Allosteric Inhibition of a Family of Proteolytic Enzymes
Allosteric Inhibition of a Family of Proteolytic Enzymes
批准号:
8698774
负责人:
Charles Scott Craik
金额:
$30.52万
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-07-10 至 2017-03-31
关键词:
Active SitesAllosteric SiteAnimalsAntiviral AgentsBindingBinding SitesBiochemistryBiological AssayBiologyCell Culture TechniquesCell Membrane PermeabilityCellsChemicalsChemistryChickenpoxColorCommunicable DiseasesComplexComputer SimulationCrystallizationCrystallographyCytomegalovirusDetectionDimerizationDiseaseDisease ResistanceDissociationDisulfidesEnzymesEquilibriumFamilyFamily memberFluorescenceGeneticGoalsHerpes zoster diseaseHerpesviridaeHumanHuman Herpesvirus 2Human Herpesvirus 8InfectionInfectious MononucleosisKaposi SarcomaKnock-outLeadLibrariesLife Cycle StagesMapsMeasuresModelingMolecular ConformationMonitorNMR SpectroscopyPeptide HydrolasesPermeabilityPharmaceutical ChemistryPharmaceutical PreparationsProtease InhibitorProtein RegionRecombinantsResolutionRetinitisSerine ProteaseSpecificityStructureTestingValidationViralVirusWestern BlottingX-Ray Crystallographyabstractinganalogbasecombinatorial chemistrycomputational chemistrydesigndimereffective therapygenital herpeshigh throughput screeningimprovedinhibitor/antagonistinterestinterfacialmembermimeticsmonomernovelnovel strategiespreventprotein protein interactionpublic health relevancescaffoldscreeningsmall moleculesuccesstherapeutic targettherapy resistant
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): The goal of this R01 project is to identify allosteric inhibitors that trap inactive conformations of a family of proteolytic enzymes and have sufficient pharmacologic viability to serve as the starting point for lead optimization and animal studies. These studies seek to exploit dynamics associated with monomer-dimer equilibrium to offer a new approach for developing specificity against this class of protease targets that has so far been recalcitrant to selective inhibitors. Protein-protein interactions are ubiquitous in biology ad represent potential therapeutic targets for numerous diseases. The dimeric human herpes virus (HHV) proteases are one such example. HHVs make up one of the most prevalent viral families and are the etiological agents to a variety of devastating human illnesses for which there is lack of specific and effective treatments. As with all infectious diseases, resistance to therapy is constantly evolving and new therapies are needed for this virus family. There is significant interest in new viral protease inhibitors based on the recent success of antiproteolytic therapies.
All HHVs express a dimeric serine protease that is essential to the viral life cycle. Genetic knockout of this protease in cell culture prevents viral replication, providing genetic validation f the target. We have identified a small molecule inhibitor of the protease of one member of this family, Kaposi's sarcoma-associated herpes virus (KSHV), by screening a biased helical mimetic library. By integrating multiple chemical-biology approaches we have determined a "dimer disruption via monomer trap" mode of inhibition and mapped the binding site to a previously unreported allosteric pocket at the protease dimer interface. Recent chemistry efforts have improved potency and permeability while further informing mode of binding. Considering the structural and functional homology among HHV proteases, we propose to use diverse screening approaches and structure-based inhibitor design to develop allosteric inhibitor scaffolds that target protease dimerization or other allosteric sites in herpes virus proteases. These assays, including cell culture assays for viral infectivity, are currently in place for KSHV protease and CMV protease and will be established for other HHV proteases. We hypothesize that allosteric inhibitors of HHV proteases that trap inactive protease conformations can be identified and used to develop pharmacologically-viable compounds that prevent viral replication in cell-based assays. Aim 1. Develop inhibitory scaffolds for HHV proteases using screening and structure-guided chemistry to achieve nanomolar inhibition and improved cell membrane permeability. Aim 2. Characterize the specificity and binding mode of screening hits using NMR spectroscopy and crystallography and select allosteric inhibitors with a broad spectrum of activity towards KSHV, CMV, and HSV-2 proteases. Aim 3. Determine the mechanism of action of selected inhibitors in herpes viral cell culture models.
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科研奖励(0)
会议论文
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Non-invasive Differentiation of Benign Lesions from Aggressive Pancreatic Cancer
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Extracellular Proteolysis as a Molecular Stratification Tool for Cancer
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Antibodies for Characterizing the Structure and Function of Proteases
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批准号:8702411
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资助金额:$34.26万
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财政年份:2014
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依托单位:
Allosteric Inhibition of a Family of Proteolytic Enzymes
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批准号:8577916
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项目类别:
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资助金额:$30.38万
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财政年份:2013
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负责人:Charles Scott Craik
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依托单位:
Allosteric Inhibition of a Family of Proteolytic Enzymes
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批准号:9039629
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项目类别:
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资助金额:$30.67万
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财政年份:2013
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负责人:Charles Scott Craik
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依托单位:
CHARACTERIZATION COVALENT INHIBITORS OF SERINE, CYSTEINE & ASPARTYL PROTEINASE
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批准号:8363756
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财政年份:2011
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依托单位:
CHARACTERIZATION COVALENT INHIBITORS OF SERINE, CYSTEINE & ASPARTYL PROTEINASE
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批准号:8169750
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财政年份:2010
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依托单位:
A Technological Platform for the Identification of Serine Proteases in Cancer
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批准号:7895790
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资助金额:$35.47万
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财政年份:2009
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依托单位:
A Technological Platform for the Identification of Serine Proteases in Cancer
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CHARACTERIZATION COVALENT INHIBITORS OF SERINE, CYSTEINE & ASPARTYL PROTEINASE
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A Technological Platform for the Identification of Serine Proteases in Cancer
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依托单位:
TARGETTING CYSTEINE PROTEINASES OF THE SARS-ASSOCIATED CORONAVIRUS
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批准号:7723494
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财政年份:2008
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负责人:Charles Scott Craik
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依托单位:
CHARACTER COVALENT INHIBITORS OF SERINE, CYSTEINE & ASPARTYL PROTEINASE: HIV
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项目类别:
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财政年份:2008
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依托单位:
Targeting Allosteric Studies to Modulate Protein Interactions and Function
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依托单位:
海外基金