Suppr超能文献

磷脂酰肌醇转移蛋白通过促进磷脂酰肌醇-4,5-二磷酸(PIP2)的合成来决定三磷酸肌醇的产生速率。

Phosphatidylinositol transfer protein dictates the rate of inositol trisphosphate production by promoting the synthesis of PIP2.

作者信息

Cunningham E, Thomas G M, Ball A, Hiles I, Cockcroft S

机构信息

Department of Physiology, University College London, UK.

出版信息

Curr Biol. 1995 Jul 1;5(7):775-83. doi: 10.1016/s0960-9822(95)00154-0.

Abstract

BACKGROUND

Phosphatidylinositol transfer protein (PI-TP), which has the ability to transfer phosphatidylinositol (PI) from one membrane compartment to another, is required in the inositol lipid signalling pathway through phospholipase C-beta (PLC-beta) that is regulated by GTP-binding protein(s) in response to extracellular signals. Here, we test the hypothesis that the principal role of PI-TP is to couple sites of lipid hydrolysis to sites of synthesis, and so to replenish depleted substrate for PLC-beta.

RESULTS

We have designed an experimental protocol that takes advantage of the different rates of release of endogenous PI-TP and PLC-beta from HL60 cells permeabilized with streptolysin O. We have examined the kinetics of stimulated inositol lipid hydrolysis in cells depleted of PI-TP, but not of endogenous PLC-beta, in the presence and absence of exogenous PI-TP. Linear time-courses were observed in the absence of any added protein, and the rate was accelerated by PI-TP using either guanosine 5'[gamma-thio]-triphosphate (GTP gamma S) or the receptor-directed agonist fMetLeuPhe as activators. In addition, depletion from the cells of both PI-TP and PLC-beta isoforms by extended permeabilization (40 minutes) allowed us to control the levels of PLC-beta present in the cells. Once again, PI-TP increased the rates of reactions. To identify whether the role of PI-TP was to make available the substrate phosphatidylinositol bisphosphate (PIP2) for the PLC, we examined the synthesis of PIP2 in cells depleted of PI-TP. We found that PI-TP was essential for the synthesis of PIP2.

CONCLUSIONS

The predicted function of PI-TP in inositol lipid signalling is the provision of substrate for PLC-beta from intracellular sites where PI is synthesized. We propose that PI-TP is in fact a co-factor in inositol lipid signalling and acts by interacting with the inositol lipid kinases. We hypothesize that the preferred substrate for PLC-beta is not the lipid that is resident in the membrane but that provided through PI-TP.

摘要

背景

磷脂酰肌醇转移蛋白(PI-TP)能够将磷脂酰肌醇(PI)从一个膜区室转移至另一个膜区室,它是肌醇脂质信号通路中通过磷脂酶C-β(PLC-β)所必需的,而PLC-β受GTP结合蛋白调控以响应细胞外信号。在此,我们检验这样一个假说,即PI-TP的主要作用是将脂质水解位点与合成位点相偶联,从而补充PLC-β耗尽的底物。

结果

我们设计了一个实验方案,利用经链球菌溶血素O通透处理的HL60细胞中内源性PI-TP和PLC-β不同的释放速率。我们研究了在有和没有外源性PI-TP的情况下,耗尽PI-TP但未耗尽内源性PLC-β的细胞中刺激的肌醇脂质水解动力学。在未添加任何蛋白质的情况下观察到线性时间进程,并且使用鸟苷5'-[γ-硫代]三磷酸(GTPγS)或受体导向激动剂fMetLeuPhe作为激活剂时,PI-TP加速了反应速率。此外,通过延长通透处理(40分钟)从细胞中耗尽PI-TP和PLC-β同工型,使我们能够控制细胞中PLC-β的水平。PI-TP再次提高了反应速率。为了确定PI-TP的作用是否是为PLC提供底物磷脂酰肌醇二磷酸(PIP2),我们研究了耗尽PI-TP的细胞中PIP2的合成。我们发现PI-TP对于PIP2的合成至关重要。

结论

PI-TP在肌醇脂质信号传导中的预测功能是从合成PI的细胞内位点为PLC-β提供底物。我们提出PI-TP实际上是肌醇脂质信号传导中的一个辅助因子,通过与肌醇脂质激酶相互作用发挥作用。我们推测PLC-β的首选底物不是膜中存在的脂质,而是通过PI-TP提供的脂质。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验