to body fat distribution, insulin sensitivity and plasma lipoproteins: evidence for independent roles of age and sex.
    Diabetologia. 2003 Apr;46(4):459-69 PMID: 12687327
  104. A role for AMP-activated protein kinase in contraction- and hypoxia-regulated glucose transport in skeletal muscle.
    Mol Cell. 2001 May;7(5):1085-94 PMID: 11389854
  105. The tumor suppressor LKB1 kinase directly activates AMP-activated kinase and regulates apoptosis in response to energy stress.
    Proc Natl Acad Sci U S A. 2004 Mar 9;101(10):3329-35 PMID: 14985505
  106. Knockout of the alpha2 but not alpha1 5'-AMP-activated protein kinase isoform abolishes 5-aminoimidazole-4-carboxamide-1-beta-4-ribofuranosidebut not contraction-induced glucose uptake in skeletal muscle.
    J Biol Chem. 2004 Jan 9;279(2):1070-9 PMID: 14573616
  107. Mechanism of action of metformin: insulin receptor and postreceptor effects in vitro and in vivo.
    J Clin Endocrinol Metab. 1986 Oct;63(4):898-905 PMID: 3745404
  108. A new molecular target of insulin action: regulating the pivotal PDK1.
    Curr Drug Targets Immune Endocr Metabol Disord. 2001 Nov;1(3):209-21 PMID: 12477287
  109. Insulin action in skeletal muscle from patients with NIDDM.
    Mol Cell Biochem. 1998 May;182(1-2):153-60 PMID: 9609124
  110. Weight loss reduces abdominal fat and improves insulin action in middle-aged and older men with impaired glucose tolerance.
    Metabolism. 1995 Nov;44(11):1502-8 PMID: 7476341
  111. Effects of contractile activity on tyrosine phosphoproteins and PI 3-kinase activity in rat skeletal muscle.
    Am J Physiol. 1995 May;268(5 Pt 1):E987-95 PMID: 7762655
  112. The AMP-activated protein kinase alpha2 catalytic subunit controls whole-body insulin sensitivity.
    J Clin Invest. 2003 Jan;111(1):91-8 PMID: 12511592
  113. Mechanism for differential effect of protein-tyrosine phosphatase 1B on Akt versus mitogen-activated protein kinase in 3T3-L1 adipocytes.
    Endocrinology. 2002 Dec;143(12):4563-9 PMID: 12446583
  114. Normal insulin-dependent activation of Akt/protein kinase B, with diminished activation of phosphoinositide 3-kinase, in muscle in type 2 diabetes.
    J Clin Invest. 1999 Sep;104(6):733-41 PMID: 10491408
  115. Exercise modulates postreceptor insulin signaling and glucose transport in muscle-specific insulin receptor knockout mice.
    J Clin Invest. 1999 Nov;104(9):1257-64 PMID: 10545524
Article Info
Journal
Endocrine
Abbr.
Endocrine
ISSN
1355-008X
Published
2006-02-00
Pages
73-80
Language
English
Region
United States
NLM ID
9434444
Subset
IM
Grants
NIAMS NIH HHS · AR42238 · United States
NIAMS NIH HHS · AR45670 · United States
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