Oxidative stress - mediated alterations in glucose dynamics in a genetic animal model of type II diabetes

被引:49
作者
Bitar, MS
Al-Saleh, E
Al-Mulla, F
机构
[1] Kuwait Univ, Fac Med, Dept Pharmacol & Therapeut, Safat 13110, Kuwait
[2] Kuwait Univ, Fac Med, Dept Obstet & Gynaecol, Safat 13110, Kuwait
[3] Kuwait Univ, Fac Med, Dept Pathol, Safat 13110, Kuwait
关键词
insulin resistance; oxidative stress; alpha-lipoic acid; Goto-Kakizaki rats; type II diabetes;
D O I
10.1016/j.lfs.2005.01.033
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 [基础医学];
摘要
Insulin resistance, characterized by an inexorable decline in skeletal muscle glucose utilization and/or an excessive hepatic glucose production, constitutes a major pathogenic importance in a cluster of clinical disorders including diabetes mellitus, hypertension, dyslipidemia, central obesity and coronary artery disease. A novel concept suggests that heightened state of oxidative stress during diabetes contributes, at least in part, to the development of insulin resistance. Several key predictions of this premise were subjected to experimental testing using Goto-Kakizaki (GK) rats as a genetic animal model for non-obese type 11 diabetes. Euglycemic-hyperinsulinemic clamp studies with an insulin infusion index of 5 mU/kg bw/min were used to measure endogenous glucose production (EGP), glucose infusion rate (GIR), glucose disposal rate (GDR) and skeletal muscle glucose utilization index (GUI). Moreover, the status of oxidative stress as reflected by the urinary levels of isoprostane and protein carbonyl formation were also assessed as a function of diabetes. Post-absorptive basal EGP and circulating levels of insulin, glucose and free fatty acid (FFA) were elevated in GK rats, compared to their corresponding control values. In contrast, steady state GIR. and GDR of the hyperglycemic/hyperinsulinemic animals were reduced, concomitantly with impaired insulin's ability to suppress EGP. Insulin stimulated [H-3]-2-deoxyglucose (2-DG) uptake (a measure of glucose transport activity) by various types of skeletal muscle fibers both in vivo and in vitro (isolated muscle, cultured myoblasts) was diminished in diabetic GK rats. This diabetes-related suppression of skeletal muscle glucose utilization was associated with a decrease in insulin's ability to promote the phosphorylation of tyrosine residues of insulin receptor substrate-1 (IRS-1). Similarly, the translocation of GLUT-4 from intracellular compartment to plasma membrane in response to insulin was also reduced in these animals. Oxidative stress-based markers (e.g. urinary isoprostane, carbonyl-bound proteins) were elevated as a function of diabetes. Nullification of the heightened state of oxidative stress in the GK rats with otlipoic acid resulted in a partial amelioration of the diabetes-related impairment of the in vivo and in vitro insulin actions. Collectively, the above data suggest that 1) insulin resistance in GK rats occurs at the hepatic and skeletal muscle levels, 2) muscle cell glucose transport exhibited a blunted response to insulin and it is associated with a major defect in key molecules of both GLUT-4 trafficking and insulin signaling pathways, 3) skeletal muscle insulin resistance in GK rats appears to be of genetic origin and not merely related to a paracrine or autocrine effect, since this phenomenon is also observed in cultured myoblasts over several passages and finally heightened state of oxidative stress may mediate the development of insulin resistance during diabetes. (c) 2005 Elsevier Inc. All rights reserved.
引用
收藏
页码:2552 / 2573
页数:22
相关论文
共 98 条
[1]
AMATRUDA IM, 1985, DIABETES METAB REV, V3, P293
[2]
The sensory symptoms of diabetic polyneuropathy are improved with α-lipoic acid -: The SYDNEY trial [J].
Ametov, AS ;
Barinov, A ;
Dyck, PJ ;
Hermann, R ;
Kozlova, N ;
Litchy, WJ ;
Low, PA ;
Nehrdich, D ;
Novosadova, M ;
O'Brien, PC ;
Reljanovic, M ;
Samigullin, R ;
Schuette, K ;
Strokov, I ;
Tritschler, H ;
Wessel, K ;
Yakhno, N ;
Ziegler, D .
DIABETES CARE, 2003, 26 (03) :770-776
[3]
ARSTRONG RB, 1984, AM J ANAT, V17, P259
[4]
RATES AND TISSUE SITES OF NON-INSULIN-MEDIATED AND INSULIN-MEDIATED GLUCOSE-UPTAKE IN HUMANS [J].
BARON, AD ;
BRECHTEL, G ;
WALLACE, P ;
EDELMAN, SV .
AMERICAN JOURNAL OF PHYSIOLOGY, 1988, 255 (06) :E769-E774
[5]
SKELETAL-MUSCLE BLOOD-FLOW - A POSSIBLE LINK BETWEEN INSULIN RESISTANCE AND BLOOD-PRESSURE [J].
BARON, AD ;
BRECHTELHOOK, G ;
JOHNSON, A ;
HARDIN, D .
HYPERTENSION, 1993, 21 (02) :129-135
[6]
Altered regulation of insulin signaling components in adipocytes of insulin-resistant type II diabetic Goto-Kakizaki rats [J].
Begum, N ;
Ragolia, L .
METABOLISM-CLINICAL AND EXPERIMENTAL, 1998, 47 (01) :54-62
[7]
Oxidative stress impairs insulin internalization in endothelial cells in vitro [J].
Bertelsen, M ;
Änggård, EE ;
Carrier, MJ .
DIABETOLOGIA, 2001, 44 (05) :605-613
[8]
Turning down insulin signaling [J].
Birnbaum, MJ .
JOURNAL OF CLINICAL INVESTIGATION, 2001, 108 (05) :655-659
[9]
α-lipoic acid mitigates insulin resistance in Goto-Kakizaki rats [J].
Bitar, MS ;
Wahid, S ;
Pilcher, CWT ;
Al-Saleh, E ;
Al-Mulla, F .
HORMONE AND METABOLIC RESEARCH, 2004, 36 (08) :542-549
[10]
Co-administration of etomoxir and RU-486 mitigates insulin resistance in hepatic and muscular tissues STZ-induced diabetic rats [J].
Bitar, MS .
HORMONE AND METABOLIC RESEARCH, 2001, 33 (10) :577-584