Novel Computational Methods for Modeling Cytochrome P450 Mediated Drug Metabolism
Novel Computational Methods for Modeling Cytochrome P450 Mediated Drug Metabolism
批准号:
8515459
负责人:
Markus Alexander Lill
金额:
$19.4万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-01 至 2015-07-31
关键词:
AddressAdverse reactionsAffinityApplications GrantsBindingCYP2C9 geneCYP3A4 geneChemicalsCollaborationsCollectionComputer SimulationComputing MethodologiesCytochrome P450DataDatabasesDescriptorDevelopmentDockingDrug InteractionsDrug Metabolic DetoxicationDrug Metabolism InhibitionElectronicsEntropyEnzyme InhibitionEnzyme InteractionEnzymesFeedbackHumanHydrogenIndividualInternetLigand BindingLigandsMeasuresMediatingMetabolicMethodologyMethodsModelingMultienzyme ComplexesPerformancePharmaceutical PreparationsPhasePlayPropertyProteinsProtocols documentationPublicationsQuantitative Structure-Activity RelationshipResearchResearch InfrastructureResearch PersonnelRoentgen RaysRoleSecureSiteStructureSystemTechniquesWaterXenobiotic MetabolismXenobioticsbasecomputer infrastructurecomputer studiesdesigndrug candidatedrug clearancedrug developmentdrug discoverydrug metabolismflexibilityfunctional groupimprovedinhibitor/antagonistinnovationinsightinterestmodels and simulationnovelpublic health relevancequantumresearch studyscreeningsimulationtoolvirtual
中文摘要
描述(由申请人提供):细胞色素P450酶(CYP)对药物和其他外源药物的代谢是人体必不可少的解毒和药物清除机制。尽管自2000年以来发表了几种x射线结构,但可靠的药物代谢计算预测仍然是一个巨大的挑战。在这项拨款申请中,我们提出了一种综合的高通量方法,将配体的电子特性与蛋白质的结构特性结合起来。我们的主要目标是开发和应用创新的基于结构的设计技术,以解决当前方法的严重缺陷。特别是,我们扩展了我们的新对接概念,以纳入与配体- cyp相互作用相关的所有观察到的蛋白质灵活性形式,影响结合姿态预测的熵贡献,并且我们将在配体- cyp复合物中添加动态溶剂化。为了提高对接质量,我们将优化为所研究的每个CYP酶量身定制的评分函数的参数。结合对氢提取能的有效计算的初步关注,我们将预测结合CYPs的药物或候选药物的区域选择性代谢。基于得到的对接姿态,将进行多维QSAR模拟,以准确量化结合亲和力,作为衡量cypp抑制的指标,并更好地对结合模式进行排序。新的计算方法将应用于在药物代谢中重要的两种CYP酶(CYP2C9, 3A4)。生成的计算模型将存储在数据库中并向公众开放。其他研究人员将被邀请通过安全的网络协议筛选CYP数据库中的化合物,以预测药物代谢和抑制作用。其他研究人员提交的数据将对模型的性能和适用性提供有价值的反馈。
英文摘要
DESCRIPTION (provided by applicant): The metabolism of drugs and other xenobiotics by cytochrome P450 enzymes (CYP) is an essential detoxification and drug clearance mechanism in humans. Despite the publication of several X-ray structures since 2000, reliable computational prediction of drug metabolism remains a huge challenge. In this grant application, we propose an integrative high-throughput approach that combines electronic properties of a ligand with structural properties of the protein. Our main aim is the development and application of innovative structure-based design techniques that address serious shortcomings of current approaches. In particular, we have extended our novel docking concept to incorporate all observed forms of protein flexibility relevant for ligand-CYP interactions, entropic contributions influencing the prediction of binding poses, and we will add on- the-fly solvation to ligand-CYP complexes. To improve the docking quality we will optimize the parameters of a scoring function tailor-made for each CYP enzyme studied. In combination with an initial focus on efficient calculation of hydrogen-abstraction energies we will predict regioselective metabolism of drugs or drug candidates binding to CYPs. Based on the resulting docking poses, multidimensional QSAR simulations will be performed for accurate quantification of binding affinity as a measure CYP-inhibition and better ranking of binding modes. The new computational methods will be applied to two CYP enzymes (CYP2C9, 3A4) important in drug metabolism. The generated computational models will be stored in a database and made publicly available. Other researchers will be invited to screen compounds against our CYP database via a secure Web protocol to predict drug metabolism and inhibition. The submission of data by other researchers will provide valuable feedback on the performance and applicability of the models.
PUBLIC HEALTH RELEVANCE: Cytochrome P450 mediated drug metabolism plays a critical role for the efficacy of administered drugs. This project is aimed toward developing and applying innovative computational methods to efficiently predict drug metabolism as well as inhibition of the drug metabolizing enzymes. The resulting computational models allow for the estimation of drug efficiency and the potential of adverse reactions early in drug discovery and thus have a strong impact on drug development.
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会议论文
Novel Computational Methods for Modeling Cytochrome P450 Mediated Drug Metabolism
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批准号:8304931
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项目类别:
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资助金额:$20.2万
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财政年份:2010
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负责人:Markus Alexander Lill
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依托单位:
Novel Computational Methods for Modeling Cytochrome P450 Mediated Drug Metabolism
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批准号:8706177
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项目类别:
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资助金额:$19.99万
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财政年份:2010
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负责人:Markus Alexander Lill
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依托单位:
Novel Computational Methods for Modeling Cytochrome P450 Mediated Drug Metabolism
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批准号:7991977
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项目类别:
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资助金额:$23.68万
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财政年份:2010
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负责人:Markus Alexander Lill
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依托单位:
Novel Computational Methods for Modeling Cytochrome P450 Mediated Drug Metabolism
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批准号:8134421
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项目类别:
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资助金额:$21.83万
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财政年份:2010
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负责人:Markus Alexander Lill
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依托单位:
Dynamic Scoring: A novel method for quantitative modeling of guest-host associati
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批准号:7510816
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项目类别:
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资助金额:$19.72万
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财政年份:2008
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负责人:Markus Alexander Lill
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依托单位:
Dynamic Scoring: A novel method for quantitative modeling of guest-host associati
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批准号:7663070
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项目类别:
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资助金额:$14.87万
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财政年份:2008
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负责人:Markus Alexander Lill
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依托单位:
海外基金