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一种用于胰岛素触发葡萄糖转运体插入质膜的PI3激酶信号编码。

A PI3-kinase signaling code for insulin-triggered insertion of glucose transporters into the plasma membrane.

作者信息

Tengholm Anders, Meyer Tobias

机构信息

Department of Molecular Pharmacology, Stanford University School of Medicine, 269 Campus Drive, Stanford, CA 94305, USA.

出版信息

Curr Biol. 2002 Oct 29;12(21):1871-6. doi: 10.1016/s0960-9822(02)01223-x.

DOI:10.1016/s0960-9822(02)01223-x
PMID:12419189
Abstract

Activation of phosphatidyl-inositol-3'-OH-kinase (PI3K) and the resulting production of phosphatidyl-inositol-3,4,5-trisphosphate (PIP3) are ubiquitous signaling steps that link various cell surface receptors to multiple intracellular targets. In fat and muscle cells, the same PI3K pathway that regulates metabolic enzymes, proliferation, and differentiation has also been shown to be involved in insulin-triggered insertion of glucose transporter GLUT4 into the plasma membrane. The multiple PI3K functions raise the question of how the same PI3K pathway can be selectively used for different cell functions. Here we developed a dual-color evanescent wave microscopy method to simultaneously measure PIP3 production and GLUT4 insertion in individual 3T3L1 adipocytes. Activation of PI3K was found to be both necessary and sufficient for triggering GLUT4 insertion, but transporter insertion was markedly suppressed for small-amplitude, persistent PIP3 signals and for large-amplitude, short PIP3 signals. The rejection of these common PI3K signaling responses may explain the selective advantage of insulin over platelet-derived growth factor and other stimuli for inducing GLUT4 insertion. Our study suggests that the same PI3K pathway can control specific cell functions by relying on effector systems that respond to particular receptor-encoded time courses and amplitudes of PIP3 signals.

摘要

磷脂酰 - 肌醇 - 3'-OH - 激酶(PI3K)的激活以及由此产生的磷脂酰 - 肌醇 - 3,4,5 - 三磷酸(PIP3)是普遍存在的信号传导步骤,可将各种细胞表面受体与多个细胞内靶点联系起来。在脂肪和肌肉细胞中,调节代谢酶、增殖和分化的同一PI3K途径也已被证明参与胰岛素触发的葡萄糖转运蛋白GLUT4插入质膜的过程。PI3K的多种功能引发了一个问题,即同一PI3K途径如何能够被选择性地用于不同的细胞功能。在这里,我们开发了一种双色倏逝波显微镜方法,以同时测量单个3T3L1脂肪细胞中PIP3的产生和GLUT4的插入。发现PI3K的激活对于触发GLUT4插入既是必要的也是充分的,但对于小幅度、持续的PIP3信号以及大幅度、短暂的PIP3信号,转运蛋白的插入受到明显抑制。这些常见PI3K信号反应的被抑制可能解释了胰岛素相对于血小板衍生生长因子和其他刺激在诱导GLUT4插入方面的选择性优势。我们的研究表明,同一PI3K途径可以通过依赖效应系统来控制特定的细胞功能,这些效应系统对特定受体编码的PIP3信号的时间进程和幅度做出反应。

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