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Published in: Diabetologia 10/2005

01-10-2005 | Article

Glucocorticoid-induced insulin resistance in skeletal muscles: defects in insulin signalling and the effects of a selective glycogen synthase kinase-3 inhibitor

Authors: J. Ruzzin, A. S. Wagman, J. Jensen

Published in: Diabetologia | Issue 10/2005

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Abstract

Aims/hypothesis

Treatment with glucocorticoids, especially at high doses, induces insulin resistance. The aims of the present study were to identify the potential defects in insulin signalling that contribute to dexamethasone-induced insulin resistance in skeletal muscles, and to investigate whether the glycogen synthase-3 (GSK-3) inhibitor CHIR-637 could restore insulin-stimulated glucose metabolism.

Materials and methods

Skeletal muscles were made insulin-resistant by treating male Wistar rats with dexamethasone, a glucocorticoid analogue, for 12 days. Insulin-stimulated glucose uptake, glycogen synthesis and insulin signalling were studied in skeletal muscles in vitro.

Results

Dexamethasone treatment decreased the ability of insulin to stimulate glucose uptake, glycogen synthesis and glycogen synthase fractional activity. In addition, the dephosphorylation of glycogen synthase by insulin was blocked. These defects were paralleled by reduced insulin-stimulated protein kinase B (PKB) and GSK-3 phosphorylation. While expression of PKB, GSK-3 and glycogen synthase was not reduced by dexamethasone treatment, expression of the p85α subunit of phosphatidylinositol 3-kinase (PI 3-kinase) was increased. Inhibition of GSK-3 by CHIR-637 increased glycogen synthase fractional activity in soleus muscle from normal and dexamethasone-treated rats, although the effect was more pronounced in control rats. CHIR-637 did not improve insulin-stimulated glucose uptake in muscles from dexamethasone-treated rats.

Conclusions/interpretation

We demonstrated that chronic dexamethasone treatment impairs insulin-stimulated PKB and GSK-3 phosphorylation, which may contribute to insulin resistance in skeletal muscles. Acute pharmacological inhibition of GSK-3 activated glycogen synthase in muscles from dexamethasone-treated rats, but GSK-3 inhibition did not restore insulin-stimulated glucose uptake.
Literature
1.
go back to reference Nosadini R, Del Prato S, Tiengo A et al (1983) Insulin resistance in Cushing’s syndrome. J Clin Endocrinol Metab 57:529–536PubMed Nosadini R, Del Prato S, Tiengo A et al (1983) Insulin resistance in Cushing’s syndrome. J Clin Endocrinol Metab 57:529–536PubMed
2.
go back to reference Quddusi S, Browne P, Toivola B et al (1998) Cushing syndrome due to surreptitious glucocorticoid administration. Arch Intern Med 158:294–296CrossRefPubMed Quddusi S, Browne P, Toivola B et al (1998) Cushing syndrome due to surreptitious glucocorticoid administration. Arch Intern Med 158:294–296CrossRefPubMed
3.
go back to reference Pagano G, Cavallo-Perin P, Cassader M et al (1983) An in vivo and in vitro study of the mechanism of prednisone-induced insulin resistance in healthy subjects. J Clin Invest 72:1814–1820PubMed Pagano G, Cavallo-Perin P, Cassader M et al (1983) An in vivo and in vitro study of the mechanism of prednisone-induced insulin resistance in healthy subjects. J Clin Invest 72:1814–1820PubMed
4.
go back to reference Rosmond R (2003) Stress induced disturbances of the HPA axis: a pathway to Type 2 diabetes? Med Sci Monit 9:RA35–RA39PubMed Rosmond R (2003) Stress induced disturbances of the HPA axis: a pathway to Type 2 diabetes? Med Sci Monit 9:RA35–RA39PubMed
5.
go back to reference Kusunoki M, Cooney GJ, Hara T et al (1995) Amelioration of high-fat feeding-induced insulin resistance in skeletal muscle with the antiglucocorticoid RU486. Diabetes 44:718–720PubMed Kusunoki M, Cooney GJ, Hara T et al (1995) Amelioration of high-fat feeding-induced insulin resistance in skeletal muscle with the antiglucocorticoid RU486. Diabetes 44:718–720PubMed
6.
go back to reference Buckbinder L, Robinson RP (2002) The glucocorticoid receptor: molecular mechanism and new therapeutic opportunities. Curr Drug Targets Inflamm Allergy 1:127–136CrossRefPubMed Buckbinder L, Robinson RP (2002) The glucocorticoid receptor: molecular mechanism and new therapeutic opportunities. Curr Drug Targets Inflamm Allergy 1:127–136CrossRefPubMed
7.
go back to reference Gower WR Jr (1993) Mechanism of glucocorticoid action. J Fla Med Assoc 80:697–700PubMed Gower WR Jr (1993) Mechanism of glucocorticoid action. J Fla Med Assoc 80:697–700PubMed
8.
go back to reference Bryant NJ, Govers R, James DE (2002) Regulated transport of the glucose transporter GLUT4. Nat Rev Mol Cell Biol 3:267–277CrossRefPubMed Bryant NJ, Govers R, James DE (2002) Regulated transport of the glucose transporter GLUT4. Nat Rev Mol Cell Biol 3:267–277CrossRefPubMed
9.
go back to reference Shepherd PR, Withers DJ, Siddle K (1998) Phosphoinositide 3-kinase: the key switch mechanism in insulin signalling. Biochem J 333:471–490PubMed Shepherd PR, Withers DJ, Siddle K (1998) Phosphoinositide 3-kinase: the key switch mechanism in insulin signalling. Biochem J 333:471–490PubMed
10.
go back to reference Cross DA, Alessi DR, Cohen P et al (1995) Inhibition of glycogen synthase kinase-3 by insulin mediated by protein kinase B. Nature 378:785–789CrossRefPubMed Cross DA, Alessi DR, Cohen P et al (1995) Inhibition of glycogen synthase kinase-3 by insulin mediated by protein kinase B. Nature 378:785–789CrossRefPubMed
11.
go back to reference Lawrence JC Jr, Roach PJ (1997) New insights into the role and mechanism of glycogen synthase activation by insulin. Diabetes 46:541–547PubMed Lawrence JC Jr, Roach PJ (1997) New insights into the role and mechanism of glycogen synthase activation by insulin. Diabetes 46:541–547PubMed
12.
go back to reference Jiang ZY, Zhou QL, Coleman KA et al (2003) Insulin signaling through Akt/protein kinase B analyzed by small interfering RNA-mediated gene silencing. Proc Natl Acad Sci U S A 100:7569–7574CrossRefPubMed Jiang ZY, Zhou QL, Coleman KA et al (2003) Insulin signaling through Akt/protein kinase B analyzed by small interfering RNA-mediated gene silencing. Proc Natl Acad Sci U S A 100:7569–7574CrossRefPubMed
13.
go back to reference Katome T, Obata T, Matsushima R et al (2003) Use of RNA interference-mediated gene silencing and adenoviral overexpression to elucidate the roles of AKT/protein kinase B isoforms in insulin actions. J Biol Chem 278:28312–28323CrossRefPubMed Katome T, Obata T, Matsushima R et al (2003) Use of RNA interference-mediated gene silencing and adenoviral overexpression to elucidate the roles of AKT/protein kinase B isoforms in insulin actions. J Biol Chem 278:28312–28323CrossRefPubMed
14.
go back to reference DeFronzo RA, Gunnarsson R, Bjorkman O et al (1985) Effects of insulin on peripheral and splanchnic glucose metabolism in noninsulin-dependent (type II) diabetes mellitus. J Clin Invest 76:149–155PubMed DeFronzo RA, Gunnarsson R, Bjorkman O et al (1985) Effects of insulin on peripheral and splanchnic glucose metabolism in noninsulin-dependent (type II) diabetes mellitus. J Clin Invest 76:149–155PubMed
15.
go back to reference Shulman GI, Rothman DL, Jue T et al (1990) Quantitation of muscle glycogen synthesis in normal subjects and subjects with non-insulin-dependent diabetes by 13C nuclear magnetic resonance spectroscopy. N Engl J Med 322:223–228PubMed Shulman GI, Rothman DL, Jue T et al (1990) Quantitation of muscle glycogen synthesis in normal subjects and subjects with non-insulin-dependent diabetes by 13C nuclear magnetic resonance spectroscopy. N Engl J Med 322:223–228PubMed
16.
go back to reference Haber RS, Weinstein SP (1992) Role of glucose transporters in glucocorticoid-induced insulin resistance. GLUT4 isoform in rat skeletal muscle is not decreased by dexamethasone. Diabetes 41:728–735PubMed Haber RS, Weinstein SP (1992) Role of glucose transporters in glucocorticoid-induced insulin resistance. GLUT4 isoform in rat skeletal muscle is not decreased by dexamethasone. Diabetes 41:728–735PubMed
17.
go back to reference Dimitriadis G, Leighton B, Parry-Billings M et al (1997) Effects of glucocorticoid excess on the sensitivity of glucose transport and metabolism to insulin in rat skeletal muscle. Biochem J 321:707–712PubMed Dimitriadis G, Leighton B, Parry-Billings M et al (1997) Effects of glucocorticoid excess on the sensitivity of glucose transport and metabolism to insulin in rat skeletal muscle. Biochem J 321:707–712PubMed
18.
go back to reference Leighton B, Challiss RA, Lozeman FJ et al (1987) Effects of dexamethasone treatment on insulin-stimulated rates of glycolysis and glycogen synthesis in isolated incubated skeletal muscles of the rat. Biochem J 246:551–554PubMed Leighton B, Challiss RA, Lozeman FJ et al (1987) Effects of dexamethasone treatment on insulin-stimulated rates of glycolysis and glycogen synthesis in isolated incubated skeletal muscles of the rat. Biochem J 246:551–554PubMed
19.
go back to reference Coderre L, Srivastava AK, Chiasson JL (1992) Effect of hypercorticism on regulation of skeletal muscle glycogen metabolism by insulin. Am J Physiol Endocrinol Metab 262:E427–E433 Coderre L, Srivastava AK, Chiasson JL (1992) Effect of hypercorticism on regulation of skeletal muscle glycogen metabolism by insulin. Am J Physiol Endocrinol Metab 262:E427–E433
20.
go back to reference Björnholm M, Kawano Y, Lehtihet M et al (1997) Insulin receptor substrate-1 phosphorylation and phosphatidylinositol 3-kinase activity in skeletal muscle from NIDDM subjects after in vivo insulin stimulation. Diabetes 46:524–527PubMed Björnholm M, Kawano Y, Lehtihet M et al (1997) Insulin receptor substrate-1 phosphorylation and phosphatidylinositol 3-kinase activity in skeletal muscle from NIDDM subjects after in vivo insulin stimulation. Diabetes 46:524–527PubMed
21.
go back to reference Goodyear LJ, Giorgino F, Sherman LA et al (1995) 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 95:2195–2204PubMed Goodyear LJ, Giorgino F, Sherman LA et al (1995) 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 95:2195–2204PubMed
22.
go back to reference Krook A, Kawano Y, Song XM et al (1997) Improved glucose tolerance restores insulin-stimulated Akt kinase activity and glucose transport in skeletal muscle from diabetic Goto–Kakizaki rats. Diabetes 46:2110–2114PubMed Krook A, Kawano Y, Song XM et al (1997) Improved glucose tolerance restores insulin-stimulated Akt kinase activity and glucose transport in skeletal muscle from diabetic Goto–Kakizaki rats. Diabetes 46:2110–2114PubMed
23.
go back to reference Krook A, Roth RA, Jiang XJ et al (1998) Insulin-stimulated Akt kinase activity is reduced in skeletal muscle from NIDDM subjects. Diabetes 47:1281–1286PubMed Krook A, Roth RA, Jiang XJ et al (1998) Insulin-stimulated Akt kinase activity is reduced in skeletal muscle from NIDDM subjects. Diabetes 47:1281–1286PubMed
24.
go back to reference Kruszynska YT, Worrall DS, Ofrecio J et al (2002) Fatty acid-induced insulin resistance: decreased muscle PI3K activation but unchanged Akt phosphorylation. J Clin Endocrinol Metab 87:226–234CrossRefPubMed Kruszynska YT, Worrall DS, Ofrecio J et al (2002) Fatty acid-induced insulin resistance: decreased muscle PI3K activation but unchanged Akt phosphorylation. J Clin Endocrinol Metab 87:226–234CrossRefPubMed
25.
go back to reference Nadler ST, Stoehr JP, Rabaglia ME et al (2001) Normal Akt/PKB with reduced PI3K activation in insulin-resistant mice. Am J Physiol Endocrinol Metab 281:E1249–E1254PubMed Nadler ST, Stoehr JP, Rabaglia ME et al (2001) Normal Akt/PKB with reduced PI3K activation in insulin-resistant mice. Am J Physiol Endocrinol Metab 281:E1249–E1254PubMed
26.
go back to reference Saad MJ, Folli F, Kahn JA et al (1993) Modulation of insulin receptor, insulin receptor substrate-1, and phosphatidylinositol 3-kinase in liver and muscle of dexamethasone-treated rats. J Clin Invest 92:2065–2072PubMed Saad MJ, Folli F, Kahn JA et al (1993) Modulation of insulin receptor, insulin receptor substrate-1, and phosphatidylinositol 3-kinase in liver and muscle of dexamethasone-treated rats. J Clin Invest 92:2065–2072PubMed
27.
go back to reference Henriksen EJ, Kinnick TR, Teachey MK et al (2003) Modulation of muscle insulin resistance by selective inhibition of GSK-3 in Zucker diabetic fatty rats. Am J Physiol Endocrinol Metab 284:E892–E900PubMed Henriksen EJ, Kinnick TR, Teachey MK et al (2003) Modulation of muscle insulin resistance by selective inhibition of GSK-3 in Zucker diabetic fatty rats. Am J Physiol Endocrinol Metab 284:E892–E900PubMed
28.
go back to reference Ring DB, Johnson KW, Henriksen EJ et al (2003) Selective glycogen synthase kinase 3 inhibitors potentiate insulin activation of glucose transport and utilization in vitro and in vivo. Diabetes 52:588–595PubMed Ring DB, Johnson KW, Henriksen EJ et al (2003) Selective glycogen synthase kinase 3 inhibitors potentiate insulin activation of glucose transport and utilization in vitro and in vivo. Diabetes 52:588–595PubMed
29.
go back to reference Cline GW, Johnson K, Regittnig W et al (2002) Effects of a novel glycogen synthase kinase-3 inhibitor on insulin-stimulated glucose metabolism in Zucker diabetic fatty (fa/fa) rats. Diabetes 51:2903–2910PubMed Cline GW, Johnson K, Regittnig W et al (2002) Effects of a novel glycogen synthase kinase-3 inhibitor on insulin-stimulated glucose metabolism in Zucker diabetic fatty (fa/fa) rats. Diabetes 51:2903–2910PubMed
30.
go back to reference Aslesen R, Jensen J (1998) Effects of epinephrine on glucose metabolism in contracting rat skeletal muscles. Am J Physiol Endocrinol Metab 275:E448–E456 Aslesen R, Jensen J (1998) Effects of epinephrine on glucose metabolism in contracting rat skeletal muscles. Am J Physiol Endocrinol Metab 275:E448–E456
31.
go back to reference Lowry OH, Passonneau JV (1972) A flexible system of enzymatic analysis, 1st edn. Academic, New York Lowry OH, Passonneau JV (1972) A flexible system of enzymatic analysis, 1st edn. Academic, New York
32.
go back to reference Franch J, Aslesen R, Jensen J (1999) Regulation of glycogen synthesis in rat skeletal muscle after glycogen-depleting contractile activity: effects of adrenaline on glycogen synthesis and activation of glycogen synthase and glycogen phosphorylase. Biochem J 344:231–235CrossRefPubMed Franch J, Aslesen R, Jensen J (1999) Regulation of glycogen synthesis in rat skeletal muscle after glycogen-depleting contractile activity: effects of adrenaline on glycogen synthesis and activation of glycogen synthase and glycogen phosphorylase. Biochem J 344:231–235CrossRefPubMed
33.
go back to reference Whitehead JP, Soos MA, Aslesen R et al (2000) Contraction inhibits insulin-stimulated insulin receptor substrate-1/2-associated phosphoinositide 3-kinase activity, but not protein kinase B activation or glucose uptake, in rat muscle. Biochem J 349:775–781PubMed Whitehead JP, Soos MA, Aslesen R et al (2000) Contraction inhibits insulin-stimulated insulin receptor substrate-1/2-associated phosphoinositide 3-kinase activity, but not protein kinase B activation or glucose uptake, in rat muscle. Biochem J 349:775–781PubMed
34.
go back to reference Laemmli UK (1970) Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature 227:680–685PubMed Laemmli UK (1970) Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature 227:680–685PubMed
35.
go back to reference Wagman AS, Johnson KW, Bussiere DE (2004) Discovery and development of GSK3 inhibitors for the treatment of type 2 diabetes. Curr Pharm Des 10:1105–1137CrossRefPubMed Wagman AS, Johnson KW, Bussiere DE (2004) Discovery and development of GSK3 inhibitors for the treatment of type 2 diabetes. Curr Pharm Des 10:1105–1137CrossRefPubMed
36.
go back to reference Danforth W (1965) Glycogen synthetase activity in skeletal muscle. Interconversion of two forms and control of glycogen synthesis. J Biol Chem 240:588–593PubMed Danforth W (1965) Glycogen synthetase activity in skeletal muscle. Interconversion of two forms and control of glycogen synthesis. J Biol Chem 240:588–593PubMed
37.
go back to reference Coderre L, Srivastava AK, Chiasson JL (1992) Effect of hypercorticism on regulation of skeletal muscle glycogen metabolism by epinephrine. Am J Physiol Endocrinol Metab 262:E434–E439 Coderre L, Srivastava AK, Chiasson JL (1992) Effect of hypercorticism on regulation of skeletal muscle glycogen metabolism by epinephrine. Am J Physiol Endocrinol Metab 262:E434–E439
38.
go back to reference Jensen J, Aslesen R, Jebens E et al (1999) Adrenaline-mediated glycogen phosphorylase activation is enhanced in rat soleus muscle with increased glycogen content. Biochim Biophys Acta 1472:215–221PubMed Jensen J, Aslesen R, Jebens E et al (1999) Adrenaline-mediated glycogen phosphorylase activation is enhanced in rat soleus muscle with increased glycogen content. Biochim Biophys Acta 1472:215–221PubMed
39.
go back to reference Glass DJ (2003) Signalling pathways that mediate skeletal muscle hypertrophy and atrophy. Nat Cell Biol 5:87–90CrossRefPubMed Glass DJ (2003) Signalling pathways that mediate skeletal muscle hypertrophy and atrophy. Nat Cell Biol 5:87–90CrossRefPubMed
40.
go back to reference Garofalo RS, Orena SJ, Rafidi K et al (2003) Severe diabetes, age-dependent loss of adipose tissue, and mild growth deficiency in mice lacking Akt2/PKB beta. J Clin Invest 112:197–208CrossRefPubMed Garofalo RS, Orena SJ, Rafidi K et al (2003) Severe diabetes, age-dependent loss of adipose tissue, and mild growth deficiency in mice lacking Akt2/PKB beta. J Clin Invest 112:197–208CrossRefPubMed
41.
go back to reference Park KS, Ciaraldi TP, Carter L et al (2000) Induction of insulin resistance in human skeletal muscle cells by downregulation of glycogen synthase protein expression. Metabolism 49:962–968CrossRefPubMed Park KS, Ciaraldi TP, Carter L et al (2000) Induction of insulin resistance in human skeletal muscle cells by downregulation of glycogen synthase protein expression. Metabolism 49:962–968CrossRefPubMed
42.
go back to reference Nikoulina SE, Ciaraldi TP, Mudaliar S et al (2000) Potential role of glycogen synthase kinase-3 in skeletal muscle insulin resistance of type 2 diabetes. Diabetes 49:263–271PubMed Nikoulina SE, Ciaraldi TP, Mudaliar S et al (2000) Potential role of glycogen synthase kinase-3 in skeletal muscle insulin resistance of type 2 diabetes. Diabetes 49:263–271PubMed
43.
go back to reference Ivy JL (2004) Muscle insulin resistance amended with exercise training: role of GLUT4 expression. Med Sci Sports Exerc 36:1207–1211PubMed Ivy JL (2004) Muscle insulin resistance amended with exercise training: role of GLUT4 expression. Med Sci Sports Exerc 36:1207–1211PubMed
44.
go back to reference Giorgino F, Pedrini MT, Matera L et al (1997) Specific increase in p85alpha expression in response to dexamethasone is associated with inhibition of insulin-like growth factor-I stimulated phosphatidylinositol 3-kinase activity in cultured muscle cells. J Biol Chem 272:7455–7463CrossRefPubMed Giorgino F, Pedrini MT, Matera L et al (1997) Specific increase in p85alpha expression in response to dexamethasone is associated with inhibition of insulin-like growth factor-I stimulated phosphatidylinositol 3-kinase activity in cultured muscle cells. J Biol Chem 272:7455–7463CrossRefPubMed
45.
go back to reference Ueki K, Algenstaedt P, Mauvais-Jarvis F et al (2000) Positive and negative regulation of phosphoinositide 3-kinase-dependent signaling pathways by three different gene products of the p85alpha regulatory subunit. Mol Cell Biol 20:8035–8046CrossRefPubMed Ueki K, Algenstaedt P, Mauvais-Jarvis F et al (2000) Positive and negative regulation of phosphoinositide 3-kinase-dependent signaling pathways by three different gene products of the p85alpha regulatory subunit. Mol Cell Biol 20:8035–8046CrossRefPubMed
46.
go back to reference Mauvais-Jarvis F, Ueki K, Fruman DA et al (2002) Reduced expression of the murine p85alpha subunit of phosphoinositide 3-kinase improves insulin signaling and ameliorates diabetes. J Clin Invest 109:141–149CrossRefPubMed Mauvais-Jarvis F, Ueki K, Fruman DA et al (2002) Reduced expression of the murine p85alpha subunit of phosphoinositide 3-kinase improves insulin signaling and ameliorates diabetes. J Clin Invest 109:141–149CrossRefPubMed
47.
go back to reference Terauchi Y, Tsuji Y, Satoh S et al (1999) Increased insulin sensitivity and hypoglycaemia in mice lacking the p85 alpha subunit of phosphoinositide 3-kinase. Nat Genet 21:230–235CrossRefPubMed Terauchi Y, Tsuji Y, Satoh S et al (1999) Increased insulin sensitivity and hypoglycaemia in mice lacking the p85 alpha subunit of phosphoinositide 3-kinase. Nat Genet 21:230–235CrossRefPubMed
48.
go back to reference Nikoulina SE, Ciaraldi TP, Mudaliar S et al (2002) Inhibition of glycogen synthase kinase 3 improves insulin action and glucose metabolism in human skeletal muscle. Diabetes 51:2190–2198 Nikoulina SE, Ciaraldi TP, Mudaliar S et al (2002) Inhibition of glycogen synthase kinase 3 improves insulin action and glucose metabolism in human skeletal muscle. Diabetes 51:2190–2198
49.
go back to reference Eldar-Finkelman H, Krebs EG (1997) Phosphorylation of insulin receptor substrate 1 by glycogen synthase kinase 3 impairs insulin action. Proc Natl Acad Sci U S A 94:9660–9664CrossRefPubMed Eldar-Finkelman H, Krebs EG (1997) Phosphorylation of insulin receptor substrate 1 by glycogen synthase kinase 3 impairs insulin action. Proc Natl Acad Sci U S A 94:9660–9664CrossRefPubMed
Metadata
Title
Glucocorticoid-induced insulin resistance in skeletal muscles: defects in insulin signalling and the effects of a selective glycogen synthase kinase-3 inhibitor
Authors
J. Ruzzin
A. S. Wagman
J. Jensen
Publication date
01-10-2005
Publisher
Springer-Verlag
Published in
Diabetologia / Issue 10/2005
Print ISSN: 0012-186X
Electronic ISSN: 1432-0428
DOI
https://doi.org/10.1007/s00125-005-1886-0

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