Development of Chemical Probes to Investigate the Role of NTSR1 in CNS Disorders
Development of Chemical Probes to Investigate the Role of NTSR1 in CNS Disorders
批准号:
8476053
负责人:
Theodore M Kamenecka
金额:
$44.47万
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:
2010-07-01 至 2015-06-30
关键词:
AcademiaAgonistAnimal ModelAttentionAutomobile DrivingBiological AssayBrainCellsCentral Nervous System DiseasesChemicalsCoupledDA10DevelopmentDopamineDrug AddictionDrug IndustryDrug KineticsEvaluationFingerprintFloridaFunding OpportunitiesFutureG alpha q ProteinGTP-Binding ProteinsGoalsIn VitroLeadLigandsLiteratureMethodsMicrosomesMonitorMorphologic artifactsNational Institute of Drug AbuseNeurotensinPeptidesPharmaceutical ChemistryPhasePhysiologicalPropertyResourcesRodentRoleScreening procedureSeriesSignal TransductionSignal Transduction PathwayStructureSystemWorkanalogbasecell typecheminformaticscounterscreendesigndrug metabolismhigh throughput screeningin vitro Assayin vivomeetingsnew technologynovelprogramsreceptorresponsesmall moleculetransmission process
中文摘要
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英文摘要
Summary
The neurotensin system has attracted a lot of attention as a potential target to treat drug addiction due
to its ability to modulate dopamine signaling and transmission. However, despite extensive effort by the
pharmaceutical industry and academia over the past 30 years, there are still no potent, selective NTSR1 non-
peptide agonists or potentiators and only a few antagonists described in the literature. From a high throughput
screening (HTS) perspective most of the attention has been paid to interactions between the NTSR1 receptor
and its signaling through the Gq protein-coupled signal transduction pathway. However, it is now clear that
NTSR1 can couple to multiple G proteins and may even signal in a G-protein independent fashion. Hence, the
overall goal of this proposal is to employ a multiple assay approach to drive an iterative medicinal chemistry
program aimed at identifying potent, selective, cell penetrant positive modulators of NTSR1. To avoid missing
potential valuable compounds our approach is to screen compounds in multiple cell-based assays with
different functional readouts. This can be viewed as casting a wide net to capture compounds that modulate
the receptor via different mechanisms and then letting the efficacy in the functional assays enable us to create
a cellular response profile or 'functional fingerprint' for each compound. This in vitro functional fingerprint will
be invaluable for future evaluation of compounds in vivo, the challenge being to identify physiological
consequences of functional selectivity at NTSR1. Thus, our multiple assay approach is a vast improvement
over the single [Ca2+]/FLIPR assay approach typically pursued by the pharmaceutical industry.
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