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缺铜大鼠的葡萄糖-6-磷酸酶活性。

Glucose-6-phosphatase Activity in Copper-Deficient Rats.

机构信息

United States Department of Agriculture, Agricultural Research Service, Grand Forks Human Nutrition Research Center and Department of Biochemistry and Molecular Biology, University of North Dakota School of Medicine, 58202, Grand Forks, North Dakota.

出版信息

Biol Trace Elem Res. 1984 Oct;6(5):369-78. doi: 10.1007/BF02989254.

Abstract

Copper deficiency has been reported to cause glucose intolerance in rats by interfering with normal glucose utilization. Accordingly, copper deficiency was produced in rats to study its effects on glucose-6-P phosphohydrolase and carbamyl-P: glucose phosphotransferase activities of hepatic glucose-6-phosphatase (EC 3.1.3.9), a major enzyme involved in maintaining glucose homeostasis. When measured in homogenates treated with deoxycholate, total glucose-6-P phosphohydrolase was 23% lower and total carbamyl-P:glucose phosphotransferase was 17% lower in copper-deficient rats compared to controls. Latency, or that portion of total activity that is not manifest unless the intact membranous components are disrupted with deoxycholate also was lower in copper-deficient rats. Glucose-6-P phosphohydrolase was 5% latent in copper-deficient rats compared to 24% in controls and carbamyl-P : glucose phosphotransferase was 55% latent in copper-deficient rats compared to 65% in controls. The decrease in latency appears to compensate for the lower total enzyme activities in such a manner as to allow the net expression of these activities in the intact membranous components of the homogenate to remain unaltered by copper deficiency. It thus appears unlikely that copper deficiency affects glucose homeostasis in vivo by altering the net rate of glucose-6-P hydrolysis or synthesis by glucose-6-phosphatase. These observations are interpreted on the basis of a multicomponent glucose-6-phosphatase system in which the total enzyme activity expressed in intact membranous preparation is limited by substrate specific translocases that transport substrate to the membrane-bound catalytic unit. A decrease in latency can then be interpreted as a functional increase in translocase activity and may constitute a compensating mechanism for maintaining constant glucose homeostasis when glucose-6-phosphatase catalytic activity is depressed as it is in copper deficiency.

摘要

铜缺乏症已被报道可通过干扰正常的葡萄糖利用而导致大鼠葡萄糖不耐受。因此,在大鼠中产生铜缺乏症以研究其对肝葡萄糖-6-磷酸酶(EC 3.1.3.9)中葡萄糖-6-磷酸磷酸水解酶和氨甲酰-P:葡萄糖磷酸转移酶活性的影响,葡萄糖-6-磷酸酶是参与维持葡萄糖内稳态的主要酶之一。在经去氧胆酸盐处理的匀浆中测量时,与对照组相比,铜缺乏症大鼠的总葡萄糖-6-磷酸磷酸水解酶活性降低了 23%,总氨甲酰-P:葡萄糖磷酸转移酶活性降低了 17%。潜伏期,即在没有用去氧胆酸盐破坏完整的膜成分的情况下未表现出的总活性部分,在铜缺乏症大鼠中也较低。与对照组的 24%相比,铜缺乏症大鼠的葡萄糖-6-磷酸磷酸水解酶的潜伏期为 5%,与对照组的 65%相比,铜缺乏症大鼠的氨甲酰-P:葡萄糖磷酸转移酶的潜伏期为 55%。潜伏期的降低似乎以这样的方式补偿了总酶活性的降低,即允许这些活性在匀浆的完整膜成分中的净表达不受铜缺乏的影响。因此,铜缺乏似乎不太可能通过改变葡萄糖-6-磷酸酶的净葡萄糖-6-磷酸水解或合成速率来影响体内葡萄糖稳态。这些观察结果是基于多组分葡萄糖-6-磷酸酶系统进行解释的,在该系统中,完整膜制剂中表达的总酶活性受到将底物转运至膜结合催化单元的底物特异性转运蛋白的限制。潜伏期的降低然后可以解释为转运蛋白活性的功能增加,并且当葡萄糖-6-磷酸酶催化活性降低时(如铜缺乏症中),可以构成维持葡萄糖内稳态恒定的补偿机制。

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