Structure and Function of TRPV Ion Channels
Structure and Function of TRPV Ion Channels
批准号:
8131296
负责人:
RACHELLE GAUDET
金额:
$3.57万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-02-01 至 2013-01-31
关键词:
AccountingAddressAffectBindingBinding SitesBiochemicalC-terminalCalciumCapsaicinCellsChemicalsDataDrug CompoundingDrug Delivery SystemsElectrophysiology (science)Family memberGoalsHealth Services ResearchHomeostasisIon ChannelKnowledgeLigand BindingLigandsLinkLiteratureLocationMediatingModelingModificationMolecularMolecular ConformationMutagenesisPainPerceptionPhosphatidylinositol 4,5-DiphosphatePhosphatidylinositolsProteinsPublished CommentRegulationReportingResearchSensoryStimulusStructureTRPV channelTRPV1 geneTestingWorkbasecrosslinkdesigndrug developmentinsightmemberprogramsresearch studyresponsesmall moleculesuccess
中文摘要
描述(由申请人提供):拟议研究的长期目标是在分子和结构水平上了解TRPV离子通道反应如何整合外部刺激和细胞状态。TRPV通道在感觉和疼痛感知以及钙稳态中是重要的。在分子水平上,TRPV通道的大的N-和C-末端胞质结构域感知关于细胞状态的信息-例如钙和磷酸肌醇水平-以调节通道敏感性。我们最近已经确定了一个生理上重要的多配体结合位点内的TRPV 1-ARD调节TRPV 1通道的敏感性。该建议扩展了这些最近的结果,以解决如何与TRPV N-和C-末端胞质区域的小分子和蛋白质配体的相互作用协同调节通道的敏感性。TRPV离子通道是重要的药物靶点,TRPV通道的结构和功能研究结果将为药物开发提供新的基于结构的设计策略。这项工作可分为以下具体目标:目标1。为了从结构上表征TRPV 1胞质区域中的调节配体结合位点:我们的工作模型是,在TRPV 1通道打开时,随着Ca 2+进入细胞,PIP 2从TRPV 1-CT释放,ATP从TRPV 1-ARD释放,使得Ca 2+结合的CaM可以交联TRPV 1的N和C末端,从而使通道失活。我们将使用生化,结构和电生理实验来测试这个工作模型,并解决TRPV 1的N-和C-末端配体结合位点之间的功能关系。目标2.为了表征TRPV通道的ARDs的共同和独特的调节相互作用:TRPV 1是六个哺乳动物TRPV亚家族成员中研究最好的。我们利用我们成功地从所有家族成员中制备TRPV-ARD的优势,以确定是否有任何其他TRPV-ARD共享TRPV 1中发现的ATP或CaM结合位点,如果是这样,是否共享ATP或CaM介导的通道调节机制。我们还将确定几个独特的TRPV-ARD相互作用的结构。结果将提供深入了解TRPV通道的功能和调节的保守与专业化的程度。目标3:为了确定TRPV 1通道中辣椒素敏感性的结构决定因素:最终,为了了解通道敏感性是如何调节的,我们还需要了解通道是如何激活的。该目标的目的是通过诱变、化学修饰和电生理学的组合来确定TRPV 1内结合辣椒素或在通道激活时改变构象的区域。辣椒素结合位点是通道内潜在的疼痛缓解药物化合物靶向的主要位置。因此,我们获得的关于辣椒素结合位点以及辣椒素如何影响TRPV 1通道构象的知识可以应用于药物开发,将我们的结果与医疗保健研究直接联系起来。
英文摘要
DESCRIPTION (provided by applicant): The long term goal of the proposed research is to understand at a molecular and structural level how TRPV ion channel responses integrate external stimuli and cellular state. The TRPV channels are important in sensory and pain perception and in calcium homeostasis. At a molecular level, the large N- and C-terminal cytosolic domains of TRPV channels sense information about the cellular state - calcium and phosphoinositide levels, for example - to regulate channel sensitivity. We have recently identified a physiologically important multi-ligand binding site within the TRPV1-ARD that modulates TRPV1 channel sensitivity. This proposal expands on these recent results to address how interactions of small molecule and protein ligands with the TRPV N- and C-terminal cytosolic regions synergize to regulate channel sensitivity. TRPV ion channels are important drug targets and the results of the proposed structure and function studies of TRPV channels will enable new structure-based design strategies for drug development. The work can be divided in the following specific aims: Aim 1. To structurally characterize the regulatory ligand binding sites in the TRPV1 cytosolic regions: Our working model is that upon TRPV1 channel opening, as Ca2+ enters the cell, PIP2 is released from the TRPV1-CT and ATP from the TRPV1-ARD, such that Ca2+-bound CaM can crosslink the Nand C-termini of TRPV1, thereby inactivating the channel. We will use biochemical, structural and electrophysiological experiments to test this working model and address the functional relationship between the N- and C-terminal ligand binding sites in TRPV1. Aim 2. To characterize shared and unique regulatory interactions of the ARDs of TRPV channels: TRPV1 is the best studied of the six mammalian TRPV subfamily members. We take advantage of our success in preparing TRPV-ARDs from all family members to determine whether any other TRPV-ARD shares the ATP or CaM binding site found in TRPV1 and, if so, whether the ATP- or CaM-mediated channel regulation mechanisms are shared. We will also determine the structure of several unique TRPV-ARD interactions. The results will provide insights into the extent of conservation vs. specialization of the function and regulation of TRPV channels. Aim 3. To identify the structural determinants of capsaicin sensitivity in the TRPV1 channel: Ultimately, to understand how channel sensitivity is regulated, we also need to understand how the channel is activated. The goal of this aim is to pinpoint the regions within TRPV1 that bind capsaicin or change conformation upon channel activation, through a combination of mutagenesis, chemical modifications and electrophysiology. The capsaicin binding site is a prime location within the channel to target with potential pain relief drug compounds. Knowledge we gain about the capsaicin binding site and how capsaicin affects the conformation of the TRPV1 channel can therefore be applied to drug development, directly linking our results to healthcare research.
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