dc.creatorMotta K.
dc.creatorBarbosa A.M.
dc.creatorBobinski F.
dc.creatorBoschero A.C.
dc.creatorRafacho A.
dc.date2015
dc.date2015-06-25T12:52:11Z
dc.date2015-11-26T15:00:59Z
dc.date2015-06-25T12:52:11Z
dc.date2015-11-26T15:00:59Z
dc.date.accessioned2018-03-28T22:12:08Z
dc.date.available2018-03-28T22:12:08Z
dc.identifier
dc.identifierJournal Of Steroid Biochemistry And Molecular Biology. Elsevier Ltd, v. 145, n. , p. 1 - 12, 2015.
dc.identifier9600760
dc.identifier10.1016/j.jsbmb.2014.09.024
dc.identifierhttp://www.scopus.com/inward/record.url?eid=2-s2.0-84907856320&partnerID=40&md5=ef8ae421f5635c1f549fae8596898b43
dc.identifierhttp://www.repositorio.unicamp.br/handle/REPOSIP/85352
dc.identifierhttp://repositorio.unicamp.br/jspui/handle/REPOSIP/85352
dc.identifier2-s2.0-84907856320
dc.identifier.urihttp://repositorioslatinoamericanos.uchile.cl/handle/2250/1256236
dc.descriptionObjectives Peripheral insulin resistance (IR) is one of the main side effects caused by glucocorticoid (GC)-based therapies, and the molecular mechanisms of GC-induced IR are not yet fully elucidated. Thus, we aimed to investigate the effects of dexamethasone treatment on the main components of insulin and inflammatory signaling in the adipose tissue of rats. Materials/methods Male Wistar rats received daily injections of dexamethasone (1 mg/kg body weight (b.w.), intraperitoneally (i.p.)) for 5 days (DEX), whereas control rats received saline (CTL). The metabolic status was investigated, and the epididymal fat fragments were collected for lipolysis and western blot analyses. Results The DEX rats became hyperglycemic, hyperinsulinemic, insulin resistant and glucose intolerant, compared with the CTL rats (P < 0.05). The basal glycerol release in the fat fragments was 1.5-fold higher in the DEX rats (P < 0.05). The phosphorylation of protein kinase B (PKB) at ser473 decreased by 44%, whereas, the phosphorylation of insulin receptor substrate (IRS)-1 at ser307 increased by 93% in the adipose tissue of the DEX rats after an oral bolus of glucose (P < 0.05). The basal phosphorylation of c-jun-N-terminal kinase (JNK) and inhibitor of nuclear factor kappa-B (IKKβ) proteins was reduced by 46% and 58%, respectively, in the adipose tissue of the DEX rats (P < 0.05). This was paralleled with a significant reduction (47%) in the glucocorticoid receptor (GR) protein content in the adipose tissue of the DEX rats (P < 0.05). Conclusion The insulin-resistant status of rats induced by dexamethasone administration have PKB and IRS-1 activity attenuated in epididymal fat without increases in the phosphorylation of the proinflammatory signals JNK and IKKβ.
dc.description145
dc.description
dc.description1
dc.description12
dc.descriptionBaxter, J.D., Forsham, P.H., Tissue effects of glucocorticoids (1972) Am. J. Med., 53, pp. 573-589
dc.descriptionWitchel, S.F., Defranco, D.B., Mechanisms of disease: Regulation of glucocorticoid and receptor levels - Impact on the metabolic syndrome (2006) Nat. Clin. Pract. Endocrinol. Metab., 11, pp. 621-631
dc.descriptionBurén, J., Lai, Y.C., Lundgren, M., Eriksson, J.W., Jensen, J., Insulin action and signalling in fat and muscle from dexamethasone-treated rats (2008) Arch. Biochem. Biophys., 474, pp. 91-101
dc.descriptionBurén, J., Liu, H.X., Jensen Eriksson, J.W., Dexamethasone impairs insulin signaling and glucose transport by depletion of insulin receptor substrate-1, phosphatidylinositol 3-kinase and protein kinase B in primary cultured rat adipocytes (2002) Eur. J. Endocrinol., 146, pp. 419-429
dc.descriptionShepherd, P.R., Mechanisms regulating phosphoinositide 3-kinase signalling in insulin-sensitive tissues (2005) Acta Physiol. Scand., 183, pp. 3-12
dc.descriptionCoffer, P.J., Jin, J., Woodgett, J.R., Protein kinase B (c-Akt): A multifunctional mediator of phosphatidylinositol 3-kinase activation (1998) Biochem. J., 335, pp. 1-13
dc.descriptionLawlor, M.A., Alessi, D.R., PKB/Akt: A key mediator of cell proliferation, survival and insulin responses? (2001) J. Cell Sci., 16, pp. 2903-2910
dc.descriptionChou, M.M., Hou, W., Johnson, J., Regulation of protein kinase C zeta by PI 3-kinase and PDK-1 (1998) Curr. Biol., 19, pp. 1069-1077
dc.descriptionSarbassov, D., Ali, S.M., Sabatini, D.M., Growing roles for the mTOR pathway (2005) Curr. Opin. Cell Biol., 7, pp. 596-603
dc.descriptionCohen, P., Alessi, D.R., Cross, D.A.E., PDKl, one of the missing links in insulin signal transduction? (2005) FEBS Lett., 410, pp. 3-10
dc.descriptionSaltiel, A.R., Kahn, C.R., Insulin signalling and the regulation of glucose and lipid metabolism (2001) Nature, 414, pp. 799-806
dc.descriptionTsukumo, D.M., Carvalho-Filho, M.A., Carvalheira, J.B., Prada, P.O., Hirabara, S.M., Schenka, A.A., Araújo, E.P., Saad, M.J., Loss-of-function mutation in toll-like receptor 4 prevents diet-induced obesity and insulin resistance (2007) Diabetes, 56, pp. 1986-1998
dc.descriptionFesta, A., D'Agostino, R., Jr., Williams, K., Karter, A.J., Mayer-Davis, E.J., Tracy, R.P., Haffner, S.M., The relation of body fat mass and distribution to markers of chronic inflammation (2001) Int. J. Obes. Relat. Metab. Disord., 25, pp. 1407-1415
dc.descriptionArkan, M.C., Hevener, A.L., Greten, F.R., Maeda, S., Li, Z.W., Long, J.M., Wynshaw-Boris, A., Karin, M., IKK-β links inflammation to obesity-induced insulin (2005) Nat. Med., 11, pp. 191-198
dc.descriptionMedzhitov, R., Toll-like receptors and innate immunity (2001) Nat. Rev. Immunol., 1, pp. 135-145
dc.descriptionChen, L.W., Egan, L., Li, Z.W., Greten, F.R., Kagnoff, M.F., Karin, M., The two faces of IKK and NF-(B inhibition: Prevention of systemic inflammation but increased local injury following intestinal ischemia-reperfusion (2003) Nat. Med., 9, pp. 575-581
dc.descriptionDavis, R.J., Signal transduction by the JNK group of MAP kinases (2000) Cell, 103, pp. 239-252
dc.descriptionAguirre, V., Uchida, T., Yenush, L., Davis, R., White, M.F., Mechanisms of signal transduction: The c-Jun NH2-terminal kinase promotes insulin resistance during association with insulin receptor substrate-1 and phosphorylation of ser 307 (2000) J. Biol. Chem., 275, pp. 9047-9054
dc.descriptionGao, Z., Hwang, D., Bataille, F., Lefevre, M., York, D., Quon, M.J., Ye, J., Mechanisms of signal transduction: Serine phosphorylation of insulin receptor substrate 1 (IRS-1) by inhibitor KappaB kinase (IKK) complex (2002) J. Biol. Chem., 277, pp. 48115-48121
dc.descriptionHussey, S.E., Liang, H., Costford, S.R., Klip, A., Defronzo, R.A., Sanchez-Avila, A., Ely, B., Musi, N., TAK-242, a small molecule inhibitor of toll-like receptor-4 signaling, unveils similarities and differences in lipopolysaccharide- and lipid-induced inflammation and insulin resistance in muscle cells (2013) Biosci. Rep., 33, pp. 37-47
dc.descriptionCaperuto, L.C., Anhê, G.F., Amanso, A.M., Ribeiro, L.M., Medina, M.C., Souza, L.C., Carvalho, O.M., Carvalho, C.R., Distinct regulation of IRS proteins in adipose tissue from obese aged and dexamethasone-treated rats (2006) Endocrine, 29, pp. 391-398
dc.descriptionSaklatvala, J., Glucocorticoids: Do we know how they work? (2002) Arthritis Res., 4, pp. 146-150
dc.descriptionKadmiel, M., Cidlowski, J.A., Glucocorticoid receptor signaling in health and disease (2013) Trends Pharmacol. Sci., 34, pp. 518-530
dc.descriptionFunder, J.W., Glucocorticoid receptors (1992) J. Steroid Biochem. Mol. Biol., 43, pp. 389-394
dc.descriptionRay, A., Prefontaine, K.E., Physical association and functional antagonism between the p65 subunit of transcription factor NF-kappa B and the glucocorticoid receptor (1994) Proc. Natl. Acad. Sci. U. S. A., 91, pp. 752-756
dc.descriptionYang-Yen, H.F., Chambard, J.C., Sun, Y.L., Smeal, T., Schmidt, T.J., Drouin, J., Karin, M., Transcriptional interference between c-Jun and the glucocorticoid receptor: Mutual inhibition of DNA binding due to direct protein-protein interaction (1990) Cell, 21, pp. 1205-1215
dc.descriptionOakley, R.H., Cidlowski, J.A., The biology of the glucocorticoid receptor: New signaling mechanisms in health and disease (2013) J. Allergy Clin. Immunol., 132, pp. 1033-1044
dc.descriptionTornello, S., Orti, E., De Nicola, A.F., Rainbow, T.C., McEwen, B.S., Regulation of glucocorticoid receptors in brain by corticosterone treatment of adrenalectomized rats (1982) Neuroendocrinology, 35, pp. 411-417
dc.descriptionSchacke, H., Docke, W.D., Asadullah, K., Mechanisms involved in the side effects of glucocorticoids (2002) Pharmacol. Ther., 96, pp. 23-43
dc.descriptionCzock, D., Keller, F., Rasche, F.M., Häussler, U., Pharmacokinetics and pharmacodynamics of systemically administered glucocorticoids (2005) Clin. Pharmacokinet., 44, pp. 61-98
dc.descriptionDe Paula, F.M., Boschero, A.C., Carneiro, E.M., Bosqueiro, J.R., Rafacho, A., Insulin signaling proteins in pancreatic islets of insulin-resistant rats induced by glucocorticoid (2011) Biol. Res., 44, pp. 251-257
dc.descriptionLo, S., Russell, J.C., Taylor, A.W., Determination of glycogen in small tissue samples (1970) J. Appl. Physiol., 28, pp. 234-236
dc.descriptionRafacho, A., Giozzet, V.A., Bosqueiro, B.A.C., Functional alterations in endocrine pancreas of rats with different degrees of dexamethasone-induced insulin resistance (2008) Pancreas, 36, pp. 284-293
dc.descriptionRafacho, A., Quallio, S., Ribeiro, D.L., Taboga, S.R., Paula, F.M., Boschero, A.C., Bosqueiro, J.R., The adaptive compensations in endocrine pancreas from glucocorticoid-treated rats are reversible after the interruption of treatment (2010) Acta Physiol. (Oxford), 200, pp. 223-235
dc.descriptionNagajyothi, F., Kuliawat, R., Kusminski, C.M., Machado, F.S., Desruisseaux, M.S., Zhao, D., Schwartz, G.J., Tanowitz, H.B., Alterations in glucose homeostasis in a murine model of Chagas disease (2013) Am. J. Pathol., 182, pp. 886-894
dc.descriptionFerreira, D.S., Amaral, F.G., Mesquita, C.C., Barbosa, A.P., Lellis-Santos, C., Turati, A.O., Santos, L.R., Anhê, G.F., Maternal melatonin programs the daily pattern of energy metabolism in adult offspring (2012) PLoS One, 7, p. 38795
dc.descriptionMatthews, D.R., Hosker, J.P., Rudenski, A.S., Naylor, B.A., Treacher, D.F., Turner, R.C., Homeostasis model assessment: Insulin resistance and beta-cell function from fasting plasma glucose and insulin concentrations in man (1985) Diabetologia, 28, pp. 412-419
dc.descriptionGuerrero-Romero, F., Simental-Mendía, L.E., González-Ortiz, M., Martínez-Abundis, E., Ramos-Zavala, M.G., Hernández-González, S.O., Jacques-Camarena, O., Rodríguez-Morán, M., The product of triglycerides and glucose, a simple measure of insulin sensitivity. Comparison with the euglycemic-hyperinsulinemic clamp (2010) J. Clin. Endocrinol. Metab., 95, pp. 3347-3351
dc.descriptionVaughan, M., The production and release of glycerol by adipose tissue incubated in vitro (1962) J. Biol. Chem., 237, pp. 3354-3358
dc.descriptionRafacho, A., Gonçalves-Neto, L.M., Ferreira, F.B., Protzek, A.O., Boschero, A.C., Nunes, E.A., Zoccal, D.B., Glucose homoeostasis in rats exposed to acute intermittent hypoxia (2013) Acta Physiol. (Oxford), 209, pp. 77-89
dc.descriptionRafacho, A., Abrantes, J.L., Ribeiro, D.L., Paula, F.M., Pinto, M.E., Boschero, A.C., Bosqueiro, J.R., Morphofunctional alterations in endocrine pancreas of short and long-term dexamethasone-treated rats (2011) Hormone Metab. Res., 43, pp. 275-281
dc.descriptionJocken, J.W., Blaak, E.E., Catecholamine-induced lipolysis in adipose tissue and skeletal muscle in obesity (2008) Physiol. Behav., 94, pp. 219-230
dc.descriptionEspíndola-Antunes, D., Kater, C.E., Adipose tissue expression of 11beta-hydroxysteroid dehydrogenase type 1 in Cushing's syndrome and in obesity (2007) Arq. Bras. Endocrinol. Metab., 51, pp. 1397-1403
dc.descriptionNissen, R.M., Yamamoto, K.R., The glucocorticoid receptor inhibits NFkappaB by interfering with serine-2 phosphorylation of the RNA polymerase II carboxyterminal domain (2000) Genes Dev., 14, pp. 2314-2329
dc.descriptionLi, J., Zuo, L., Shen, T., Zhang, Z.N., Inhibition of the activation of transcriptional factor NFkappaB during sodium selenite-induced apoptosis in NB4 cells (2002) Zhongguo Shi Yan Xue Ye Xue Za Zhi, 10, pp. 409-412
dc.descriptionNunes, E.A., Gonçalves-Neto, L.M., Ferreira, F.B., Dos Santos, C., Fernandes, L.C., Boschero, A.C., Calder, P.C., Rafacho, A.F.B.D., Glucose intolerance induced by glucocorticoid excess is further impaired by co-administration with β-hydroxy-β-methylbutyrate in rats (2013) Appl. Physiol. Nutr. Metab., 38, pp. 1137-1146
dc.descriptionNovelli, M., De Tata, V., Bombara, M., Lorenzini, A., Masini, M., Pollera, M., Bergamini, E., Masiello, P., Insufficient adaptive capability of pancreatic endocrine function in dexamethasone-treated ageing rats (1999) J. Endocrinol., 162, pp. 425-432
dc.descriptionThunhorst, R.L., Beltz, T.G., Johnson, A.K., Glucocorticoids increase salt appetite by promoting water and sodium excretion (2007) Am. J. Physiol. Regul. Integr. Comp. Physiol., 293, pp. 1444-1451
dc.descriptionCaldefie-Chezet, F., Poulin, A., Tridon, A., Sion, B., Vasson, M.P., Leptin: A potential regulator of polymorphonuclear neutrophil bactericidal action? (2001) J. Leukocyte Biol., 69, pp. 414-418
dc.descriptionOrtsäter, H., Sjöholm, A., Rafacho, A., Regulation of glucocorticoid receptor signaling and the diabetogenic effects of glucocorticoid excess (2012) State of the Art of Therapeutic Endocrinology, pp. 1-28. , S. Magdeldin, InTech Rijeka
dc.descriptionRafacho, A., Gonçalves-Neto, L.M., Santos-Silva, J.C., Alonso-Magdalena, P., Merino, B., Taboga, S.R., Carneiro, E.M., Quesada, I., Pancreatic alpha-cell dysfunction contributes to the disruption of glucose homeostasis and compensatory insulin hypersecretion in glucocorticoid-treated rats (2014) PLoS One, 9, p. 93531
dc.descriptionRuzzin, J., Jensen, J., Contraction activates glucose uptake and glycogen synthase normally in muscles from dexamethasone-treated rats (2005) Am. J. Physiol. Endocrinol. Metab., 289, pp. 241-250
dc.descriptionPaquot, N., Schneiter, P., Jéquier, E., Tappy, L., Effects of glucocorticoids and sympathomimetic agents on basal and insulin-stimulated glucose metabolism (1995) Clin. Physiol., 15, pp. 231-240
dc.descriptionFranco-Colin, M., Tellez-Lopez, A.M., Quevedo-Corona, L., Racotta, R., Effects of long-term high-sucrose and dexamethasone on fat depots, liver fat, and lipid fuel fluxes through the retroperitoneal adipose tissue and splanchnic area in rats (2000) Metabolism, 49, pp. 1289-1294
dc.descriptionSlavin, B.G., Ong, J.M., Kern, P.A., Hormonal regulation of hormone-sensitive lipase activity and mRNA levels in isolated rat adipocytes (1994) J. Lipid Res., 35, pp. 1535-1541
dc.descriptionMokuda, O., Sakamoto, Y., Ikeda, T., Mashiba, H., Sensitivity and responsiveness of glucose output to insulin in isolated perfused liver from dexamethasone-treated rats (1991) Hormone Metab. Res., 23, pp. 53-55
dc.descriptionSaad, M.J., Folli, F., Kahn, J.A., Kahn, C.R., Modulation of insulin receptor, insulin receptor substrate-1, and phosphatidylinositol 3-kinase in liver and muscle of dexamethasone-treated rats (1993) J. Clin. Invest., 92, pp. 2065-2072
dc.descriptionNicastro, H., Gualano, B., De Moraes, W.M., De Salles Painelli, V., Da Luz, C.R., Dos Santos Costa, A., De Salvi Guimarães, F., Lancha, A.H., Jr., Effects of creatine supplementation on muscle wasting and glucose homeostasis in rats treated with dexamethasone (2012) Amino Acids, 42, pp. 1695-1701
dc.descriptionCai, D., Yuan, M., Frantz, D.F., Melendez, P.A., Hansen, L., Lee, J., Shoelson, S.E., Local and systemic insulin resistance resulting from hepatic activation of IKK-beta and NF-kappaB (2005) Nat. Med., 11, pp. 183-190
dc.descriptionShoelson, S.E., Lee, J., Goldfine, A.B., Inflammation and insulin resistance (2006) J. Clin. Invest., 116, pp. 1793-1801
dc.descriptionFransson, L., Dos Santos, C., Wolbert, P., Sjöholm, A., Rafacho, A., Ortsäter, H., Liraglutide counteracts obesity and glucose intolerance in a mouse model of glucocorticoid-induced metabolic syndrome (2014) Diabetol. Metab. Syndrome, 6, pp. 1-13
dc.descriptionWang, X.A., Zhang, R., Zhang, S., Deng, S., Jiang, D., Zhong, J., Yang, L., Li, H., Interferon regulatory factor 7 deficiency prevents diet-induced obesity and insulin resistance (2013) Am. J. Physiol. Endocrinol. Metab., 305, pp. 485-495
dc.descriptionHaasch, D., Berg, C., Clampit, J.E., Pederson, T., Frost, L., Kroeger, P., Rondinone, C.M., PKCtheta is a key player in the development of insulin resistance (2006) Biochem. Biophys. Res. Commun., 343, pp. 361-368
dc.descriptionWang, C., Liu, M., Riojas, R.A., Xin, X., Gao, Z., Zeng, R., Wu, J., Liu, F., Protein kinase C q (PKCq)-dependent phosphorylation of PDK1 at ser 504 and ser 532 contributes to palmitate-induced insulin resistance (2009) J. Biol. Chem., 284, pp. 2038-2044
dc.descriptionMorgan, S.A., Sherlock, M., Gathercole, L.L., Lavery, G.G., Lenaghan, C., Bujalska, I.J., Laber, D., Tomlinson, J.W., 11beta-hydroxysteroid dehydrogenase type 1 regulates glucocorticoid-induced insulin resistance in skeletal muscle (2009) Diabetes, 58, pp. 2506-2515
dc.descriptionSapolsky, R.M., Krey, C., McEwen, B.S., Stress down-regulates corticosterone receptors in a site-specific manner in the brain (1984) Endocrinology, 114, pp. 287-292
dc.descriptionSvec, F., Rudis, M., Glucocorticoids regulate the glucocorticoid receptor in the AtT-20Cell (1981) J. Biol. Chem., 256, pp. 5984-5987
dc.languageen
dc.publisherElsevier Ltd
dc.relationJournal of Steroid Biochemistry and Molecular Biology
dc.rightsfechado
dc.sourceScopus
dc.titleJnk And Ikkβ Phosphorylation Is Reduced By Glucocorticoids In Adipose Tissue From Insulin-resistant Rats
dc.typeArtículos de revistas


Este ítem pertenece a la siguiente institución