Long-Term Regulation of Potassium Channels
Long-Term Regulation of Potassium Channels
批准号:
7534800
负责人:
EDWIN S LEVITAN
金额:
$36.05万
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:
2005-12-20 至 2010-11-30
关键词:
3&apos Untranslated RegionsAcuteAffectAngiotensin IIApoptosisApoptoticArrhythmiaBlood VesselsBrainCardiacCardiac MyocytesCardiovascular systemCell surfaceCellsCessation of lifeChemicalsDown-RegulationDrug ControlsEpilepsyGeneticGoalsHeartHeart DiseasesHypertensionHypertrophyIncidenceKir2.1 channelKv2.1 channelKv4.3 channelMediatingMessenger RNAMuscle CellsNADPH OxidaseNeuronsPharmaceutical PreparationsPhosphorylationPhysiologicalPlayPotassiumPotassium ChannelProteinsReactive Oxygen SpeciesRegulationRoleSmooth Muscle MyocytesSurfaceTestingTherapeuticVascular Smooth MuscleVentricularbasecell typehigh throughput screeninginsightnovelpreventresearch studytarget SNARE proteinstraffickingvoltage
中文摘要
点击翻译按钮获取中文摘要
英文摘要
Potassium channels control the function of excitable cells such as neurons, smooth muscle cells
and cardiac myocytes. Potassium channel regulation is also important in programmed cell death in
a variety of cell types. Although a great deal is understood about the function and acute modulation
of potassium channels, little is know about long-term control of potassium channel function. Yet,
manipulating potassium channel expression in vascular smooth muscle cells, cardiac myocytes and
neurons could be a valuable therapeutic approach for controlling high blood pressure and reducing
the incidence of cardiac arrhythmias and epileptic seizures. Here we pursue three aims focused on
our ongoing studies of potassium channel expression and activity.
Aim 1 will determine how Angiotensin II (Ang II) acts on cardiac myocytes to downregulate
Kv4.3 channel expression. Experiments will test the hypothesis Ang II acts via NADPH oxidase-
generated reactive oxygen species (ROS) to destabilize the 3' untranslated region of the channel
messenger RNA.
Aim 2 will determine how a protein and a chemical identified by high throughput screening
stimulate Kir2.1 activity. Since total channel expression is unaffected, experiments will focus on
whether these two activators affect channel trafficking and function.
Aim 3 will determine how voltage-gated potassium (Kv) channel activity is slowly increased as a
critical step in apoptosis. We will determine whether phosphorylation triggers insertion of new
homomeric Kv2.1 channels in the cell surface. Furthermore, we will test whether native channels
found in vascular smooth muscle and the heart are subject to similar regulation.
This proposal will reveal fundamental insights into novel physiological, pharmacological and
pathological mechanisms that produce long-term regulation of potassium channel activity in the
heart, blood vessels and the brain.
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海外基金