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葡萄糖可降低胰腺β细胞中钠钾ATP酶的活性。该效应是通过不依赖钙离子的磷脂酶A2和α亚基的蛋白激酶C依赖性磷酸化介导的。

Glucose decreases Na+,K+-ATPase activity in pancreatic beta-cells. An effect mediated via Ca2+-independent phospholipase A2 and protein kinase C-dependent phosphorylation of the alpha-subunit.

作者信息

Owada S, Larsson O, Arkhammar P, Katz A I, Chibalin A V, Berggren P O, Bertorello A M

机构信息

Rolf Luft Center for Diabetes Research L6B:01, Department of Molecular Medicine, Karolinska Institutet, Karolinska Hospital, S-171 76 Stockholm, Sweden.

出版信息

J Biol Chem. 1999 Jan 22;274(4):2000-8. doi: 10.1074/jbc.274.4.2000.

Abstract

In the pancreatic beta-cell, glucose-induced membrane depolarization promotes opening of voltage-gated L-type Ca2+ channels, an increase in cytoplasmic free Ca2+ concentration ([Ca2+]i), and exocytosis of insulin. Inhibition of Na+,K+-ATPase activity by ouabain leads to beta-cell membrane depolarization and Ca2+ influx. Because glucose-induced beta-cell membrane depolarization cannot be attributed solely to closure of ATP-regulated K+ channels, we investigated whether glucose regulates other transport proteins, such as the Na+,K+-ATPase. Glucose inhibited Na+,K+-ATPase activity in single pancreatic islets and intact beta-cells. This effect was reversible and required glucose metabolism. The inhibitory action of glucose was blocked by pretreatment of the islets with a selective inhibitor of a Ca2+-independent phospholipase A2. Arachidonic acid, the hydrolytic product of this phospholipase A2, also inhibited Na+, K+-ATPase activity. This effect, like that of glucose, was blocked by nordihydroguaiaretic acid, a selective inhibitor of the lipooxygenase metabolic pathway, but not by inhibitors of the cyclooxygenase or cytochrome P450-monooxygenase pathways. The lipooxygenase product 12(S)-HETE (12-S-hydroxyeicosatetranoic acid) inhibited Na+,K+-ATPase activity, and this effect, as well as that of glucose, was blocked by bisindolylmaleimide, a specific protein kinase C inhibitor. Moreover, glucose increased the state of alpha-subunit phosphorylation by a protein kinase C-dependent process. These results demonstrate that glucose inhibits Na+, K+-ATPase activity in beta-cells by activating a distinct intracellular signaling network. Inhibition of Na+,K+-ATPase activity may thus be part of the mechanisms whereby glucose promotes membrane depolarization, an increase in [Ca2+]i, and thereby insulin secretion in the pancreatic beta-cell.

摘要

在胰腺β细胞中,葡萄糖诱导的膜去极化促进电压门控L型Ca2+通道开放,使细胞质游离Ca2+浓度([Ca2+]i)升高,并引发胰岛素的胞吐作用。哇巴因抑制Na+,K+-ATP酶活性会导致β细胞膜去极化和Ca2+内流。由于葡萄糖诱导的β细胞膜去极化不能仅归因于ATP调节的K+通道关闭,我们研究了葡萄糖是否调节其他转运蛋白,如Na+,K+-ATP酶。葡萄糖抑制单个胰岛和完整β细胞中的Na+,K+-ATP酶活性。这种作用是可逆的,且需要葡萄糖代谢。用Ca2+非依赖性磷脂酶A2的选择性抑制剂预处理胰岛可阻断葡萄糖的抑制作用。该磷脂酶A2的水解产物花生四烯酸也抑制Na+,K+-ATP酶活性。与葡萄糖的作用一样,这种作用被脂氧合酶代谢途径的选择性抑制剂去甲二氢愈创木酸阻断,但未被环氧化酶或细胞色素P450单加氧酶途径的抑制剂阻断。脂氧合酶产物12(S)-HETE(12-S-羟基二十碳四烯酸)抑制Na+,K+-ATP酶活性,且这种作用以及葡萄糖的作用均被特异性蛋白激酶C抑制剂双吲哚马来酰亚胺阻断。此外,葡萄糖通过蛋白激酶C依赖性过程增加α亚基的磷酸化状态。这些结果表明,葡萄糖通过激活一个独特的细胞内信号网络来抑制β细胞中的Na+,K+-ATP酶活性。因此,抑制Na+,K+-ATP酶活性可能是葡萄糖促进膜去极化、[Ca2+]i升高从而促进胰腺β细胞胰岛素分泌的机制的一部分。

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