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NITRIC OXIDE AND ENDOTHELIN INTERACTIONS IN KIDNEY

NITRIC OXIDE AND ENDOTHELIN INTERACTIONS IN KIDNEY
一氧化氮和内皮素在肾脏中的相互作用
批准号:
6184539
负责人:
Jennifer S Pollock
金额:
$25.72万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-04-01 至 2003-03-31

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中文摘要
翻译
一氧化氮(NO)和内皮素-1 (ET-1)最初被认为是内皮衍生因子,现在被认为是与血管和非血管功能相关的许多生理和病理生理过程的关键介质。一氧化氮是一种重要的血管扩张剂,但也调节多种功能,包括炎症、神经传递、细胞生长和增殖以及上皮运输。后者包括抑制肾收集管中的钠重吸收。虽然ET-1是一种强大的血管收缩剂,但它也可以作为一种有丝分裂原,影响心脏收缩性,并可能作为一种尿钠剂影响肾小管功能。尽管一氧化氮和ET-1在肾上皮内大量存在,但对其影响肾小管功能的情况知之甚少。我们假设在髓内集管和直血管系统内一氧化氮和ET-1的产生之间存在自分泌或旁分泌反馈回路。此外,在doca -盐性高血压等肾功能障碍的实验模型中,ET-1和NO的活性可能升高,从而促进Na的排泄。拟议研究的总体目标是确定肾收集管中NO和ET-1之间的相互作用。我们认为ET-1在刺激肾收集管内的NO生成以应对盐负荷增加方面起着重要作用。与发生在血管内皮细胞中的机制类似,我们预测,刺激集管细胞中的ETB受体将增加NOS活性和随后的NO生成。本建议的具体目的如下:验证ETB受体通过NO产生介导Na排泄生理变化的假说。2. 探讨et -1介导的集气管NO生成机制。3. 探讨DOCA盐介导NO生成病理生理变化的机制。
英文摘要
Originally identified as endothelial-derived factors, nitric oxide (NO) and endothelin-1 (ET-1) are now known to be key mediators in a number of physiological and pathophysiological processes related to both vascular and non-vascular functions. NO is well-established as an important vasodilator but also appears to modulate a variety of functions including inflammation, neurotransmission, cell growth and proliferation, and epithelial transport. The latter includes inhibition of Na reabsorption in the collecting duct of the kidney. While ET-1 is a powerful vasoconstrictor, it too, functions as a mitogen, influences cardiac contractility, and also may serve to influence renal tubular function as a natriuretic agent. Although present in abundant quantities within renal epithelia, very little is known about the circumstances in which NO and ET-1 may influence tubular function. We hypothesize that an autocrine or paracrine feedback loop exists between NO and ET-1 production within the inner medullary collecting duct and vasa recta system. Furthermore, in experimental models of renal dysfunction such as DOCA-salt hypertension, the activity of ET-1 and NO may be increased to promote Na excretion. The overall goal of the proposed studies is to determine the interaction between NO and ET-1 in the collecting duct of the kidney. We propose that ET-1 plays an essential role in stimulating renal NO production within the collecting duct in response to increased salt load. Similar to mechanisms that occur in vascular endothelial cells, we predict that stimulation of ETB receptors in the collecting duct cells will increase NOS activity and subsequent production of NO. The specific aims of this proposal are as follows: 1. To test the hypothesis that ETB receptors mediate physiological changes in Na excretion via NO production. 2. To determine the mechanism of ET-1-mediated NO production in the collecting duct. 3. To determine the mechanism of DOCA salt-mediated pathophysiological changes in NO production.
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