Minor Role of Mitochondrial Respiration for Fatty-Acid Induced Insulin Secretion
Abstract
:1. Introduction
2. Results and Discussion
3. Experimental Section
3.1. Mice
3.2. Isolation of Islets of Langerhans
3.3. Preparation of BSA-Conjugated Palmitate
3.4. Detection of Insulin Secretion
3.5. Measurement of Oxygen Consumption Rate
3.6. Statistical Analysis
4. Conclusions
Acknowledgments
Conflicts of Interest
References
- Bartlett, K.; Eaton, S. Mitochondrial beta-oxidation. Eur. J. Biochem 2004, 271, 462–469. [Google Scholar]
- Houten, S.M.; Wanders, R.J. A general introduction to the biochemistry of mitochondrial fatty acid β-oxidation. J. Inherit. Metab. Dis 2010, 33, 469–477. [Google Scholar]
- Hue, L.; Taegtmeyer, H. The Randle cycle revisited: A new head for an old hat. Am. J. Physiol. Endocrinol. Metab 2009, 297, E578–E591. [Google Scholar]
- Kluth, O.; Mirhashemi, F.; Scherneck, S.; Kaiser, D.; Kluge, R.; Neschen, S.; Joost, H.G.; Schürmann, A. Dissociation of lipotoxicity and glucotoxicity in a mouse model of obesity associated diabetes: Role of forkhead box O1 (FOXO1) in glucose-induced beta cell failure. Diabetologia 2011, 54, 605–616. [Google Scholar]
- Vernier, S.; Chiu, A.; Schober, J.; Weber, T.; Nguyen, P.; Luer, M.; McPherson, T.; Wanda, P.E.; Marshall, C.; Rohatgi, N. Beta-cell metabolic alterations under chronic nutrient overload in rat and human islets. Islets 2012, 4, 379–392. [Google Scholar]
- Henquin, J.C. The dual control of insulin secretion by glucose involves triggering and amplifying pathways in beta-cells. Diabetes Res. Clin. Pract 2011, 93, S27–S31. [Google Scholar]
- MacDonald, P.E. Signal integration at the level of ion channel and exocytotic function in pancreatic β-cells. Am. J. Physiol. Endocrinol. Metab 2011, 301, E1065–E1069. [Google Scholar]
- Roduit, R.; Nolan, C.; Alarcon, C.; Moore, P.; Barbeau, A.; Delghingaro-Augusto, V.; Przybykowski, E.; Morin, J.; Masse, F.; Massie, B.; et al. A role for the malonyl-CoA/long-chain acyl-CoA pathway of lipid signaling in the regulation of insulin secretion in response to both fuel and nonfuel stimuli. Diabetes 2004, 53, 1007–1019. [Google Scholar]
- Crespin, S.R.; Greenough, W.B., III; Steinberg, D. Stimulation of insulin secretion by infusion of free fatty acids. J. Clin. Invest. 1969, 48, 1934–1943. [Google Scholar]
- Alquier, T.; Peyot, M.L.; Latour, M.G.; Kebede, M.; Sorensen, C.M.; Gesta, S.; Kahn, R.C.; Smith, R.D.; Jetton, T.L.; Metz, T.O. Deletion of GPR40 impairs glucose-induced insulin secretion in vivo in mice without affecting intracellular fuel metabolism in islets. Diabetes 2009, 58, 2607–2615. [Google Scholar]
- Latour, M.G.; Alquier, T.; Oseid, E.; Tremblay, C.; Jetton, T.L.; Luo, J.; Lin, D.C.; Poitout, V. GPR40 is necessary but not sufficient for fatty acid stimulation of insulin secretion in vivo. Diabetes 2007, 56, 1087–1094. [Google Scholar]
- Poitout, V.; Hagman, D.; Stein, R.; Artner, I.; Robertson, R.P.; Harmon, J.S. Regulation of the insulin gene by glucose and fatty acids. J. Nutr 2006, 136, 873–876. [Google Scholar]
- Prentki, M.; Joly, E.; El-Assaad, W.; Roduit, R. Malonyl-CoA signaling, lipid partitioning, and glucolipotoxicity: Role in beta-cell adaptation and failure in the etiology of diabetes. Diabetes 2002, 51, S405–S413. [Google Scholar]
- Lee, Y.; Hirose, H.; Ohneda, M.; Johnson, J.H.; McGarry, J.D.; Unger, R.H. Beta-cell lipotoxicity in the pathogenesis of non-insulin-dependent diabetes mellitus of obese rats: Impairment in adipocyte-beta-cell relationships. Proc. Natl. Acad. Sci. USA 1994, 91, 10878–10882. [Google Scholar]
- El-Assaad, W.; Buteau, J.; Peyot, M.L.; Nolan, C.; Roduit, R.; Hardy, S.; Joly, E.; Dbaibo, G.; Rosenberg, L.; Prentki, M. Saturated fatty acids synergize with elevated glucose to cause pancreatic beta-cell death. Endocrinology 2003, 144, 4154–4163. [Google Scholar]
- Wikstrom, J.D.; Sereda, S.B.; Stiles, L.; Elorza, A.; Allister, E.M.; Neilson, A.; Ferrick, D.A.; Wheeler, M.B.; Shirihai, O.S. A novel high-throughput assay for islet respiration reveals uncoupling of rodent and human islets. PLoS One 2012, 7, e33023. [Google Scholar]
- Schulz, N.; Himmelbauer, H.; Rath, M.; van Weeghel, M.; Houten, S.; Kulik, W.; Suhre, K.; Scherneck, S.; Vogel, H.; Kluge, R.; et al. Role of medium- and short-chain l-3-hydroxyacyl-CoA dehydrogenase in the regulation of body weight and thermogenesis. Endocrinology 2011, 152, 4641–4651. [Google Scholar]
- Warnotte, C.; Gilon, P.; Nenquin, M.; Henquin, J.C. Mechanisms of the stimulation of insulin release by saturated fatty acids. Diabetes 1994, 43, 703–711. [Google Scholar]
- Henquin, J.; Ishiyama, N.; Nenquin, M.; Ravier, M.A.; Jonas, J.C. Signals and pools underlying biphasic insulin secretion. Diabetes 2002, 51, S60–S67. [Google Scholar]
- Cantley, J.; Biden, T.J. Targeting triglyceride/fatty acid cycling in beta-cells as a therapy for augmenting glucose-stimulated insulin secretion. Islets 2010, 2, 127–129. [Google Scholar]
- Nolan, C.J.; Prentki, M. The islet beta-cell: Fuel responsive and vulnerable. Trends Endocrinol. Metab 2008, 19, 285–291. [Google Scholar]
- St-Pierre, J.; Buckingham, J.A.; Roebuck, S.J.; Brand, M.D. Topology of superoxide production from different sites in the mitochondrial electron transport chain. J. Biol. Chem 2002, 277, 44784–44790. [Google Scholar]
- Echtay, K.S.; Murphy, M.P.; Smith, R.A.; Talbot, D.A.; Brand, M.D. Superoxide activates mitochondrial uncoupling protein 2 from the matrix side. Studies using targeted antioxidants. J. Biol. Chem 2002, 277, 47129–47135. [Google Scholar]
- Brand, M.D.; Affourtit, C.; Esteves, T.C.; Green, K.; Lambert, A.J.; Miwa, S.; Pakay, J.L.; Parker, N. Mitochondrial superoxide: Production, biological effects, and activation of uncoupling proteins. Free Radic. Biol. Med 2004, 37, 755–767. [Google Scholar]
- Affourtit, C.; Brand, M.D. Stronger control of ATP/ADP by proton leak in pancreatic beta-cells than skeletal muscle mitochondria. Biochem. J 2006, 393, 151–159. [Google Scholar]
- Affourtit, C.; Jastroch, M.; Brand, M.D. Uncoupling protein-2 attenuates glucose-stimulated insulin secretion in INS-1E insulinoma cells by lowering mitochondrial reactive oxygen species. Free Radic. Biol. Med 2010, 50, 609–616. [Google Scholar]
- Prentki, M.; Corkey, B.E. Are the beta-cell signaling molecules malonyl-CoA and cystolic long-chain acyl-CoA implicated in multiple tissue defects of obesity and NIDDM? Diabetes 1996, 45, 273–283. [Google Scholar]
- Preparation of bovine serum albumin-conjugated palmitate. Technical protocol access from Seahorse Bioscience resources. Available online: http://www.seahorsebio.com/resources/tech-writing/protocol-bsa-palmitate.pdf (accessed on 30 December 2011).
- Ferrick, D.A.; Neilson, A.; Beeson, C. Advances in measuring cellular bioenergetics using extracellular flux. Drug Discov. Today 2008, 13, 268–274. [Google Scholar]
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Schulz, N.; Kluth, O.; Jastroch, M.; Schürmann, A. Minor Role of Mitochondrial Respiration for Fatty-Acid Induced Insulin Secretion. Int. J. Mol. Sci. 2013, 14, 18989-18998. https://doi.org/10.3390/ijms140918989
Schulz N, Kluth O, Jastroch M, Schürmann A. Minor Role of Mitochondrial Respiration for Fatty-Acid Induced Insulin Secretion. International Journal of Molecular Sciences. 2013; 14(9):18989-18998. https://doi.org/10.3390/ijms140918989
Chicago/Turabian StyleSchulz, Nadja, Oliver Kluth, Martin Jastroch, and Annette Schürmann. 2013. "Minor Role of Mitochondrial Respiration for Fatty-Acid Induced Insulin Secretion" International Journal of Molecular Sciences 14, no. 9: 18989-18998. https://doi.org/10.3390/ijms140918989
APA StyleSchulz, N., Kluth, O., Jastroch, M., & Schürmann, A. (2013). Minor Role of Mitochondrial Respiration for Fatty-Acid Induced Insulin Secretion. International Journal of Molecular Sciences, 14(9), 18989-18998. https://doi.org/10.3390/ijms140918989