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Regulation of proton pump trafficking in kidney

Regulation of proton pump trafficking in kidney
肾脏质子泵运输的调节
批准号:
8250029
负责人:
Dennis Brown
金额:
$36.66万
依托单位国家:
美国
项目类别:
财政年份:
1991
资助国家:
美国
项目状态:
已结题
起止时间:
1991-08-01 至 2013-03-31
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中文摘要
翻译
插层细胞(IC)通过增加或减少肾收集管中的酸分泌来响应血液中的pH值变化。当血液pH值偏离正常值7.4时,这一过程的功能障碍会导致不同器官系统的病理生理障碍。液泡H[+] atp酶(v - atp酶)是IC酸/碱稳态功能的核心,但这些细胞如何检测环境信号,使它们能够适当地改变质子分泌仍然是一个谜。长期以来,人们一直认为肾脏中存在酸或碳酸氢盐传感器,但这种检测系统的身份以及这种系统如何传输信号以改变ic的酸/碱运输机制仍有待确定。基于之前资助期的工作,我们在此提出可溶性腺苷酸环化酶(sAC)是备受追捧的肾酸/碱传感器。这种蛋白质在碳酸氢盐离子的直接刺激下产生第二信使cAMP。因此,它非常适合在IC中发挥碳酸氢盐/CO{2}传感作用。我们假设sAC传感器响应酸/碱信号产生的cAMP可以改变嵌入细胞的酸分泌能力。我们认为V-ATPase和sAC在一个局部信号过程中是合作伙伴,该信号过程调节V-ATPase在特定膜微域的靶向和运输,以调节插入细胞功能和肾质子分泌。我们的目标是:2)确定V-ATPase和细胞骨架蛋白(actin, gelsolin, drebrin, nadrin和myosin VI)是否形成局部微复合物,调节IC中V-ATPase膜积聚和质子分泌。研究将采用多学科方法,包括独特的动物模型,分离的荧光分色的插入细胞和细胞培养。以及成像技术,包括静态和实时共聚焦显微镜来跟踪V- atp酶的运输。囊泡酸化、atp酶活性和质子选择性自参考微电极的测定将监测v - atp酶在核内体和质膜上的功能表达。荧光(Forsman)共振能量转移(FRET)和蛋白-蛋白相互作用分析将解剖v - atp酶亚基在刺激质子分泌过程中是否与sAC和/或细胞骨架蛋白相互作用。体外实验、突变分析和磷酸化蛋白质组学将解决cAMP/PKA介导的v - atp酶磷酸化在这些相互作用中的作用。我们认为V-ATPase是一个局部多蛋白复合物的中心伙伴,该复合物通过调节插入细胞中V-ATPase依赖的酸化机制来感知和响应普遍的酸碱条件。
英文摘要
Intercalated cells (IC) respond to pH changes in the blood by increasing or decreasing acid secretion in the kidney collecting duct. Dysfunction of this process results in pathophysiological disorders of different organ systems as the pH of the blood drifts away from its normal value of 7.4. The vacuolar H[+]ATPase (V-ATPase) is central to the acid/base homeostatic function of IC, but how these cells detect environmental cues that allows them to modify proton secretion appropriately remains a mystery. The existence of an acid or bicarbonate sensor in the kidney has long been suggested, but the identity of this detection system and how such a system would transmit signals to modify the acid/base transporting machinery of ICs remain to be determined. Based on work carried out in the previous funding period, we propose here that the soluble adenylate cyclase (sAC) is the much sought after renal acid/base sensor. This protein generates the second messenger cAMP upon direct stimulation by bicarbonate ions. It is, therefore, ideally suited for a bicarbonate/CO{2} sensing role in IC. We hypothesize that cAMP generated by the sAC sensor in response to acid/base cues can modify the acid secretory capacity of intercalated cells. We propose that V-ATPase and sAC are partners in a localized signaling process that modulates targeting and trafficking of the V-ATPase in specific membrane microdomains to regulate intercalated cell function, and renal proton secretion. Our aims are: 1) To characterize the role of sAC in the regulation of V-ATPase mediated proton secretion by renal epithelial cells and 2) To determine whether V- ATPase and cytoskeletal proteins (actin, gelsolin, drebrin, nadrin and myosin VI) form a local micro-complex that regulates V-ATPase membrane accumulation and proton secretion in IC. The studies will use a multidisciplinary approach including unique animal models, isolated fluorescence-sorted intercalated cells, and cell cultures, as well as imaging technologies including static and real-time confocal microscopy to follow V- ATPase trafficking. Assays of vesicle acidification, ATPase activity and proton-selective self-referencing microelectrodes will monitor the functional expression of V-ATPase in endosomes and at the plasma membrane. Fluorescence (Forsman) resonance energy transfer (FRET) and protein-protein interaction assays will dissect whether V-ATPase subunits interact with sAC and/or cytoskeletal proteins during stimulation of proton secretion. In vitro assays, mutational analysis and phosphoproteomics will address the role of cAMP/PKA mediated V-ATPase phosphorylation in these interactions. We propose that the V-ATPase is a central partner in a localized, multi-protein complex that senses and responds to prevailing acid/base conditions by modulating the V-ATPase dependent acidification mechanism in intercalated cells.
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