Increased Glucose Metabolism and Glycerolipid Formation by Fatty Acids and GPR40 Receptor Signaling Underlies the Fatty Acid Potentiation of Insulin Secretion

被引:53
作者
El-Azzouny, Mahmoud [1 ,2 ]
Evans, Charles R. [1 ]
Treutelaar, Mary K. [1 ]
Kennedy, Robert T. [2 ,3 ]
Burant, Charles F. [1 ]
机构
[1] Univ Michigan, Dept Internal Med, Ann Arbor, MI 48105 USA
[2] Univ Michigan, Dept Chem, Ann Arbor, MI 48105 USA
[3] Univ Michigan, Dept Pharmacol, Ann Arbor, MI 48105 USA
基金
美国国家卫生研究院;
关键词
Cell; Diabetes; Fatty Acid Metabolism; G Protein-coupled Receptors (GPCR); Glucose Metabolism; Insulin Secretion; Metabolism; Metabolomics; Fatty Acid Potentiation of GSIS; GPR40; PANCREATIC BETA-CELLS; N-ACYL TAURINES; COA ESTERS; PALMITOYLTRANSFERASE-I; ISLETS; STIMULATION; EXOCYTOSIS; MUNC13-1; CHANNELS; HEALTH;
D O I
10.1074/jbc.M113.531970
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Background: Pathways underlying fatty acid potentiation of glucose-stimulated insulin secretion have not been fully elucidated. Results: In INS-1 cells, fatty acids increase de novo production of glycerolipids and simultaneously increase glucose utilization. GPR40 receptor activation increases these activities. Conclusion: Fatty acids enhance the production of multiple signals supporting glucose-stimulated insulin secretion. Significance: The studies clarify the effects of fatty acids and GPR40 activity in cell insulin secretion. Acute fatty acid (FA) exposure potentiates glucose-stimulated insulin secretion in cells through metabolic and receptor-mediated effects. We assessed the effect of fatty acids on the dynamics of the metabolome in INS-1 cells following exposure to [U-C-13]glucose to assess flux through metabolic pathways. Metabolite profiling showed a fatty acid-induced increase in long chain acyl-CoAs that were rapidly esterified with glucose-derived glycerol-3-phosphate to form lysophosphatidic acid, mono- and diacylglycerols, and other glycerolipids, some implicated in augmenting insulin secretion. Glucose utilization and glycolytic flux increased, along with a reduction in the NADH/NAD(+) ratio, presumably by an increase in conversion of dihydroxyacetone phosphate to glycerol-3-phosphate. The fatty acid-induced increase in glycolysis also resulted in increases in tricarboxylic cycle flux and oxygen consumption. Inhibition of fatty acid activation of FFAR1/GPR40 by an antagonist decreased glycerolipid formation, attenuated fatty acid increases in glucose oxidation, and increased mitochondrial FA flux, as evidenced by increased acylcarnitine levels. Conversely, FFAR1/GPR40 activation in the presence of low FA increased flux into glycerolipids and enhanced glucose oxidation. These results suggest that, by remodeling glucose and lipid metabolism, fatty acid significantly increases the formation of both lipid- and TCA cycle-derived intermediates that augment insulin secretion, increasing our understanding of mechanisms underlying cell insulin secretion.
引用
收藏
页码:13575 / 13588
页数:14
相关论文
共 42 条
[1]   Deletion of GPR40 Impairs Glucose-Induced Insulin Secretion In Vivo in Mice Without Affecting Intracellular Fuel Metabolism in Islets [J].
Alquier, Thierry ;
Peyot, Marie-Line ;
Latour, Martin G. ;
Kebede, Melkam ;
Sorensen, Christina M. ;
Gesta, Stephane ;
Kahn, C. Ronald ;
Smith, Richard D. ;
Jetton, Thomas L. ;
Metz, Thomas O. ;
Prentki, Marc ;
Poitout, Vincent .
DIABETES, 2009, 58 (11) :2607-2615
[2]   The importance of redox shuttles to pancreatic β-cell energy metabolism and function [J].
Bender, K. ;
Newsholme, P. ;
Brennan, L. ;
Maechler, P. .
BIOCHEMICAL SOCIETY TRANSACTIONS, 2006, 34 :811-814
[3]   Long-chain CoA esters activate human pancreatic beta-cell KATP channels:: potential role in Type 2 diabetes [J].
Bränström, R ;
Aspinwall, CA ;
Välimäki, S ;
Östensson, CG ;
Tibell, A ;
Eckhard, M ;
Brandhorst, H ;
Corkey, BE ;
Berggren, PO ;
Larsson, O .
DIABETOLOGIA, 2004, 47 (02) :277-283
[4]   Pharmacological regulation of insulin secretion in MIN6 cells through the fatty acid receptor GPR40: identification of agonist and antagonist small molecules [J].
Briscoe, Celia P. ;
Peat, Andrew J. ;
McKeown, Stephen C. ;
Corbett, David F. ;
Goetz, Aaron S. ;
Littleton, Thomas R. ;
McCoy, David C. ;
Kenakin, Terry P. ;
Andrews, John L. ;
Ammala, Carina ;
Fornwald, James A. ;
Ignar, Diane M. ;
Jenkinson, Stephen .
BRITISH JOURNAL OF PHARMACOLOGY, 2006, 148 (05) :619-628
[5]   Activation of GPR40 as a Therapeutic Target for the Treatment of Type 2 Diabetes [J].
Burant, Charles F. .
DIABETES CARE, 2013, 36 :S175-S179
[6]   TAK-875 versus placebo or glimepiride in type 2 diabetes mellitus: a phase 2, randomised, double-blind, placebo-controlled trial [J].
Burant, Charles F. ;
Viswanathan, Prabhakar ;
Marcinak, John ;
Cao, Charlie ;
Vakilynejad, Majid ;
Xie, Benhuai ;
Leifke, Eckhard .
LANCET, 2012, 379 (9824) :1403-1411
[7]   The role of long-chain fatty acyl-CoA esters in β-cell signal transduction [J].
Corkey, BE ;
Deeney, JT ;
Yaney, GC ;
Tornheim, K ;
Prentki, M .
JOURNAL OF NUTRITION, 2000, 130 (02) :299S-304S
[8]   Acute stimulation with long chain acyl-CoA enhances exocytosis in insulin secreting cells (HIT T-15 and NMRI β-cells) [J].
Deeney, JT ;
Gromada, J ;
Hoy, M ;
Olsen, HL ;
Rhodes, CJ ;
Prentki, M ;
Berggren, PO ;
Corkey, BE .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (13) :9363-9368
[9]   G protein-coupled receptor (GPR)40-dependent potentiation of insulin secretion in mouse islets is mediated by protein kinase D1 [J].
Ferdaoussi, M. ;
Bergeron, V. ;
Zarrouki, B. ;
Kolic, J. ;
Cantley, J. ;
Fielitz, J. ;
Olson, E. N. ;
Prentki, M. ;
Biden, T. ;
MacDonald, P. E. ;
Poitout, V. .
DIABETOLOGIA, 2012, 55 (10) :2682-2692
[10]   AMPK: a key regulator of energy balance in the single cell and the whole organism [J].
Hardie, D. G. .
INTERNATIONAL JOURNAL OF OBESITY, 2008, 32 (Suppl 4) :S7-S12