Single-molecule and ensemble imaging of GPCR-G protein complexes in live cells
Single-molecule and ensemble imaging of GPCR-G protein complexes in live cells
批准号:
8668295
负责人:
Jonathan A Javitch
金额:
$28.4万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-07-01 至 2018-04-30
关键词:
Cell Surface ReceptorsCell membraneCell physiologyCell surfaceCellsComplexCoupledDiseaseDissociationDrug PrescriptionsDrug ReceptorsDyesEnzymesEquilibriumEventExhibitsFamilyG-Protein-Coupled ReceptorsG-substrateGTP-Binding ProteinsHeterotrimeric GTP-Binding ProteinsImageImage AnalysisImaging technologyImmobilizationIon ChannelLabelLeftLifeLigand BindingLigandsMacromolecular ComplexesMeasurementMeasuresMediatingMembrane ProteinsMethodsModelingPathway interactionsPharmaceutical PreparationsPhysiologicalPublished CommentReactionReceptor ActivationResolutionSamplingSideSignal TransductionSystemTestingTimedrug of abuseexperienceextracellulargeranylgeranyl pyrophosphateindexingoverexpressionprotein activationprotein complexpublic health relevancereceptorresearch studyscaffoldsingle molecule
中文摘要
描述(由申请人提供):G蛋白偶联受体(gpcr)是最大的细胞表面受体家族,是大部分处方药和滥用药物的靶标。gpcr主要通过激活胞内异三聚体gtp结合蛋白(G蛋白)来改变细胞生理。G蛋白活化的步骤包括配体结合,受体活化,最终在配体、活性受体和非活性G蛋白(LR*GGDP)之间形成“偶联”复合物,直接导致G蛋白活化。长期以来,人们一直假设,在“预偶联”或“预组装”RGGDP复合物中,失活的gpcr和G蛋白在受体激活之前相互关联。然而,这些复合物在细胞中的存在和相关性很难被记录下来,很大程度上是因为研究膜蛋白之间瞬态相互作用的方法还不可行。我们最近成功地检测了活细胞中gpcr和Gq异源三聚体之间的预组装复合物,并证明了它们的生理意义。然而,这些研究留下了许多重要的问题没有得到解答,部分原因是它们完全依赖于集合测量。一个关键问题是失活状态预组装受体- g蛋白(RGGDP)复合物的寿命。集成实验表明,预组装的RGGDP配合物的寿命比活性态的耦合配合物长,但这两种寿命都不能用现有的方法确定。长寿命的预组装RGGDP复合物将允许受体“自我支架”G蛋白,即维持高局部浓度的准备激活的异源三聚体。在这里,我们提出在活细胞中使用定量集合和单分子成像来研究RGGDP复合物。集成成像将允许我们确定预组装是否作为几种不同的gpcr和G蛋白异源三聚体的自支架机制。单分子成像将使我们能够直接观察非活性状态预组装RGGDP复合物的形成和解离。因此,我们将能够定量地评估对G蛋白信号传导重要的大分子复合物的寿命。这些实验对直接领域的影响将是确定预组装是G蛋白激活途径的重要步骤,还是一种罕见的副反应。就大分子相互作用而言,该项目的影响将包括改进集成和单分子成像技术,以检测活细胞中的膜蛋白相互作用,包括表达系统、染料、标记、固定、成像和分析策略。
英文摘要
DESCRIPTION (provided by applicant): G protein-coupled receptors (GPCRs) are the largest family of cell surface receptors, and are the targets of a substantial fraction of all prescribed ad abused drugs. GPCRs change cellular physiology primarily by activating intracellular heterotrimeric GTP-binding proteins (G proteins). The steps involved in G protein activation include ligand binding, receptor activation, and ultimately the formation of a "coupled" complex between a ligand, an active receptor and an inactive G protein (LR*GGDP), leading directly to G protein activation. It has long been hypothesized that inactive GPCRs and G proteins associate with each other prior to receptor activation in "precoupled" or "preassembled" RGGDP complexes. However, the existence and relevance of these complexes in cells have been difficult to document, largely because methods to study transient interactions between membrane proteins have not been available. We recently succeeded in detecting preassembled complexes between GPCRs and Gq heterotrimers in living cells, and in demonstrating their physiological significance. However, these studies left a number of important questions unanswered, in part because they relied exclusively on ensemble measurements. One critical question is the lifetime of inactive-state preassembled receptor-G protein (RGGDP) complexes. Ensemble experiments suggest that the lifetime of a preassembled RGGDP complex is long compared to the active-state, coupled complex, but neither of these lifetimes can be determined using existing methods. Long-lived preassembled RGGDP complexes would allow receptors to "self-scaffold" G proteins, i.e. maintain a high local concentration of heterotrimers ready for activation. Here we propose to study RGGDP complexes using quantitative ensemble and single-molecule imaging in living cells. Ensemble imaging will allow us to determine if preassembly serves as a self-scaffolding mechanism for several different GPCRs and G protein heterotrimers. Single-molecule imaging will allow us to directly observe the formation and dissociation of inactive-state preassembled RGGDP complexes. We will thus be able to quantitatively assess the lifetimes of the macromolecular complexes important for G protein signaling. The impact of these experiments on the immediate field will be to determine if preassembly is a significant step along the pathway to G protein activation, or alternatively if itis a rare side-reaction. With respect to macromolecular interactions in general, the impact of this project will include refinement of ensemble and single-molecule imaging technology to detect membrane protein interactions in living cells, including expression systems, dyes, labeling, immobilization, imaging and analysis strategies.
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