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2
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Differential contribution of GTPase activation and effector antagonism to the inhibitory effect of RGS proteins on Gq-mediated signaling in vivo.GTP酶激活和效应器拮抗对RGS蛋白在体内对Gq介导信号传导抑制作用的差异贡献。
J Biol Chem. 2004 Feb 6;279(6):3906-15. doi: 10.1074/jbc.M309496200. Epub 2003 Nov 20.
2
Heterotrimeric G alpha q/G alpha 11 proteins function upstream of vascular endothelial growth factor (VEGF) receptor-2 (KDR) phosphorylation in vascular permeability factor/VEGF signaling.异源三聚体Gαq/Gα11蛋白在血管通透性因子/血管内皮生长因子(VEGF)信号传导中,于血管内皮生长因子(VEGF)受体-2(KDR)磷酸化的上游发挥作用。
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Platelet-derived growth factor activates production of reactive oxygen species by NAD(P)H oxidase in smooth muscle cells through Gi1,2.血小板衍生生长因子通过Gi1,2激活平滑肌细胞中NAD(P)H氧化酶产生活性氧。
FASEB J. 2003 Jan;17(1):38-40. doi: 10.1096/fj.01-1036fje. Epub 2002 Nov 1.
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RACK1 is an insulin-like growth factor 1 (IGF-1) receptor-interacting protein that can regulate IGF-1-mediated Akt activation and protection from cell death.RACK1是一种与胰岛素样生长因子1(IGF-1)受体相互作用的蛋白质,它可以调节IGF-1介导的Akt激活并保护细胞免于死亡。
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GIPC participates in G protein signaling downstream of insulin-like growth factor 1 receptor.GIPC参与胰岛素样生长因子1受体下游的G蛋白信号传导。
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Inhibition of insulin receptor catalytic activity by the molecular adapter Grb14.分子衔接蛋白Grb14对胰岛素受体催化活性的抑制作用。
J Biol Chem. 2002 Feb 15;277(7):4845-52. doi: 10.1074/jbc.M106574200. Epub 2001 Nov 28.
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G Protein beta gamma subunits act on the catalytic domain to stimulate Bruton's agammaglobulinemia tyrosine kinase.G蛋白βγ亚基作用于催化结构域以刺激布鲁顿无丙种球蛋白血症酪氨酸激酶。
J Biol Chem. 2002 Jan 11;277(2):1488-92. doi: 10.1074/jbc.M110390200. Epub 2001 Nov 6.
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Insulin and insulin-like growth factor I receptors utilize different G protein signaling components.胰岛素和胰岛素样生长因子I受体利用不同的G蛋白信号传导成分。
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9
GIPC and GAIP form a complex with TrkA: a putative link between G protein and receptor tyrosine kinase pathways.GIPC和GAIP与TrkA形成复合物:G蛋白与受体酪氨酸激酶途径之间的一种假定联系。
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10
Mechanism of transmembrane signaling: insulin binding and the insulin receptor.跨膜信号传导机制:胰岛素结合与胰岛素受体
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胰岛素受体的配体依赖性自磷酸化受Gi蛋白正向调节。

Ligand-dependent autophosphorylation of the insulin receptor is positively regulated by Gi-proteins.

作者信息

Kreuzer J, Nürnberg B, Krieger-Brauer H I

机构信息

Innere Medizin III, Universität Heidelberg, Bergheimer Str. 58, D-69115, Heidelberg, Germany.

出版信息

Biochem J. 2004 Jun 15;380(Pt 3):831-6. doi: 10.1042/BJ20031659.

DOI:10.1042/BJ20031659
PMID:15025562
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1224225/
Abstract

Previously, we have shown that the human insulin receptor (IR) interacts with G(i)2, independent of tyrosine kinase activity and stimulates NADPH oxidase via the Galpha subunit of G(i)2. We have now investigated the regulatory role of G(i)2-proteins in IR function. For the experiments, isolated IRs from plasma membranes of human fat cells were used. The activation of IR autophosphorylation by insulin was blocked by G-protein inactivation through GDPbetaS (guanosine 5'-[beta-thio]disphosphate). Consistently, activation of G-proteins by micromolar concentrations of GTPgammaS (guanosine 5'-[gamma-thio]triphosphate) induced receptor autophosphorylation 5-fold over baseline and increased insulin-induced autophosphorylation by 3-fold. In the presence of 10 microM GTPgammaS, insulin was active at picomolar concentrations, indicating that insulin acted via its cognate receptor. Pretreatment of the plasma membranes with pertussis toxin prevented insulin- and GTPgammaS-induced autophosphorylation, but did not disrupt the IR-G(i)2 complex. The functional nature of the IR-G(i)2 complex was made evident by insulin's ability to increase association of G(i)2 with the IR. This leads to an augmentation of maximal receptor autophosphorylation induced by insulin and GTPgammaS. The specificity of this mechanism was further demonstrated by the use of isolated preactivated G-proteins. Addition of G(i)2alpha and Gbetagamma mimicked maximal response of insulin, whereas Galphas or Galphao had no stimulatory effect. These results define a novel mechanism by which insulin signalling mediates tyrosine kinase activity and autophosphorylation of the IR through recruitment of G(i)-proteins.

摘要

此前,我们已经表明,人胰岛素受体(IR)与G(i)2相互作用,独立于酪氨酸激酶活性,并通过G(i)2的Gα亚基刺激NADPH氧化酶。我们现在研究了G(i)2蛋白在IR功能中的调节作用。在实验中,使用了从人脂肪细胞质膜分离的IR。通过GDPβS(鸟苷5'-[β-硫代]二磷酸)使G蛋白失活,可阻断胰岛素对IR自身磷酸化的激活。同样,微摩尔浓度的GTPγS(鸟苷5'-[γ-硫代]三磷酸)激活G蛋白,可诱导受体自身磷酸化比基线水平增加5倍,并使胰岛素诱导的自身磷酸化增加3倍。在存在10μM GTPγS的情况下,胰岛素在皮摩尔浓度下具有活性,表明胰岛素通过其同源受体起作用。用百日咳毒素预处理质膜可阻止胰岛素和GTPγS诱导的自身磷酸化,但不会破坏IR-G(i)2复合物。胰岛素增加G(i)2与IR结合的能力,证明了IR-G(i)2复合物的功能性质。这导致胰岛素和GTPγS诱导的最大受体自身磷酸化增强。使用分离的预激活G蛋白进一步证明了该机制的特异性。添加G(i)2α和Gβγ模拟了胰岛素的最大反应,而Gαs或Gαo没有刺激作用。这些结果定义了一种新机制,胰岛素信号通过募集G(i)蛋白介导IR的酪氨酸激酶活性和自身磷酸化。