Prolonged suppression of glucose metabolism causes insulin resistance in rat skeletal muscle

被引:19
|
作者
Kim, JK [1 ]
Youn, JH [1 ]
机构
[1] UNIV SO CALIF, SCH MED, DEPT PHYSIOL & BIOPHYS, LOS ANGELES, CA 90033 USA
关键词
glycolysis; glycogen synthesis; hexosamine; hexokinase; glucose transport;
D O I
10.1152/ajpendo.1997.272.2.E288
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
To determine whether an impairment of intracellular glucose metabolism causes insulin resistance, we examined the effects of suppression of glycolysis or glycogen synthesis on whole body and skeletal muscle insulin-stimulated glucose uptake during 450-min hyperinsulinemic euglycemic clamps in conscious rats. After the initial 150 min to attain steady-state insulin action, animals received an additional infusion of saline. Intralipid and heparin (to suppress glycolysis), or amylin (to suppress glycogen synthesis) for up to 300 min. Insulin-stimulated whole body glucose fluxes were constant with saline infusion (n = 7). In contrast, Intralipid infusion (n = 7) suppressed glycolysis by similar to 32%, and amylin infusion (n = 7) suppressed glycogen synthesis by similar to 45% within 30 min after the start of the infusions (P < 0.05). The suppression of metabolic fluxes increased muscle glucose 6-phosphate levels (P < 0.05), but this did not immediately affect insulin-stimulated glucose uptake due to compensatory increases in other metabolic fluxes. Insulin-stimulated whole body glucose uptake started to decrease at similar to 60 min and was significantly decreased by similar to 30% at the end of clamps (P < 0.05). Similar patterns of changes in insulin-stimulated glucose fluxes were observed in individual skeletal muscles. Thus the suppression of intracellular glucose metabolism caused decreases in insulin-stimulated glucose uptake through a cellular adaptive mechanism in response to a prolonged elevation of glucose 6-phosphate rather than the classic mechanism involving glucose 6-phosphate inhibition of hexokinase.
引用
收藏
页码:E288 / E296
页数:9
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