The Role of Extracellular Superoxide Dismutase in Modulation of Hypertension
The Role of Extracellular Superoxide Dismutase in Modulation of Hypertension
批准号:
7409083
负责人:
David G Harrison
金额:
$48.35万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-05-01 至 2008-04-30
关键词:
4-ethoxymethylene-2-phenyl-2-oxazoline-5-oneAddressAngiotensin IIAngiotensinsAnimal ModelAnimalsBiological AvailabilityBlood PressureBlood VesselsCellsConditionDietEnzymesExcretory functionFundingGoalsHydrogen PeroxideHypertensionInfusion proceduresKidneyKnockout MiceKnowledgeMusNAD(P)H oxidaseNitric OxideOxidantsOxidasesOxidative StressPhenotypePlayProcessProductionProtein OverexpressionReactive Oxygen SpeciesRegulationRelative (related person)ResearchRoleSmooth Muscle MyocytesSodiumSourceStressSuperoxide DismutaseSuperoxidesTransgenic MiceTransgenic OrganismsVascular DiseasesVascular Smooth Muscleblood pressure regulationcatalasecatalase-polyethylene glycolextracellularfree radical oxygenhuman AKAP13 proteinhuman CYBA proteinhuman diseasein vivoinsightmouse modelpolyethylene glycol-superoxide dismutaseprogramsresearch studyresponse
中文摘要
在过去的资助周期中,我们的研究强调了NAD(P)H氧化酶作为活性氧来源的重要性,并证实了它在血管紧张素II引起的高血压中起着至关重要的作用。此外,我们已经证明细胞外超氧化物歧化酶(ecSOD)似乎在与血管氧化应激增加相关的条件下发挥重要的代偿作用,例如在血管紧张素h诱导的高血压和两种转基因小鼠模型(过度表达p22 phox或nox1)中。最近,我们发现缺乏ecSOD的小鼠,血管紧张素II输注引起的高血压显著增强,再次支持ecSOD在调节氧化应激和高血压中的关键作用。在目前的研究中,我们计划进一步了解这种酶的调节以及它如何调节血压。在目的1中,我们将检验H2O2在血管紧张素II反应中导致ecSOD升高的假设。为了实现这一点,我们将在存在或不存在PEG-SOD或peg -过氧化氢酶的情况下,用血管紧张素II处理培养的血管平滑肌细胞。我们也会学习
英文摘要
During the past funding cycle, our research has emphasized the importance of the NAD(P)H oxidase as a source of reactive oxygen species and confirmed that it plays a crucial role in the hypertension caused by angiotensin II. In addition, we have shown that the extracellular superoxide dismutase (ecSOD) seems to play an important compensatory role in conditions associated with increased vascular oxidant stress, for example in angiotensin H-induced hypertension and in two transgenic mouse models tmice overexpressing either p22 phox or nox1). Very recently, we have found that mice lacking ecSOD, ecSOD mice, the hypertension caused by angiotensin II infusion is dramatically enhanced, again supporting a critical role of the ecSOD in modulating oxidant stress and hypertension. In the present studies, we plan to gain further insight into regulation of this enzyme and how it modulates blood pressure. In aim 1, we will examine the hypothesis that H2O2 is responsible for the increase in ecSOD in response to angiotensin II. To accomplish this, we will treat vascular smooth muscle cells in culture with angiotensin II in the presence or absence of PEG-SOD or PEG-catalase. We will also study
vascular smooth muscle cells that are deficient in p47 phox from p47 phox-/-mice and cells overexpressing catalase (Tg catvsmc mice). In vivo, we will examine the ability of angiotensin II to increase ecSOD expression in p47 phox-/- mice and Tg catvsmc mice. We anticipate that ecSOD expression will not be increased in p47 phox-/- mice or in Tg catvsmc mice. In aims 2 and 3, we will examine mechanisms responsible for the augmented hypertension caused by angiotensin II in the ecSOD -/- mice. In aim 2, we will examine the effect of angiotensin II on renal
sodium excretion in wild-type and ecSOD / mice and examine the effect of a sodium free diet on blood pressure in these animals. In aim 3, we will make use of a mouse that we have recently created that will allow vascular smooth muscle specific deletion of ecSOD and examine the effect of angiotensin II on blood pressure and renal sodium excretion in these mice. The effect of angiotensin II on vascular reactivity, superoxide production and nitric oxide bioavailability will be studied in these mice as well. This aim will allow us to understand the relative importance of vascular vs. non-vascular sources of ecSOD in modulation of blood pressure and vascular tone. Finally, in aim 4, we will study the effect of deletion of ecSOD in mice overexpressing the NAD(P)H oxidase subunit p22 phox. These transgenic mice, which we created during the past funding period, have a modest increase in vascular free radical oxygen production and a 3-fold increase in ecSOD expression. We hypothesize that elimination of ecSOD in these mice will result in a hypertensive phenotype with a marked increase in vascular free radical oxygen production. Overall, these studies should further our knowledge of how vascular oxidant stress is modulated in vivo and in particular provide new information regarding the importance of the ecSOD in this process.
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