Glucose-fatty acid cycle to inhibit glucose utilization and oxidation is not operative in fatty acid-cultured islets

被引:39
作者
Liu, YQ
Tornheim, K
Leahy, JL
机构
[1] Univ Vermont, Coll Med, Div Endocrinol Diabet & Metab, Burlington, VT 05405 USA
[2] Boston Univ, Sch Med, Dept Biochem, Boston, MA 02118 USA
[3] Boston Univ, Sch Med, Diabet & Metab Unit, Boston, MA 02118 USA
关键词
D O I
10.2337/diabetes.48.9.1747
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The glucose-fatty acid cycle of Randle entails two elements: decreased pyruvate dehydrogenase (PDH) activity, which inhibits glucose oxidation, and inhibition of phosphofructokinase (PFK) by a rise in citrate so that glucose-6-phosphate (G-6-P) levels increase, thereby inhibiting hexokinase activity and hence glucose utilization. Chronic exposure of islets to long-chain fatty acids (FA) is reported to lower PDH activity, but the effect on glucose oxidation and glucose-induced insulin secretion is uncertain. We investigated rat islets that were cultured for 4 days with 0.25 mmol/l oleate/5.5 mmol/l glucose. Glucose oxidation was doubled at 2.8 mmol/l glucose and unchanged at 27.7 mmol/l glucose in the FA-cultured islets despite a 35% decrease in assayed PDH activity. Pyruvate content was increased 60%, which may well compensate for the decreased PDH activity and maintain flux through the citric acid cycle. However, a greater diversion of pyruvate metabolism through the pyruvate-malate shuttle is suggested by unchanged pyruvate carboxylase V-max and a fourfold higher release of malate from isolated mitochondria, The FA-cultured islets also showed increased basal glucose usage and insulin secretion together with a lowered level of G-6-P and 50% reductions in citrate synthase V-max and the citrate content. Thus, the effects of chronic FA exposure on islet glucose metabolism differ from the glucose-fatty acid interactions reported in some other tissues.
引用
收藏
页码:1747 / 1753
页数:7
相关论文
共 51 条
[1]   SENSITIVE, PRECISE RADIOIMMUNOASSAY OF SERUM-INSULIN RELYING ON CHARCOAL SEPARATION OF BOUND AND FREE HORMONE MOIETIES [J].
ALBANO, JDM ;
EKINS, RP ;
TURNER, RC ;
MARITZ, G .
ACTA ENDOCRINOLOGICA, 1972, 70 (03) :487-+
[2]  
[Anonymous], 1996, Diabetes Rev
[3]   Chronic exposure to free fatty acid reduces pancreatic β cell insulin content by increasing basal insulin secretion that is not compensated for by a corresponding increase in proinsulin biosynthesis translation [J].
Bollheimer, LC ;
Skelly, RH ;
Chester, MW ;
McGarry, JD ;
Rhodes, CJ .
JOURNAL OF CLINICAL INVESTIGATION, 1998, 101 (05) :1094-1101
[4]   Evidence for an anaplerotic malonyl-CoA pathway in pancreatic beta-cell nutrient signaling [J].
Brun, T ;
Roche, E ;
AssimacopoulosJeannet, F ;
Corkey, BE ;
Kim, KH ;
Prentki, M .
DIABETES, 1996, 45 (02) :190-198
[5]   Long-chain fatty acids inhibit acetyl-CoA carboxylase gene expression in the pancreatic beta-cell line INS-1 [J].
Brun, T ;
AssimacopoulosJeannet, F ;
Corkey, BE ;
Prentki, M .
DIABETES, 1997, 46 (03) :393-400
[6]   DIFFERENTIAL SENSITIVITY TO BETA-CELL SECRETAGOGUES IN CULTURED RAT PANCREATIC-ISLETS EXPOSED TO HUMAN INTERLEUKIN-1-BETA [J].
EIZIRIK, DL ;
SANDLER, S ;
HALLBERG, A ;
BENDTZEN, K ;
SENER, A ;
MALAISSE, WJ .
ENDOCRINOLOGY, 1989, 125 (02) :752-759
[7]  
ENGLARD S, 1969, METHOD ENZYMOL, V13, P99
[8]   Role of NADH shuttle system in glucose-induced activation of mitochondrial metabolism and insulin secretion [J].
Eto, K ;
Tsubamoto, Y ;
Terauchi, Y ;
Sugiyama, T ;
Kishimoto, T ;
Takahashi, N ;
Yamauchi, N ;
Kubota, N ;
Murayama, S ;
Aizawa, S ;
Akanuma, Y ;
Aizawa, S ;
Kasai, H ;
Yazaki, Y ;
Kadowaki, T .
SCIENCE, 1999, 283 (5404) :981-985
[9]  
FAHIEN LA, 1988, J BIOL CHEM, V263, P10687
[10]  
GUIMARAES ARP, 1993, BRAZ J MED BIOL RES, V26, P813