Structure-Function of Opioid Receptors
Structure-Function of Opioid Receptors
批准号:
8667564
负责人:
Bryan L. Roth
金额:
$153.19万
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:
2014-04-01 至 2014-12-31
关键词:
AddressAgonistAlcoholsAmphetaminesAnxietyArrestinsBehaviorBehavioralBindingBiochemicalCessation of lifeChimeric ProteinsCocaineCollaborationsComplexComputer AssistedDevelopmentDrug AddictionDrug DesignG Protein-Coupled Receptor GenesGTP-Binding ProteinsIn VitroLigand BindingLigandsMAPK8 geneMediatingMental DepressionMolecularMolecular ProfilingNarcotic AnalgesicsNational Institute of General Medical SciencesNational Institute of Mental HealthOpiatesOpioidOpioid ReceptorOverdosePainPharmaceutical PreparationsPharmacologic SubstancePhysical DependencePreclinical Drug EvaluationProductionPropertyProteinsPsychotropic DrugsReportingResearchResourcesSeriesSignal TransductionSolutionsStructureSubstance abuse problemSupport GroupsSystemTestingX-Ray Crystallographyaddictionbasechronic paincomputer studiesdesignheroin overdosehigh riskin vivolarge scale productionmolecular recognitionmutantnociceptin receptornovelnovel therapeuticsprogramspublic health relevancereceptorscreeningsmall moleculetool
中文摘要
描述(由申请人提供):针对阿片系统的物质是广泛使用的药物;用于治疗慢性疼痛的激动剂(麻醉镇痛剂);通常用于治疗成瘾性疾病的拮抗剂,包括物质滥用(阿片、酒精、安非他明)和非物质,即行为成瘾。鉴于与类阿片激动剂治疗有关的困难、因过量而死亡的高风险(2008年报告的受害者人数超过海洛因和可卡因过量的总和)以及耐受性和成瘾性的发展,需要更安全的麻醉镇痛剂。拟议的研究计划使用结构,计算,生物物理,生物化学和药理学方法:(1)发展对阿片受体作用的新水平的理解,|j,6,K和痛敏素受体,确定分子识别和激活的结构基础,和(2)设计新的结合配体。目的是(1)使用X射线晶体学和NMR了解阿片受体分子识别和功能选择性;(2)使用计算方法了解四种受体的功能和药理学选择性的分子机制;(3)了解配体导向的信号传导(G蛋白,抑制蛋白,JNK依赖性)及其在介导阿片受体作用中的相关性。由四个核心小组通过项目间合作支持的三个项目将以今年之前无法想象的规模解决重要但困难的问题。项目一将对配体结合的复合物进行结构测定。项目2将进行计算研究,以确定阿片受体的结合口袋,并进行计算机辅助SBDD设计一系列新的优化化合物,包括变构,功能选择性和双配体。项目3将进行体外和体内研究,以表征配体的药理学特性,并产生新的受体偏向突变体,以测试与功能选择性和阿片受体作用相关的假设。核心小组支持所有3个项目的目标,并将负责(1)大规模生产纯化的阿片受体;(2)合成阿片配体,包括新设计的用于结构和功能研究的工具化合物;(3)分子分析和筛选新的小分子,以及(4)管理和管理整个计划。设施资源将由NIGMS GPCR网络的结构测定管道提供,用于大规模蛋白质生产和结构解决方案,以及NIMH精神活性药物筛选计划资源,用于新型小分子的选择性分析。
英文摘要
DESCRIPTION (provided by applicant): Substances addressing the opioid system are widely used pharmaceuticals; agonists (narcotic analgesics) for the treatment of chronic pain; antagonists generally for the treatment of addictive disorders, including substance abuse (opiate, alcohol, amphetamine) and non-substance, i.e. behavioral addictions. Given the difficulties associated with opioid agonist therapy, high risk of death due to overdose (more victims were reported in 2008, than overdose of heroin and cocaine combined) and the development of tolerance and addiction, there is a need for safer narcotic analgesics. The proposed research program uses structural, computational, biophysical, biochemical, and pharmacological approaches: (1) to develop a new level of understanding of the action the opioid receptors, | j , 6, K, and the nociceptin receptor, defining the structural basis for molecuar recognition and activation, and (2) to design new binding ligands. Aims are to (1) understand opioid receptor molecular recognition and functional selectivity using X-ray crystallography and NMR; (2) understand the molecular mechanisms for functional and pharmacological selectivity for the four receptors using computational approaches; and (3) understand ligand-directed signaling (G-protein-, arrestin-, JNK-dependent) and its relevance in mediating opioid receptor action. Three projects supported by four core groups via inter-project collaborations will address important but difficult questions at a scale not imagined prior to this year. Project 1 will carry ut structural determination on ligand bound complexes. Project 2 will carry out computational studies to define the binding pockets of opioid receptors and perform computer-assisted SBDD to design a new series of optimized compounds including allosteric, functionally selective and bitopic ligands. Project 3, will carry out in vitro and in vivo studies to characterize pharmacological properties of ligands and generate new receptor biased mutants to test hypotheses related to functional selectivity and opioid receptor actions. Core groups support the aims of all 3 projects and will be responsible for (1) large-scale production of purified opioid receptors; (2) synthesis of opiate ligands including newly designed tool compounds for structural and functional studies; (3) molecular profiling and screening of new small molecules, and (4) management and administration of the overall program. Facility resources will be provided by the NIGMS GPCR Networks' Structural Determination Pipeline for large-scale protein production and structure solution and the NIMH Psychoactive Drug Screening Program resources for selectivity profiling of novel small molecules.
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