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中文摘要
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描述(由申请方提供):人大流行毒株的毒力增加与禽流感病毒(AIV)基因引入人病毒相关,高致病性流感毒株感染与急性肺水肿相关,后者增强了病毒发病机制。目前尚不清楚在感染过程中导致肺泡液积聚增加的分子机制,确定高致病性人流感病毒的毒力因子对于开发阻止未来大流行严重性的治疗方法至关重要。我们已经表明,只有AIV NS1 PL特异性结合Kv1.4的PDZ结构域,一种调节肺泡液体积聚的钾通道,和一种将通道引导至顶端膜并介导紧密连接(TJ)形成的调节蛋白Scribble。Kv1.4钾通道含有N端PDZ结构域和C端PL基序,PL相互作用调节Kv1.4顶端膜定位和功能。Kv1.4通过将钾泵入肺泡腔并同时引导肺泡中的液体再吸收来调节肺泡液体积聚。据报道,阻止钾通道功能会导致肺泡液积聚和肺水肿()。Kv1.4的PL基序与AIV NS1中存在的PL几乎相同,并且是Scribble的2个PDZ结构域的共有PDZ配体。Scribble是含有4个PDZ结构域的支架蛋白,其调节整合膜蛋白的顶端膜定位和Rho指导的紧密连接的渗透性。我们推测,高致病性流感病毒的NS1 PL竞争Kv1.4和Scribble上的PL结合位点,阻断Kv1.4的肺泡液体再吸收功能并解偶联紧密连接组装,从而导致肺泡中液体积聚增加。目的:在这个建议中,我们将确定是否PL从高致病性AIV株阻断Kv1.4功能,改变紧密连接蛋白组装,增加肺积液。这些研究提出了流感病毒引导肺泡内液体积聚并增强大流行毒株致病性的特定方法。拟议的研究将确定一个潜在的流感毒力决定因素,确定治疗调节未来大流行性流感病毒的发病机制的目标,并提供一个使用现有的钾通道激活剂,以减少在感染过程中肺中的液体积累的基本原理。人类大流行毒株的毒力增加与将禽流感病毒(AIV)基因引入人类病毒有关,并且高致病性流感毒株的感染与肺中的液体积聚有关,这增强了疾病和感染的致命结果。拟议的研究解决了流感病毒直接在肺内蓄积液体并增加大流行性流感病毒引起的疾病严重程度的特定方法。结果将提供一种在未来流感大流行期间使用药物调节流感疾病严重程度的方法,以及评估现有药物(激活钾通道)在流感病毒感染期间减少肺部液体积聚的能力的依据。
英文摘要
DESCRIPTION (provided by applicant): Increased virulence of human pandemic strains is associated with the introduction of avian influenza virus (AIV) genes into human viruses, and infection by highly pathogenic influenza strains is associated with acute pulmonary edema which enhances viral pathogenesis. The molecular mechanisms that direct increased alveolar fluid accumulation during infection are currently unknown and defining virulence factors in highly pathogenic human influenza viruses is crucial for developing therapeutics that stems the severity of future pandemics. We have shown that only AIV NS1 PLs bind specifically to the PDZ domain of the Kv1.4, a potassium channel that regulates alveolar fluid accumulation, and to Scribble, a regulatory protein that directs channels to apical membranes and mediates tight junction (TJ) formation. The Kv1.4 potassium channel contains both an N-terminal PDZ domain and a C-terminal PL motif and PL interactions regulate Kv1.4 apical membrane localization and function. Kv1.4 regulates alveolar fluid accumulation by pumping potassium into the alveolar space and concomitantly directing fluid resorption from the alveolus. Preventing potassium channel function reportedly causes the accumulation of alveolar fluid and pulmonary edema ( ). The PL motif of Kv1.4 is nearly identical to PLs present in AIV NS1s and is a consensus PDZ ligand for 2 PDZ domains of Scribble. Scribble is a scaffolding protein containing 4 PDZ domains which regulates apical membrane localization of integral membrane proteins and Rho directed permeability of tight junctions. We hypothesize that the NS1 PLs of highly pathogenic influenza viruses compete for PL binding sites on Kv1.4 and Scribble, blocking alveolar fluid resorptive functions of Kv1.4 and uncoupling tight junction assembly which results in enhanced accumulation of fluid in alveoli. Objective: In this proposal we will determine whether the PL from highly pathogenic AIV strains block Kv1.4 function and alter tight junction protein assembly which increases pulmonary fluid accumulation. These studies address a specific means for influenza viruses to direct fluid accumulation within alveoli and enhance the pathogenesis of pandemic strains. Proposed studies will define a potential influenza virulence determinant, identify targets for therapeutically regulating the pathogenesis of future pandemic influenza viruses and provide a rationale for using existing potassium channel activators to reduce fluid accumulation in the lung during infection. Increased virulence of human pandemic strains is associated with the introduction of avian influenza virus (AIV) genes into human viruses, and infection by highly pathogenic influenza strains is associated with fluid accumulation in the lung which enhances disease and the lethal outcome of infection. Proposed studies address a specific means for influenza viruses to direct fluid accumulation within the lung and increase the severity of disease caused by pandemic influenza viruses. Results will provide a means for using drugs to regulate influenza disease severity during future pandemics and rationales for evaluating existing drugs (that activate potassium channels) for their ability to reduce fluid accumulation in the lung during influenza virus infection.
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