AGONIST EFFECT OF ANTIARRHYTHMIC DRUGS
抗心律失常药物的激动作用
基本信息
- 批准号:6110085
- 负责人:
- 金额:$ 21.25万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:1998
- 资助国家:美国
- 起止时间:1998-08-01 至 1999-07-31
- 项目状态:已结题
- 来源:
- 关键词:antiarrhythmic agent cell line chemical structure function drug receptors drug screening /evaluation electrophysiology heart electrical activity heart pharmacology local anesthetics mathematical model omega 3 fatty acid pharmacokinetics potassium channel protein structure function quinidine receptor binding site directed mutagenesis stimulant /agonist voltage gated channel
项目摘要
In preliminary studies, we have identified an ~agonist~ action of
prototypical ion channel blockers. It is the overall goal of studies
in this Project to further determine mechanisms underlying this
effect, defined here as a modification of channel gating that leads
to a drug-induced increase in current in the voltage range of the
plateau phase of the cardiac action potential. Our studies to date
have demonstrated such an effect on Kv1.5-mediated currents by
quinidine, by the local anesthetic bupivacaine, and by
docosahexaenioc acid (the main polyunsaturated fatty acid in fish
oils) and on HERG-mediated currents by quinidine. The
experiments proposed will use these agents to study agonist effects
on Kv1.5, Herge, and Kv4.3, genes whose products are major
alpha-subunits underlying human delayed rectifier and transient
outward currents. Specific Aim 1 will use biophysical approaches
to test the hypothesis that a specific binding site exits for the
agonist effect, and will analyze these results in terms of advanced
gating models. Specific Aim 2 will identify physicochemical
properties of individual drugs that determine the agonist action;
this work may lead to identification or synthesis of ~purer~
agonist. The goal of Specific Aim 3 is to identify the molecular
locus of a binding site for the agonist effect; the working
hypothesis is that an interaction with the voltage sensor (S4) or its
~canaliculus~ is responsible. Reduced ion current is increasingly
recognized as a potential contributor to arrhythmias, so further
understanding of this agonist effect should have important
implications for new drug development. More generally, it is
well-recognized that patients vary widely in their responses to
antiarrhythmic drugs; the coexistence of antagonist and heretofore-
unrecognized agonist effect in single molecules has important
implications for understanding this variability.
在初步研究中,我们已经确定了~激动剂~作用。
典型的离子通道阻滞剂。这是研究的总体目标。
在这个项目中进一步确定其背后的机制
效果,这里定义为通道门控的修改,从而导致
与药物引起的电压范围内的电流增加有关
心脏动作电位的平台期。我们迄今为止的研究
在Kv1.5介导的电流中表现出这样的效应
奎尼丁,局部麻醉剂布比卡因,以及
二十二碳六烯酸(鱼中主要的多不饱和脂肪酸
油)和奎尼丁对HERG介导的电流的影响。这个
拟议的实验将使用这些药物来研究激动剂的作用。
在Kv1.5、Herge和Kv4.3上,其产物主要是
人类延迟整流和暂态的阿尔法亚基
向外的电流。具体目标1将使用生物物理方法
来检验这样的假设,即存在特定的
激动剂效应,并将分析这些结果在高级
门禁模特。特定目标2将确定物理化学
确定激动剂作用的个别药物的性质;
这项工作可能导致~更纯净~的鉴定或合成。
激动剂。特定目标3的目标是识别分子
激动剂作用的结合部位的轨迹;工作
假设与电压传感器的相互作用(S4)或其
~小管~有责任。减少的离子电流越来越多
被认为是导致心律失常的潜在因素,因此进一步
对这种激动剂效应的理解应该有重要的意义
对新药开发的影响。更广泛地说,它是
众所周知,患者的反应差异很大
抗心律失常药物;拮抗剂和迄今为止的共存-
单分子中未知的激动剂效应具有重要意义
对理解这种可变性的影响。
项目成果
期刊论文数量(0)
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会议论文数量(0)
专利数量(0)
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