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PLOS ONE  2011 

Control of the Intracellular Redox State by Glucose Participates in the Insulin Secretion Mechanism

DOI: 10.1371/journal.pone.0024507

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Abstract:

Background Production of reactive oxygen species (ROS) due to chronic exposure to glucose has been associated with impaired beta cell function and diabetes. However, physiologically, beta cells are well equipped to deal with episodic glucose loads, to which they respond with a fine tuned glucose-stimulated insulin secretion (GSIS). In the present study, a systematic investigation in rat pancreatic islets about the changes in the redox environment induced by acute exposure to glucose was carried out. Methodology/Principal Findings Short term incubations were performed in isolated rat pancreatic islets. Glucose dose- and time-dependently reduced the intracellular ROS content in pancreatic islets as assayed by fluorescence in a confocal microscope. This decrease was due to activation of pentose-phosphate pathway (PPP). Inhibition of PPP blunted the redox control as well as GSIS in a dose-dependent manner. The addition of low doses of ROS scavengers at high glucose concentration acutely improved beta cell function. The ROS scavenger N-acetyl-L-cysteine increased the intracellular calcium response to glucose that was associated with a small decrease in ROS content. Additionally, the presence of the hydrogen peroxide-specific scavenger catalase, in its membrane-permeable form, nearly doubled glucose metabolism. Interestingly, though an increase in GSIS was also observed, this did not match the effect on glucose metabolism. Conclusions The control of ROS content via PPP activation by glucose importantly contributes to the mechanisms that couple the glucose stimulus to insulin secretion. Moreover, we identified intracellular hydrogen peroxide as an inhibitor of glucose metabolism intrinsic to rat pancreatic islets. These findings suggest that the intracellular adjustment of the redox environment by glucose plays an important role in the mechanism of GSIS.

References

[1]  Ashcroft FM, Harrison DE, Ashcroft SJ (1984) Glucose induces closure of single potassium channels in isolated rat pancreatic beta-cells. Nature 312: 446–448.
[2]  Carpinelli AR, Malaisse WJ (1980) Regulation of 86Rb+ outflow from pancreatic islets III. Possible significance of ATP. J Endocrinol Invest 3: 365–370.
[3]  Ravier MA, Gilon P, Henquin JC (1999) Oscillations of insulin secretion can be triggered by imposed oscillations of cytoplasmic Ca2+ or metabolism in normal mouse islets. Diabetes 48: 2374–2382.
[4]  Zhang Z, Liew CW, Handy DE, Zhang Y, Leopold JA, et al. (2010) High glucose inhibits glucose-6-phosphate dehydrogenase, leading to increased oxidative stress and beta-cell apoptosis. Faseb J 24: 1497–1505.
[5]  Lacraz G, Figeac F, Movassat J, Kassis N, Coulaud J, et al. (2009) Diabetic beta-cells can achieve self-protection against oxidative stress through an adaptive up-regulation of their antioxidant defenses. PLoS One 4: e6500.
[6]  Martens GA, Cai Y, Hinke S, Stange G, Van de Casteele M, et al. (2005) Glucose suppresses superoxide generation in metabolically responsive pancreatic beta cells. J Biol Chem 280: 20389–20396.
[7]  Leloup C, Tourrel-Cuzin C, Magnan C, Karaca M, Castel J, et al. (2009) Mitochondrial reactive oxygen species are obligatory signals for glucose-induced insulin secretion. Diabetes 58: 673–681.
[8]  Pi J, Bai Y, Zhang Q, Wong V, Floering LM, et al. (2007) Reactive oxygen species as a signal in glucose-stimulated insulin secretion. Diabetes 56: 1783–1791.
[9]  Syed I, Kyathanahalli CN, Kowluru A (2011) Phagocyte-like NADPH oxidase generates ROS in INS 832/13 cells and rat islets: role of protein prenylation. Am J Physiol Regul Integr Comp Physiol 300: R756–762.
[10]  Goldstein BJ, Mahadev K, Wu X (2005) Redox paradox: insulin action is facilitated by insulin-stimulated reactive oxygen species with multiple potential signaling targets. Diabetes 54: 311–321.
[11]  Sundaresan M, Yu ZX, Ferrans VJ, Irani K, Finkel T (1995) Requirement for generation of H2O2 for platelet-derived growth factor signal transduction. Science 270: 296–299.
[12]  Gier B, Krippeit-Drews P, Sheiko T, Aguilar-Bryan L, Bryan J, et al. (2009) Suppression of KATP channel activity protects murine pancreatic beta cells against oxidative stress. J Clin Invest 119: 3246–3256.
[13]  Maechler P, Jornot L, Wollheim CB (1999) Hydrogen peroxide alters mitochondrial activation and insulin secretion in pancreatic beta cells. J Biol Chem 274: 27905–27913.
[14]  Nakazaki M, Kakei M, Koriyama N, Tanaka H (1995) Involvement of ATP-sensitive K+ channels in free radical-mediated inhibition of insulin secretion in rat pancreatic beta-cells. Diabetes 44: 878–883.
[15]  Rebelato E, Abdulkader F, Curi R, Carpinelli AR (2009) Low doses of hydrogen peroxide impair glucose-stimulated insulin secretion via inhibition of glucose metabolism and intracellular calcium oscillations. Metabolism.
[16]  Bulteau AL, Ikeda-Saito M, Szweda LI (2003) Redox-dependent modulation of aconitase activity in intact mitochondria. Biochemistry 42: 14846–14855.
[17]  Chatham JC, Gilbert HF, Radda GK (1989) The metabolic consequences of hydroperoxide perfusion on the isolated rat heart. Eur J Biochem 184: 657–662.
[18]  Krippeit-Drews P, Kramer C, Welker S, Lang F, Ammon HP, et al. (1999) Interference of H2O2 with stimulus-secretion coupling in mouse pancreatic beta-cells. J Physiol 514(Pt 2): 471–481.
[19]  Ammon HP, Grimm A, Lutz S, Wagner-Teschner D, Handel M, et al. (1980) Islet glutathione and insulin release. Diabetes 29: 830–834.
[20]  MacDonald MJ (1995) Feasibility of a mitochondrial pyruvate malate shuttle in pancreatic islets. Further implication of cytosolic NADPH in insulin secretion. J Biol Chem 270: 20051–20058.
[21]  Verspohl EJ, Handel M, Ammon HP (1979) Pentosephosphate shunt activity of rat pancreatic islets: its dependence on glucose concentration. Endocrinology 105: 1269–1274.
[22]  Tian WN, Braunstein LD, Apse K, Pang J, Rose M, et al. (1999) Importance of glucose-6-phosphate dehydrogenase activity in cell death. Am J Physiol 276: C1121–1131.
[23]  Tian WN, Braunstein LD, Pang J, Stuhlmeier KM, Xi QC, et al. (1998) Importance of glucose-6-phosphate dehydrogenase activity for cell growth. J Biol Chem 273: 10609–10617.
[24]  Larrabee MG (1989) The pentose cycle (hexose monophosphate shunt). Rigorous evaluation of limits to the flux from glucose using 14CO2 data, with applications to peripheral ganglia of chicken embryos. J Biol Chem 264: 15875–15879.
[25]  Larrabee MG (1990) Evaluation of the pentose phosphate pathway from 14CO2 data. Fallibility of a classic equation when applied to non-homogeneous tissues. Biochem J 272: 127–132.
[26]  Morgan D, Oliveira-Emilio HR, Keane D, Hirata AE, Santos da Rocha M, et al. (2007) Glucose, palmitate and pro-inflammatory cytokines modulate production and activity of a phagocyte-like NADPH oxidase in rat pancreatic islets and a clonal beta cell line. Diabetologia 50: 359–369.
[27]  Oliveira HR, Curi R, Carpinelli AR (1999) Glucose induces an acute increase of superoxide dismutase activity in incubated rat pancreatic islets. Am J Physiol 276: C507–510.
[28]  Ivarsson R, Quintens R, Dejonghe S, Tsukamoto K, in 't Veld P, et al. (2005) Redox control of exocytosis: regulatory role of NADPH, thioredoxin, and glutaredoxin. Diabetes 54: 2132–2142.
[29]  Tiedge M, Lortz S, Drinkgern J, Lenzen S (1997) Relation between antioxidant enzyme gene expression and antioxidative defense status of insulin-producing cells. Diabetes 46: 1733–1742.
[30]  Martens GA, Van de Casteele M (2007) Glycemic control of apoptosis in the pancreatic beta cell: danger of extremes? Antioxid Redox Signal 9: 309–317.
[31]  Malaisse WJ, Hutton JC, Kawazu S, Herchuelz A, Valverde I, et al. (1979) The stimulus-secretion coupling of glucose-induced insulin release. XXXV. The links between metabolic and cationic events. Diabetologia 16: 331–341.
[32]  Zhang Q, Galvanovskis J, Abdulkader F, Partridge CJ, Gopel SO, et al. (2008) Cell coupling in mouse pancreatic beta-cells measured in intact islets of Langerhans. Philos Transact A Math Phys Eng Sci 366: 3503–3523.
[33]  Reinbothe TM, Ivarsson R, Li DQ, Niazi O, Jing X, et al. (2009) Glutaredoxin-1 mediates NADPH-dependent stimulation of calcium-dependent insulin secretion. Mol Endocrinol 23: 893–900.
[34]  Zhang AY, Yi F, Zhang G, Gulbins E, Li PL (2006) Lipid raft clustering and redox signaling platform formation in coronary arterial endothelial cells. Hypertension 47: 74–80.
[35]  Barg S, Ma X, Eliasson L, Galvanovskis J, Gopel SO, et al. (2001) Fast exocytosis with few Ca(2+) channels in insulin-secreting mouse pancreatic B cells. Biophys J 81: 3308–3323.
[36]  Eliasson L, Abdulkader F, Braun M, Galvanovskis J, Hoppa MB, et al. (2008) Novel aspects of the molecular mechanisms controlling insulin secretion. J Physiol 586: 3313–3324.
[37]  Lacy PE, Kostianovsky M (1967) Method for the isolation of intact islets of Langerhans from the rat pancreas. Diabetes 16: 35–39.
[38]  Bindokas VP, Kuznetsov A, Sreenan S, Polonsky KS, Roe MW, et al. (2003) Visualizing superoxide production in normal and diabetic rat islets of Langerhans. J Biol Chem 278: 9796–9801.
[39]  Morgan D, Rebelato E, Abdulkader F, Graciano MF, Oliveira-Emilio HR, et al. (2009) Association of NAD(P)H oxidase with glucose-induced insulin secretion by pancreatic beta-cells. Endocrinology 150: 2197–2201.
[40]  Robinson JP, Bruner LH, Bassoe CF, Hudson JL, Ward PA, et al. (1988) Measurement of intracellular fluorescence of human monocytes relative to oxidative metabolism. J Leukoc Biol 43: 304–310.
[41]  Quesada I, Nadal A, Soria B (1999) Different effects of tolbutamide and diazoxide in alpha, beta-, and delta-cells within intact islets of Langerhans. Diabetes 48: 2390–2397.

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