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1.
赵瑛  杨烨  邬丽莎 《生命的化学》2007,27(4):318-320
作为G蛋白信号传递激活因子(activators of G protein signaling,AGS)之一的AGS3蛋白在大鼠脑组织、睾丸、肝脏、肾脏、心脏和胰腺组织中有不等量的分布,并且有AGS1、AGS2、AGS4、AGS8等家族成员.AGS3既有不依赖受体的Gβγ亚基信号传递激活因子的作用,也有二磷酸鸟苷解离抑制因子的作用.研究发现,慢性给予可卡因的大鼠长期戒断后,AGS3在大脑内的表达持续增加;而且还发现,AGS3与可卡因的复吸有关,它可能是引起阿片类药物成瘾复发的关键物质.  相似文献   

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细胞外钙受体(CaR)为G蛋白偶联受体超家族中的成员,它的大部分作用是以Gαi,Gαq和Gα12/13为中介的,但由G蛋白α亚基介导的作用并不能完全解释CaR的生物学效应.与CaR相互作用蛋白如抑制蛋白、G蛋白受体激酶、受体激活修饰蛋白、丝蛋白、钾通道、小窝蛋白等结构和信号蛋白赋予CaR独特的信号转导特征,并能够更充分说明CaR在不同组织和细胞中所发挥的作用.本文将对上述几种与其相互作用蛋白及它们所产生的生物学效应做一综述.  相似文献   

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G蛋白偶联受体(G protein-coupled receptors,GPCRs)是具有7个跨膜螺旋的蛋白质受体,是人体内最大的蛋白质超家族.GPCRs能调控细胞周期,参与多种植物信号通路以及影响一系列的代谢和分化活动.简要介绍了GPCR和G蛋白介导的信号转导机制,GPCRs的结构和植物GPCR及其在植物跨膜信号转导中的作用,并对GPCR的信号转导机制及植物抗病反应分子机制的研究提出展望.  相似文献   

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姜云璐  龚磊  白波  陈京 《生命科学》2014,(2):181-187
传统观念认为,在激动剂作用下,G蛋白偶联受体(GPCRs)能够激活G蛋白的α亚基,从而使Gα亚基与Gβγ亚基分离,被激活的Gα亚基通过信号转导进一步参与细胞的生理过程。但是,最新研究发现GPCRs和G蛋白存在多种偶联关系,GPCRs不仅能够激活Gα亚基,还可以与Gβγ亚基相互靠近,甚至会使G蛋白亚基构象发生重排而不分离,这对于疾病发病机制的研究及新的药物靶点的发现具有重要意义。就GPCRs与G蛋白之间的相互作用以及最新研究技术作一简要综述。  相似文献   

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刘飞  张幼怡 《生命科学》2008,20(1):53-57
G蛋白偶联受体是体内最大的受体超家族,它们参与调节生物体内多种生理功能与病理过程。G蛋白偶联受体的分子内构象变化与G蛋白的偶联以及受体的二聚化等是G蛋白偶联受体激活的重要基本过程。借助于单分予研究手段,在G蛋白偶联受体激活方面取得了重要进展。本文将就这些方面进行简要的综述。  相似文献   

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G蛋白偶联受体转激活酪氨酸激酶受体机制   总被引:1,自引:0,他引:1  
蒋明  郭卉  赵菡  周爱云  林昕  许婵娟  刘剑峰 《现代生物医学进展》2011,(Z1):4767-4769,4771,4800
G蛋白偶联受体(G-protien coupled receptors,GPCRs)和酪氨酸激酶受体(receptor tyrosine kinases,RTKs)是体内两类重要的受体家族,介导着绝大多数信号事件。GPCRs能够"绑架"RTKs进行信号转导,即GPCRs能够在没有外加RTKs配体的情况下激活RTKs,这种现象称为转激活。作为转激活的核心过程,GPCR调控RTK磷酸化主要采取RTK配体依赖模式和非RTK配体依赖模式。不同的G蛋白亚型、酪氨酸磷酸激酶、酪氨酸磷酸酶(protein-tyrosine phosphatases,PTPs)以及活性氧自由基(reactiveoxygen species,ROS)均在此过程中具有重要作用。GPCR和RTK还能形成信号复合体(signaling complex)从而实现蛋白质之间的动态相互作用。对转激活的研究为GPCR靶点药物开发提供了新思路。  相似文献   

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脂筏是细胞上富含特殊脂质和蛋白质的微结构域.随着脂筏作为细胞膜上信号传导的平台的认识,这个特征化的区域受到了越来越多的关注.大量的研究已经显示脂筏参与G蛋白偶联受体信号转导的调控.通过精细的调节G蛋白偶联受体、G蛋白和下游信号效应物等信号元件的活性,脂筏可以影响信号转导的专一性和信号偶联的效率.本综述主要介绍脂筏对G蛋白偶联受体信号转导的调控机制的研究进展.  相似文献   

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整合素是一类细胞表面受体家族分子,通过双向信号转导参与细胞与细胞外基质、细胞与细胞的粘附以及细胞的迁移.整合素αⅡbβ3(GPⅡb-Ⅲa)特异表达于巨核/血小板系,并且是其含量最多的膜糖蛋白,介导血小板的粘附、伸展、聚集等.G蛋白在整合素αⅡbβ3双向信号转导中发挥重要作用,其中较受关注的是:异源三聚体G蛋白和小G蛋白Rap1参与整合素αⅡbβ3的内向外信号转导;小G蛋白(Rho A、Rac等)和Gα13参与整合素αⅡbβ3的外向内信号转导.在蛋白质结构与功能关系的层面,本文总结了G蛋白的结构、分类、功能以及近年来G蛋白在整合素αⅡbβ3双向信号转导中作用的研究进展.  相似文献   

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Gab1蛋白属于接头蛋白Gab家族,该家族蛋白因能与生长因子受体结合蛋白2(Grb2)相结合而得名。作为接头蛋白,Gab1蛋白能被多种受体酪氨酸激酶或非受体酪氨酸激酶激活,接受胞外多种生长因子、细胞因子和一些T/B细胞抗原受体的刺激,介导PI3K/Akt和Ras/MAPK等多条信号转导途径,具有促进细胞生长、迁移、调节免疫等多种生物学功能,与糖尿病、肿瘤、心血管疾病等的发生发展密切相关。  相似文献   

10.
植物异三聚体G蛋白研究进展   总被引:2,自引:0,他引:2  
异三聚体鸟嘌呤核苷结合蛋白(简称G蛋白)是真核细胞中保守的信号转导分子,通常与G蛋白偶联受体一起将细胞外信号传递到胞质中。许多研究表明植物G蛋白介导的信号转导途径在光、激素、糖等响应过程中发挥着精细的调控作用。本文重点介绍近年来植物G蛋白在复合体组成、生化特性及其工作模式等方面的研究进展。  相似文献   

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The point of view that a uniquely folded protein tertiary structure is required for the protein functioning has been prevailing in the literature quite recently. However of lately it has been found that many proteins in a cell have no such structure in an isolated state, though they have a well-defined function in physiological conditions. These proteins were named as proteins with natural or internal disorder. The portion of disordered regions in such proteins may vary from a sequence of several amino acids to a completely disordered sequence containing from tens to hundreds of amino acids. The main difference of these proteins from the structured (globular) ones is that they have no unique tertiary structure in an isolated state and acquire it after interaction with their partners. Their conformation in such a complex depends on the interacting partner and not only on their own amino acid sequence, which is specific for structured (globular) proteins. The problem of structural and functional relations in the structured proteins and proteins with internal disorder is discussed in this review. The complexity of the problem and its potential solutions are illustrated by the example of elongation factors EFlA.  相似文献   

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Until recently, the point of view that the unique tertiary structure is necessary for protein function has prevailed. However, recent data have demonstrated that many cell proteins do not possess such structure in isolation, although displaying a distinct function under physiological conditions. These proteins were named the naturally, or intrinsically, disordered proteins. The fraction of intrinsically disordered regions in such proteins may vary from several amino acid residues to a completely unordered sequence of several tens or even several hundreds of residues. The main distinction of these proteins from structured (globular) proteins is that they have no unique tertiary structure in isolation and acquire it only upon interaction with their partners. The conformation of these proteins in a complex is determined not only by their own amino acid sequence (as is typical of structured, or globular, proteins) but also by the interacting partner. This review discusses the structure-function relationships in structured and intrinsically disordered proteins. The intricateness of this problem and the possible ways to solve it are illustrated by the example of the EF1A elongation factor family.  相似文献   

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Many steps in the control of gene expression are dependent on RNA-binding proteins, most of which are bi-functional, in as much as they both bind to RNA and interact with other protein partners in a functional complex. A powerful approach to study the functional properties of these proteins in vivo, independently of their RNA-binding ability, is to attach or tether them to specifically engineered reporter mRNAs whose fate can be easily followed. Two tethering systems have been mainly used in eukaryotic cells, namely the MS2 coat protein system and the lambda N-B box system. In this review, we firstly describe several studies in which these tethering systems have been used and provide an overview of these applications. We next describe the major features of these two systems, and, finally, we highlight a number of points that should be considered when designing experiments using this approach.  相似文献   

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