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The Role of ROS and Na/K-ATPase in Uremic Cardiomyopathy

The Role of ROS and Na/K-ATPase in Uremic Cardiomyopathy
ROS 和 Na/K-ATP 酶在尿毒症心肌病中的作用
批准号:
6771161
负责人:
Zijian Xie
金额:
$25.73万
依托单位国家:
美国
项目类别:
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-07-25 至 2007-06-30

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中文摘要
翻译
描述(由申请人提供):心脏病是慢性肾衰竭(CRF)患者的主要死因。 在接受血液透析治疗的CRF患者中,ROS(活性氧)、应激和循环Na/K-ATP酶抑制剂增加已得到充分记录。 此外,Na/K-ATP酶是心肌细胞中重要的信号转导元件。 基于我们先前的工作,我们认为ROS和Na/K-ATP酶之间的相互作用激活了多个信号通路,这些信号通路对于心肌细胞中细胞生长和基因表达的调节是重要的。 此外,ROS和其他循环泵抑制剂之间的相互作用可以通过转录和翻译后机制引起酶的显著抑制。 这种酶的抑制将损害心肌细胞排出Na+的能力,从而通过Na+/Ca 2+交换器排出Ca 2+。 这无疑是CRF患者心脏舒张功能障碍发展的一个重要危险因素。 因此,研究ROS与Na/K-ATP酶的相互作用及其在心肌生长、基因表达和心肌收缩功能调节中的作用具有重要意义,我们提出了以下三个具体目标。 具体目标I将检验Na/K-ATP酶作为ROS受体的假设,以及ROS募集和激活Src抑制Na/K-ATP酶,导致信号复合物的组装和随后Ras/MAPK级联的激活。 Specific Aim 2将剖析ROS后调节Na/K-ATP酶的途径。 具体目标3将检验Ras/MAPK的激活和Na/K-ATP酶的抑制调节细胞内Ca 2+([Ca 2 +]i)和收缩性以响应增加的ROS应激的假设,并分析ROS诱导的心肌细胞中基因表达和蛋白质结构的变化。 我们建议使用蛋白质组学,腺病毒介导的基因表达,cDNA表达阵列,代表性差异分析,共聚焦荧光显微镜,和其他分子生物学技术的组合,严格测试我们的工作假设。 我们期望这些基础研究将有助于我们对Na/K-ATP酶、尿毒症心肌病的生物学的理解,并为开发新的治疗方法提供新的信息,以解决CRF患者严重和常见的心脏病问题。 Ca 2+和收缩力响应增加ROS应激,和档案ROS诱导的基因表达和蛋白质结构的变化在心肌细胞。 我们建议使用蛋白质组学,腺病毒介导的基因表达,cDNA表达阵列,代表性差异分析,共聚焦荧光显微镜,和其他分子生物学技术的组合,严格测试我们的工作假设。 我们期望这些基础研究将有助于我们对Na/K-ATP酶、尿毒症心肌病的生物学的理解,并为开发新的治疗方法提供新的信息,以解决CRF患者严重和常见的心脏病问题。
英文摘要
DESCRIPTION (provided by applicant): Heart disease is the major cause of death in chronic renal failure (CRF) patients. Increases in ROS (reactive oxygen species), stress and circulating inhibitors of Na/K-ATPase have been well documented in CRF patients treated with hemodialysis. Moreover, Na/K-ATPase is an important signal transduction element in cardiac myocytes. Based on our prior work, we believe that interaction between ROS and Na/K-ATPase activates multiple signaling pathways that are important for regulation of cell growth and gene expression in cardiac myocytes. Further, interaction between ROS and other circulating pump inhibitor can cause a significant inhibition of the enzyme through both transcriptional and post-translational mechanisms. Such inhibition of the enzyme will impair the ability of cardiac myocytes to extrude Na+, thus Ca2+ through Na+/Ca2+ exchanger. This certainly represents an important risk factor for development of diastolic dysfunction of the heart in CRF patients. Clearly, it is important to study how ROS interact with Na/K-ATPase and the roles of such interaction in regulation of cardiac growth, gene expression and cardiac contractile function.We, therefore, proposed the following three specific aims to address these issues. Specific Aim I will test the hypotheses that Na/K-ATPase serves as a receptor for ROS and that inhibition of Na/K-ATPase by ROS recruits and activates Src, resulting in assembly of a signaling complex and subsequent activation of the Ras/MAPK cascade. Specific Aim 2 will dissect pathways by which ROS post-translationally regulate Na/K-ATPase. Specific Aim 3 will test the hypothesis that activation of Ras/MAPKs and inhibition of Na/K-ATPase regulate intracellular Ca2+([Ca2+]i) and contractility in response to increased ROS stress, and profile ROS-induced changes in gene expression and protein structures in cardiac myocytes. We proposed to use a combination of proteomics, adenovirus-mediated gene expression, cDNA expression array, representation difference analysis, confocal fluorescence microscopy, and other molecular biology techniques to critically test our working hypotheses. We expect that these basic investigations will contribute to our understanding of the biology of Na/K-ATPase, uremic cardiomyopathy and provide new information for developing novel therapies addressing the serious and common problem of heart diseases in CRF patients. Ca2+ and contractility in response to increased ROS stress, and profile ROS-induced changes in gene expression and protein structures in cardiac myocytes. We proposed to use a combination of proteomics, adenovirus-mediated gene expression, cDNA expression array, representation difference analysis, confocal fluorescence microscopy, and other molecular biology techniques to critically test our working hypotheses. We expect that these basic investigations will contribute to our understanding of the biology of Na/K-ATPase, uremic cardiomyopathy and provide new information for developing novel therapies addressing the serious and common problem of heart diseases in CRF patients.
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会议论文
Interaction of Na+/K+-ATPase With It's Signaling Partners
Interaction of Na+/K+-ATPase With It's Signaling Partners
Na,K-ATPase as an Integrator of the Calcium-signaling Machinery
Na,K-ATPase as an Integrator of the Calcium-signaling Machinery
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