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Structural studies of ion channel assembly and signaling

Structural studies of ion channel assembly and signaling
离子通道组装和信号传导的结构研究
批准号:
7249433
负责人:
DANIEL L MINOR
金额:
$35.91万
依托单位国家:
美国
项目类别:
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-07-01 至 2010-06-30
关键词:
A Kinase Anchor Protein 9AKAP9 geneAffectApicalArrhythmiaAuditoryBathingBilateralBindingBiochemicalBiological AssayBrainC-terminalCalmodulinCampingCardiacCardiac MyocytesCell NucleusCell SurvivalCell membraneCellsCochleaCoiled-Coil DomainComplexCrystallizationCytoplasmic ProteinCytoplasmic TailDevelopmentDiseaseDockingDrug Delivery SystemsEndolymphEpilepsyFamilyFire - disastersFunctional disorderG-Protein-Coupled ReceptorsGoalsHair CellsHealthHearingHereditary DiseaseHumanInheritedInner Hair CellsIntercalated CellInvestigationIon ChannelJervell-Lange Nielsen SyndromeKnockout MiceKnowledgeLeadLiquid substanceLong QT SyndromeMacromolecular ComplexesMaintenanceMeasurementMechanical StimulationMembrane PotentialsMembrane ProteinsMemory DisordersMinorMissense MutationMolecularMutationN-terminalNeuronsOperative Surgical ProceduresOrganOuter Hair CellsPathway interactionsPeptidesPerilymphPhosphoric Monoester HydrolasesPhysiologyPlayPotassiumPrincipal InvestigatorProcessPropertyProtein EngineeringProtein KinaseProteinsRecombinantsRegulationResearchResolutionRoentgen RaysRoleScaffolding ProteinSeizuresSensorineural Hearing LossSensorySensory DisordersSensory HairSignal TransductionSignaling ProteinSiteSpecificityStria VascularisStructureSurfaceSymptomsSystemTherapeutic AgentsThinkingUrsidae FamilyVoltage-Gated Potassium ChannelX-Ray Crystallographyauditory pathwaybasecongenital deafnessdeafnessdisease-causing mutationinfancyinterdisciplinary approachinterestmutantneuronal excitabilitypreferenceprogramsprotein protein interactionprotein structureresearch studythree dimensional structure

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DESCRIPTION (provided by applicant): The long-term goals of this project are to develop a high-resolution understanding of ion channel function and regulation. We are investigating the KCNQ family of voltage-gated potassium channels. These channels play central roles in auditory, cardiac, and brain function. Because channel function depends on subunit composition and interactions with proteins of cellular signaling networks, we are investigating the molecular bases for both of these phenomena. Due to difficulties in studying mammalian membrane protein structure, our present efforts are focused on understanding the function cytoplasmic domains that are important for channel assembly and for the recruitment of cellular signaling factors. We are pursuing a multidisciplinary approach that includes biochemical, biophysical, X-ray crystallographic, and electrophysiological measurements to dissect KCNQ channel function. Because of their important roles in human physiology, mutations of KCNQ channels lead to a variety of hereditary diseases including congenital deafness, cardiac arrhythmias, and epilepsy. We are particularly interested in understanding how disease mutations change channel properties and interactions with other proteins. KCNQ channels are the targets for drugs directed at cardiac arrhythmias, seizures, and memory disorders. Thus, understanding their structures and mechanisms of action may lead to the development of new, valuable therapeutic agents.
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Genetic and chemical biological studies of K2P structure, function, and modulatio
Genetic and chemical biological studies of K2P structure, function, andmodulation
STRUCTURAL AND FUNCTIONAL STUDIES OF ION CHANNELS AND ION CHANNEL DOMAINS
Genetic and chemical biological studies of K2P structure, function, and modulatio