Kv4.3 Gating Current: Mechanisms Underlying Closed State Inactivation
Kv4.3 Gating Current: Mechanisms Underlying Closed State Inactivation
批准号:
7894742
负责人:
DONALD Leroy CAMPBELL
金额:
$7.74万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-08-01 至 2011-12-31
关键词:
Action PotentialsArginineCardiac MyocytesCardiovascular systemChargeConsensusCoupledDataDependenceDevelopmentEpilepsyFrequenciesFunctional disorderGoalsGrantHomologous GeneKineticsKv4 channelLearningMeasurementMeasuresMediatingMembraneMemoryMethodsMicroelectrodesModelingMolecularNervous system structureNeuronsOocytesPainPerceptionPhenotypePlayPotassiumProcessProteinsRecoveryResearchRoleSecureSeedsSignal TransductionSystemTherapeuticXenopusbasecell typeheart functioninsightmutantneuromechanismnovelpublic health relevancevoltagevoltage clamp
中文摘要
描述(由申请人提供):电压敏感性钾(Kv)通道是存在于所有电可兴奋细胞类型的膜中的蛋白质。Kv1.4(Shaker的哺乳动物同源物)和所有Kv 4(Shal型)亚基产生钾选择性电流表型,在心肌细胞中命名为“Ito”,在神经元中命名为“IA”。由于它们的快速激活和随后的失活动力学,这两种通道类型可以显着调节动作电位复极和频率依赖性电信号。因此,IA/Ito表型被假设在心血管和神经系统中发挥重要的功能作用。特别是,Kv 4通道最近被重要地牵连在记忆和疼痛感知的神经机制。虽然对Shaker/Kv1.4中激活、失活和恢复的分子机制有了很大了解,但Kv 4中相应的机制目前尚未确定。尽管如此,人们普遍认为不涉及“常规”Shaker N型和C型失活机制。Kv 4通道也显示出从预激活的闭合状态(闭合状态失活或CSI)的显著失活,这是在Shaker中不显著的过程。因此,作为传统Shaker/Kv1.4门控模型的替代方案,我假设Kv 4电压感应结构域(VSD)中的转换,特别是由S4带正电荷的精氨酸(R)残基介导的转换,主要负责调节激活和失活,而且CSI和恢复。因此,CSI要么具有固有的电压依赖性,要么通过与Shaker显著不同的机制与激活相耦合。因此,Kv 4恢复(从打开失活和关闭失活状态)将与失活耦合。使用非洲爪蟾卵母细胞作为表达系统,结合诱变和功能动力学分析(两个微电极电压钳,切开卵母细胞电压钳)将获得初步的见解CSI和恢复Kv4.3亚基的分子和生物物理机制。具体目标是开发测量Kv4.3亚基门控电流“IG”的新方法,并确定各种S4精氨酸(R)突变体如何改变它们。公共卫生相关性:Kv 4通道对于心脏的正常功能是重要的,并且被认为直接参与神经系统的几种功能/功能障碍,包括学习和记忆、癫痫和疼痛感知。拟议的研究将为调节Kv 4通道的基本机制提供新的分子和生物物理见解,从而为开发更有效的治疗方法提供基础。
英文摘要
DESCRIPTION (provided by applicant): Voltage-sensitive potassium (Kv) channels are proteins that exist in the membranes of all electrically excitable cell types. Kv1.4 (the mammalian homologue of Shaker) and all Kv4 (Shal-type) subunits generate potassium-selective current phenotypes designated "Ito" in cardiac myocytes and "IA" in neurons. Due to their rapid activation and subsequent inactivation kinetics, both channel types can significantly modulate action potential repolarization and frequency-dependent electrical signaling. IA/Ito phenotypes have thus been hypothesized to play important functional roles in both the cardiovascular and nervous systems. In particular, Kv4 channels have recently been importantly implicated in neural mechanisms underlying both memory and pain perception. While much is understood about molecular mechanisms underlying activation, inactivation, and recovery in Shaker/Kv1.4, the corresponding mechanisms in Kv4 are presently undetermined. Nonetheless, there is general consensus that "conventional" Shaker N- and C- type inactivation mechanisms are not involved. Kv4 channels also display prominent inactivation from pre-activated closed states (closed state inactivation or CSI), a process which is not significant in Shaker. Therefore, as an alternative to the conventional Shaker/Kv1.4 gating model, I hypothesize that transitions in the Kv4 voltage sensing domain (VSD), and in particular those mediated by S4 positively charged arginine (R) residues, are primarily responsible for regulating not only activation and deactivation, but also CSI and recovery. CSI thus either possesses inherent voltage dependence or is coupled to activation by a mechanism significantly different from that in Shaker. As a result, Kv4 recovery (from both open inactivated and closed inactivated states) will be coupled to deactivation. Using Xenopus laeavis oocytes as an expression system, a combination of mutagenic and functional kinetic analysis (two microelectrode voltage clamp, cut open oocyte voltage clamp) will be employed to gain initial insights into molecular and biophysical mechanisms underlying CSI and recovery of Kv4.3 subunits. The Specific Aim will be to develop novel methods for measurement of Kv4.3 subunit gating currents "Ig" and to determine how various S4 arginine (R) mutants alter them. PUBLIC HEALTH RELEVANCE: Kv4 channels are important for normal functioning of the heart, and are believed to be directly involved in several functions/dysfunctions of the nervous system, including learning and memory, epilepsy, and pain perception. The proposed research will provide new molecular and biophysical insights into basic mechanisms regulating Kv4 channels, and may thus provide the basis for development of more effective therapeutic treatments.
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Kv4.3 Gating Current: Mechanisms Underlying Closed State Inactivation
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批准号:7706245
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项目类别:
-
资助金额:$7.74万
-
财政年份:2009
-
负责人:DONALD Leroy CAMPBELL
-
依托单位:
NO RELATED MODULATION OF CARDIAC CALCIUM CHANNELS
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批准号:2621695
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项目类别:
-
资助金额:$2.29万
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财政年份:1998
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负责人:DONALD Leroy CAMPBELL
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依托单位:
NO RELATED MODULATION OF CARDIAC CALCIUM CHANNELS
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批准号:6128393
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项目类别:
-
资助金额:$23.23万
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财政年份:1998
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负责人:DONALD Leroy CAMPBELL
-
依托单位:
NO RELATED MODULATION OF CARDIAC CALCIUM CHANNELS
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批准号:6389748
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项目类别:
-
资助金额:$24.64万
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财政年份:1998
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负责人:DONALD Leroy CAMPBELL
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依托单位:
NO RELATED MODULATION OF CARDIAC CALCIUM CHANNELS
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批准号:6183341
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项目类别:
-
资助金额:$23.93万
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财政年份:1998
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负责人:DONALD Leroy CAMPBELL
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依托单位:
NO RELATED MODULATION OF CARDIAC CALCIUM CHANNELS
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批准号:6024296
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项目类别:
-
资助金额:$22.19万
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财政年份:1998
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负责人:DONALD Leroy CAMPBELL
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依托单位:
CALCIUM CURRENT AND NA+/CA++ EXCHANGE IN CARDIAC CELLS
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批准号:3050341
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项目类别:
-
资助金额:$0.15万
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财政年份:1987
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负责人:DONALD Leroy CAMPBELL
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依托单位:
CALCIUM CURRENT AND NA/CA EXCHANGE IN CARDIAC CELLS
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批准号:3050339
-
项目类别:
-
资助金额:$0.07万
-
财政年份:1987
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负责人:DONALD Leroy CAMPBELL
-
依托单位:
CALCIUM CURRENT AND NA+/CA++ EXCHANGE IN CARDIAC CELLS
-
批准号:3050340
-
项目类别:
-
资助金额:$0.47万
-
财政年份:1987
-
负责人:DONALD Leroy CAMPBELL
-
依托单位:
CALCIUM CURRENT AND NA/CA EXCHANGE IN CARDIAC CELLS
-
批准号:3050342
-
项目类别:
-
资助金额:$1.98万
-
财政年份:1987
-
负责人:DONALD Leroy CAMPBELL
-
依托单位:
CALCIUM CURRENT AND NA+/CA++ EXCHANGE IN CARDIAC CELLS
-
批准号:3050337
-
项目类别:
-
资助金额:$1.8万
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财政年份:1986
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负责人:DONALD Leroy CAMPBELL
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依托单位:
CALCIUM CURRENT AND NA+/CA++ EXCHANGE IN CARDIAC CELLS
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批准号:3050338
-
项目类别:
-
资助金额:$0.3万
-
财政年份:1986
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负责人:DONALD Leroy CAMPBELL
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依托单位:
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围绕GLP1-Arginine-AGE/RAGE轴构建探针组学方法探索大柴胡汤异病同治的效应机制
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批准号:81973577
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项目类别:面上项目
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资助金额:55.0万元
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批准年份:2019
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