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J Clin Invest. 1989 May; 83(5): 1717–1723.
doi: 10.1172/JCI114072.
PMCID: PMC303881
Acute effects of insulin-like growth factor I on glucose and amino acid metabolism in the awake fasted rat. Comparison with insulin.
R Jacob, E Barrett, G Plewe, K D Fagin, and R S Sherwin
Department of Medicine, Yale University School of Medicine, New Haven, Connecticut 06510, USA.
Abstract
To elucidate the acute metabolic actions of insulin-like growth factor I (IGF-I), we administered a primed (250 micrograms/kg), continuous (5 micrograms/kg.min) infusion of human recombinant (Thr 59) IGF-I or saline to awake, chronically catheterized 24-h fasted rats for 90 min. IGF-I was also infused while maintaining euglycemia (glucose clamp technique) and its effects were compared to those of insulin. IGF-I infusion caused a twofold rise in IGF-I levels and a 75-85% decrease in plasma insulin. When IGF-I alone was given, plasma glucose fell by 30-40 mg/dl (P less than 0.005) due to a transient twofold increase (P less than 0.05) in glucose uptake; hepatic glucose production and plasma FFA levels remained unchanged. IGF-I infusion with maintenance of euglycemia produced a sustained rise in glucose uptake and a marked stimulation of [3-3H]glucose incorporation into tissue glycogen, but still failed to suppress glucose production and FFA levels. IGF-I also produced a generalized 30-40% reduction in plasma amino acids, regardless of whether or not hypoglycemia was prevented. This was associated with a decrease in leucine flux and a decline in the incorporation of [1-14C]leucine into muscle and liver protein (P less than 0.05). When insulin was infused in a dosage that mimicked the rise in glucose uptake seen with IGF-I, nearly identical changes in amino acid metabolism occurred. However, insulin suppressed glucose production by 65% and FFA levels by 40% (P less than 0.001). Furthermore, insulin was less effective than IGF-I in promoting glycogen synthesis. We conclude that (a) IGF-I produces hypoglycemia by selectively enhancing glucose uptake; (b) IGF-I is relatively ineffective in suppressing hepatic glucose production or FFA levels; and (c) IGF-I, like insulin, lowers circulating amino acids by reducing protein breakdown rather than by stimulating protein synthesis. Thus, IGF-I's metabolic actions in fasted rats are readily distinguished from insulin.
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  • Meuli, C; Froesch, ER. Insulin and nonsuppressible insulin-like activity (NSILA-S) stimulate the same glucose transport system via two separate receptors in rat heart. Biochem Biophys Res Commun. 1977 Apr 11;75(3):689–695. [PubMed]
  • Zapf, J; Schoenle, E; Froesch, ER. Insulin-like growth factors I and II: some biological actions and receptor binding characteristics of two purified constituents of nonsuppressible insulin-like activity of human serum. Eur J Biochem. 1978 Jun 15;87(2):285–296. [PubMed]
  • Poggi, C; Le Marchand-Brustel, Y; Zapf, J; Froesch, ER; Freychet, P. Effects and binding of insulin-like growth factor I in the isolated soleus muscle of lean and obese mice: comparison with insulin. Endocrinology. 1979 Sep;105(3):723–730. [PubMed]
  • Zapf, J; Froesch, ER; Humbel, RE. The insulin-like growth factors (IGF) of human serum: chemical and biological characterization and aspects of their possible physiological role. Curr Top Cell Regul. 1981;19:257–309. [PubMed]
  • Rechler, MM; Nissley, SP; King, GL; Moses, AC; Van Obberghen-Schilling, EE; Romanus, JA; Knight, AB; Short, PA; White, RM. Multiplication stimulating activity (MSA) from the BRL 3A rat liver cell line: relation to human somatomedins and insulin. J Supramol Struct Cell Biochem. 1981;15(3):253–286. [PubMed]
  • Guenther, HL; Guenther, HE; Froesch, ER; Fleisch, H. Effect of insulin-like growth factor on collagen and glycosaminoglycan synthesis by rabbit articular chondrocytes in culture. Experientia. 1982 Aug 15;38(8):979–981. [PubMed]
  • King, GL; Kahn, CR; Rechler, MM; Nissley, SP. Direct demonstration of separate receptors for growth and metabolic activities of insulin and multiplication-stimulating activity (an insulinlike growth factor) using antibodies to the insulin receptor. J Clin Invest. 1980 Jul;66(1):130–140. [PubMed]
  • Zapf, J; Schoenle, E; Waldvogel, M; Sand, I; Froesch, ER. Effect of trypsin treatment of rat adipocytes on biological effects and binding of insulin and insulin-like growth factors: further evidence for the action of insulin-like growth factors through the insulin receptor. Eur J Biochem. 1981 Jan;113(3):605–609. [PubMed]
  • Yu, KT; Czech, MP. The type I insulin-like growth factor receptor mediates the rapid effects of multiplication-stimulating activity on membrane transport systems in rat soleus muscle. J Biol Chem. 1984 Mar 10;259(5):3090–3095. [PubMed]
  • Bolinder, J; Lindblad, A; Engfeldt, P; Arner, P. Studies of acute effects of insulin-like growth factors I and II in human fat cells. J Clin Endocrinol Metab. 1987 Oct;65(4):732–737. [PubMed]
  • Froesch, ER; Müller, WA; Bürgi, H; Waldvogel, M; Labhart, A. Non-suppressible insulin-like activity of human serum. II. Biological properties of plasma extracts with non-suppressible insulin-like activity. Biochim Biophys Acta. 1966 Jun 29;121(2):360–374. [PubMed]
  • Oelz, O; Jakob, A; Froesch, ER. Nonsuppressible insulin-like activity (NSILA) of human serum. V. Hypoglycaemia and preferential metabolic stimulation of muscle by NSILA-S. Eur J Clin Invest. 1970 Mar;1(1):48–53. [PubMed]
  • Zapf, J; Hauri, C; Waldvogel, M; Froesch, ER. Acute metabolic effects and half-lives of intravenously administered insulinlike growth factors I and II in normal and hypophysectomized rats. J Clin Invest. 1986 Jun;77(6):1768–1775. [PubMed]
  • Guler, HP; Zapf, J; Froesch, ER. Short-term metabolic effects of recombinant human insulin-like growth factor I in healthy adults. N Engl J Med. 1987 Jul 16;317(3):137–140. [PubMed]
  • Rizza, RA; Mandarino, LJ; Gerich, JE. Dose-response characteristics for effects of insulin on production and utilization of glucose in man. Am J Physiol. 1981 Jun;240(6):E630–E639. [PubMed]
  • Van den Brande, JL; van Buul-Offers, S. Effect of growth hormone and peptide fractions containing somatomedin activity on growth and cartilage metabolism of Snell dwarfmice. Acta Endocrinol (Copenh). 1979 Oct;92(2):242–257. [PubMed]
  • Schoenle, E; Zapf, J; Humbel, RE; Froesch, ER. Insulin-like growth factor I stimulates growth in hypophysectomized rats. Nature. 1982 Mar 18;296(5854):252–253. [PubMed]
  • Scheiwiller, E; Guler, HP; Merryweather, J; Scandella, C; Maerki, W; Zapf, J; Froesch, ER. Growth restoration of insulin-deficient diabetic rats by recombinant human insulin-like growth factor I. Nature. 1986 Sep 11;323(6084):169–171. [PubMed]
  • Peters, MA; Lau, EP; Snitman, DL; Van Wyk, JJ; Underwood, LE; Russell, WE; Svoboda, ME. Expression of a biologically active analogue of somatomedin-C/insulin-like growth factor I. Gene. 1985;35(1-2):83–89. [PubMed]
  • Smith, D; Rossetti, L; Ferrannini, E; Johnson, CM; Cobelli, C; Toffolo, G; Katz, LD; DeFronzo, RA. In vivo glucose metabolism in the awake rat: tracer and insulin clamp studies. Metabolism. 1987 Dec;36(12):1167–1174. [PubMed]
  • Ferrannini, E; DeFronzo, RA; Sherwin, RS. Transient hepatic response to glucagon in man: role of insulin and hyperglycemia. Am J Physiol. 1982 Feb;242(2):E73–E81. [PubMed]
  • NOVAK, M. COLORIMETRIC ULTRAMICRO METHOD FOR THE DETERMINATION OF FREE FATTY ACIDS. J Lipid Res. 1965 Jul;6:431–433. [PubMed]
  • Furlanetto, RW; Underwood, LE; Van Wyk, JJ; D'Ercole, AJ. Estimation of somatomedin-C levels in normals and patients with pituitary disease by radioimmunoassay. J Clin Invest. 1977 Sep;60(3):648–657. [PubMed]
  • WALAAS, O; WALAAS, E. Effect of epinephrine on rat diaphragm. J Biol Chem. 1950 Dec;187(2):769–776. [PubMed]
  • Lust, WD; Passonneau, JV; Crites, SK. The measurement of glycogen in tissues by amylo-alpha-1,4-alpha-1,6-glucosidase after the destruction of preexisting glucose. Anal Biochem. 1975 Sep;68(1):328–331. [PubMed]
  • Morgan, HE; Earl, DC; Broadus, A; Wolpert, EB; Giger, KE; Jefferson, LS. Regulation of protein synthesis in heart muscle. I. Effect of amino acid levels on protein synthesis. J Biol Chem. 1971 Apr 10;246(7):2152–2162. [PubMed]
  • Radziuk, J; Norwich, KH; Vranic, M. Experimental validation of measurements of glucose turnover in nonsteady state. Am J Physiol. 1978 Jan;234(1):E84–E93. [PubMed]
  • Castellino, P; Luzi, L; Simonson, DC; Haymond, M; DeFronzo, RA. Effect of insulin and plasma amino acid concentrations on leucine metabolism in man. Role of substrate availability on estimates of whole body protein synthesis. J Clin Invest. 1987 Dec;80(6):1784–1793. [PubMed]
  • Martin, AF; Rabinowitz, M; Blough, R; Prior, G; Zak, R. Measurements of half-life of rat cardiac myosin heavy chain with leucyl-tRNA used as precursor pool. J Biol Chem. 1977 May 25;252(10):3422–3429. [PubMed]
  • Saccà, L; Sherwin, R; Hendler, R; Felig, P. Influence of continuous physiologic hyperinsulinemia on glucose kinetics and counterregulatory hormones in normal and diabetic humans. J Clin Invest. 1979 May;63(5):849–857. [PubMed]
  • DeFronzo, RA; Ferrannini, E; Hendler, R; Wahren, J; Felig, P. Influence of hyperinsulinemia, hyperglycemia, and the route of glucose administration on splanchnic glucose exchange. Proc Natl Acad Sci U S A. 1978 Oct;75(10):5173–5177. [PubMed]
  • Kruszynska, YT; Home, PD; Alberti, KG. In vivo regulation of liver and skeletal muscle glycogen synthase activity by glucose and insulin. Diabetes. 1986 Jun;35(6):662–667. [PubMed]
  • Caro, JF; Poulos, J; Ittoop, O; Pories, WJ; Flickinger, EG; Sinha, MK. Insulin-like growth factor I binding in hepatocytes from human liver, human hepatoma, and normal, regenerating, and fetal rat liver. J Clin Invest. 1988 Apr;81(4):976–981. [PubMed]
  • Williamson, JR; Kreisberg, RA; Felts, PW. Mechanism for the stimulation of gluconeogenesis by fatty acids in perfused rat liver. Proc Natl Acad Sci U S A. 1966 Jul;56(1):247–254. [PubMed]
  • Chiasson, JL; Atkinson, RL; Cherrington, AD; Keller, U; Sinclair-Smith, BC; Lacy, WW; Liljenquist, JE. Effects of insulin at two dose levels on gluconeogenesis from alanine in fasting man. Metabolism. 1980 Sep;29(9):810–818. [PubMed]
  • Chiasson, JL; Liljenquist, JE; Finger, FE; Lacy, WW. Differential sensitivity of glycogenolysis and gluconeogenesis to insulin infusions in dogs. Diabetes. 1976 Apr;25(4):283–291. [PubMed]
  • Schwenk, WF; Tsalikian, E; Beaufrere, B; Haymond, MW. Recycling of an amino acid label with prolonged isotope infusion: implications for kinetic studies. Am J Physiol. 1985 Apr;248(4 Pt 1):E482–E487. [PubMed]
  • Abumrad, NN; Jefferson, LS; Rannels, SR; Williams, PE; Cherrington, AD; Lacy, WW. Role of insulin in the regulation of leucine kinetics in the conscious dog. J Clin Invest. 1982 Nov;70(5):1031–1041. [PubMed]
  • Fukagawa, NK; Minaker, KL; Rowe, JW; Goodman, MN; Matthews, DE; Bier, DM; Young, VR. Insulin-mediated reduction of whole body protein breakdown. Dose-response effects on leucine metabolism in postabsorptive men. J Clin Invest. 1985 Dec;76(6):2306–2311. [PubMed]
  • Copeland, KC; Underwood, LE; Van Wyk, JJ. Induction of immunoreactive somatomedin C human serum by growth hormone: dose-response relationships and effect on chromatographic profiles. J Clin Endocrinol Metab. 1980 Apr;50(4):690–697. [PubMed]
  • ZIERLER, KL; RABINOWITZ, D. EFFECT OF VERY SMALL CONCENTRATIONS OF INSULIN ON FOREARM METABOLISM. PERSISTENCE OF ITS ACTION ON POTASSIUM AND FREE FATTY ACIDS WITHOUT ITS EFFECT ON GLUCOSE. J Clin Invest. 1964 May;43:950–962. [PubMed]
  • Li, JB; Higgins, JE; Jefferson, LS. Changes in protein turnover in skeletal muscle in response to fasting. Am J Physiol. 1979 Mar;236(3):E222–E228. [PubMed]
  • Aulick, LH; Wilmore, DW. Increased peripheral amino acid release following burn injury. Surgery. 1979 May;85(5):560–565. [PubMed]