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钒化合物对胰岛素信号通路的多功能作用:代谢效应优于促有丝分裂效应的证据。

Multifunctional actions of vanadium compounds on insulin signaling pathways: evidence for preferential enhancement of metabolic versus mitogenic effects.

作者信息

Fantus I G, Tsiani E

机构信息

Department of Medicine, Mount Sinai Hospital, Toronto, Ontario, Canada.

出版信息

Mol Cell Biochem. 1998 May;182(1-2):109-19.

PMID:9609120
Abstract

The pathophysiologic importance of insulin resistance in diseases such as obesity and diabetes mellitus has led to great interest in defining the mechanism of insulin action as well as the means to overcome the biochemical defects responsible for the resistance. Vanadium compounds have been discovered to mimic many of the metabolic actions of insulin both in vitro and in vivo and improve glycemic control in human subjects with diabetes mellitus. Apart from its direct insulinmimetic actions, we found that vanadate modulates insulin metabolic effects by enhancing insulin sensitivity and prolonging insulin action. All of these actions appear to be related to protein tyrosine phosphatase (PTP) inhibition. However, in contrast to its stimulatory effects, vanadate inhibits basal and insulin-stimulated system A amino acid uptake and cell proliferation. The mechanism of these actions also appears to be related to PTP inhibition, consistent with the multiple roles of PTPs in regulating signal transduction. While the precise biochemical pathway of vanadate action is not yet known, it is clearly different from that of insulin in that the insulin receptor and phosphatidylinositol 3'-kinase do not seem to be essential for vanadate stimulation of glucose uptake and metabolism. The ability of vanadium compounds to 'bypass' defects in insulin action in diseases characterized by insulin resistance and their apparent preferential metabolic versus mitogenic signaling profile make them attractive as potential pharmacological agents.

摘要

胰岛素抵抗在肥胖症和糖尿病等疾病中的病理生理重要性引发了人们对确定胰岛素作用机制以及克服导致抵抗的生化缺陷方法的极大兴趣。已发现钒化合物在体外和体内均可模拟胰岛素的许多代谢作用,并改善糖尿病患者的血糖控制。除了其直接的胰岛素模拟作用外,我们还发现钒酸盐可通过增强胰岛素敏感性和延长胰岛素作用来调节胰岛素的代谢效应。所有这些作用似乎都与蛋白酪氨酸磷酸酶(PTP)抑制有关。然而,与它的刺激作用相反,钒酸盐会抑制基础状态下以及胰岛素刺激后的系统A氨基酸摄取和细胞增殖。这些作用的机制似乎也与PTP抑制有关,这与PTP在调节信号转导中的多种作用一致。虽然钒酸盐作用的确切生化途径尚不清楚,但它显然与胰岛素不同之处在于,胰岛素受体和磷脂酰肌醇3'-激酶似乎对钒酸盐刺激葡萄糖摄取和代谢并非必不可少。钒化合物能够在以胰岛素抵抗为特征的疾病中“绕过”胰岛素作用缺陷,以及它们明显的代谢信号与促有丝分裂信号的优先分布,使其成为有吸引力的潜在药物。

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