Proposed mechanisms for the induction of insulin resistance by oxidative stress

被引:311
作者
Bloch-Damti, A [1 ]
Bashan, N [1 ]
机构
[1] Ben Gurion Univ Negev, Fac Hlth Sci, Dept Clin Biochem, Soroka Med Ctr, IL-84105 Beer Sheva, Israel
关键词
D O I
10.1089/ars.2005.7.1553
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
In diabetes (type I and type 2), increased flux of free fatty acids and glucose is associated with increased mitochondrial reactive oxygen species (ROS) production and, as a consequence, increased oxidative stress. ROS have been shown to activate various cellular stress-sensitive pathways, which can interfere with cellular signaling pathways. Exposure of different cell lines to micromolar concentrations of hydrogen peroxide leads to the activation of stress kinases such as c-Jun N-terminal kinase, p38, I kappa B kinase, and extracellular receptor kinase 1/2. This activation is accompanied by a down-regulation of the cellular response to insulin, leading to a reduced ability of insulin to promote glucose uptake, and glycogen and protein synthesis. The mechanisms leading to this down-regulation in oxidized cells are complicated, involving increased serine/threonine phosphorylation of insulin receptor substrate-1 (IRS1), impaired insulin-stimulated redistribution of IRS1 and phosphatidylinositol-kinase between cytosol and low-density microsomal fraction, followed by a reduced protein kinase-B phosphorylation and GLUT4 translocation to the plasma membrane. In addition, prolonged exposure to ROS affects transcription of glucose transporters: whereas the level of GLUT1 is increased, GLUT4 level is reduced. As can be expected, administration of antioxidants such as lipoic acid in oxidized cells, in animal models of diabetes, and in type 2 diabetes shows improved insulin sensitivity. Thus, oxidative stress is presently accepted as a likely causative factor in the development of insulin resistance.
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页码:1553 / 1567
页数:15
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共 166 条
[1]   Phosphorylation of Ser307 in insulin receptor substrate-1 blocks interactions with the insulin receptor and inhibits insulin action [J].
Aguirre, V ;
Werner, ED ;
Giraud, J ;
Lee, YH ;
Shoelson, SE ;
White, MF .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (02) :1531-1537
[2]   3-phosphoinositide-dependent protein kinase-1 (PDK1): structural and functional homology with the Drosophila DSTPK61 kinase [J].
Alessi, DR ;
Deak, M ;
Casamayor, A ;
Caudwell, FB ;
Morrice, N ;
Norman, DG ;
Gaffney, P ;
Reese, CB ;
MacDougall, CN ;
Harbison, D ;
Ashworth, A ;
Bownes, M .
CURRENT BIOLOGY, 1997, 7 (10) :776-789
[3]   THE DNA-BINDING EFFICIENCY OF SP1 IS AFFECTED BY REDOX CHANGES [J].
AMMENDOLA, R ;
MESURACA, M ;
RUSSO, T ;
CIMINO, F .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1994, 225 (01) :483-489
[4]   Intracellular glutathione deficiency is associated with enhanced nuclear Factor-κB activation in older noninsulin dependent diabetic patients [J].
Arnalich, F ;
Hernanz, A ;
López-Maderuelo, D ;
De La Fuente, M ;
Arnalicha, FM ;
Andrés-Mateos, E ;
Fernández-Capitán, C ;
Montiel, C .
FREE RADICAL RESEARCH, 2001, 35 (06) :873-884
[5]   Evidence for involvement of protein kinase C (PKC)-zeta and noninvolvement of diacylglycerol-sensitive PKCs in insulin-stimulated glucose transport in L6 myotubes [J].
Bandyopadhyay, G ;
Standaert, ML ;
Galloway, L ;
Moscat, J ;
Farese, RV .
ENDOCRINOLOGY, 1997, 138 (11) :4721-4731
[6]   INTERPLAY BETWEEN LIPOIC ACID AND GLUTATHIONE IN THE PROTECTION AGAINST MICROSOMAL LIPID-PEROXIDATION [J].
BAST, A ;
HAENEN, GRMM .
BIOCHIMICA ET BIOPHYSICA ACTA, 1988, 963 (03) :558-561
[7]   Role of oxidative stress in diabetic complications - A new perspective on an old paradigm [J].
Baynes, JW ;
Thorpe, SR .
DIABETES, 1999, 48 (01) :1-9
[8]   ROLE OF OXIDATIVE STRESS IN DEVELOPMENT OF COMPLICATIONS IN DIABETES [J].
BAYNES, JW .
DIABETES, 1991, 40 (04) :405-412
[9]   AUTOANTIBODIES AGAINST OXIDATIVELY MODIFIED LOW-DENSITY LIPOPROTEINS IN NIDDM [J].
BELLOMO, G ;
MAGGI, E ;
POLI, M ;
AGOSTA, FG ;
BOLLATI, P ;
FINARDI, G .
DIABETES, 1995, 44 (01) :60-66
[10]   Advanced glycation end product-induced activation of NF-kappa B is suppressed by alpha-lipoic acid in cultured endothelial cells [J].
Bierhaus, A ;
Chevion, S ;
Chevion, M ;
Hofmann, M ;
Quehenberger, P ;
Illmer, T ;
Luther, T ;
Berentshtein, E ;
Tritschler, H ;
Muller, M ;
Wahl, P ;
Ziegler, R ;
Nawroth, PP .
DIABETES, 1997, 46 (09) :1481-1490