氮氧化物4
烟酰胺腺嘌呤二核苷酸磷酸
内分泌学
内科学
黄素腺嘌呤二核苷酸
NADPH氧化酶
肾皮质
氧化应激
同型半胱氨酸
化学
烟酰胺腺嘌呤二核苷酸
硝基酪氨酸
肾
生物
氧化酶试验
生物化学
一氧化氮合酶
辅因子
一氧化氮
医学
NAD+激酶
酶
作者
Allen W. Cowley,Chun Yang,Nadezhda N. Zheleznova,Alexander Staruschenko,Theresa Kurth,Lisa Rein,Vikash Kumar,Katherine Sadovnikov,Alex Dayton,Matthew Hoffman,Robert P. Ryan,M. M. Skelton,Fahimeh Salehpour,Mahsa Ranji,Aron M. Geurts
出处
期刊:Hypertension
[Lippincott Williams & Wilkins]
日期:2015-12-09
卷期号:67 (2): 440-450
被引量:91
标识
DOI:10.1161/hypertensionaha.115.06280
摘要
This study reports the consequences of knocking out NADPH (nicotinamide adenine dinucleotide phosphate) oxidase 4 ( Nox4 ) on the development of hypertension and kidney injury in the Dahl salt-sensitive (SS) rat. Zinc finger nuclease injection of single-cell SS embryos was used to create an 8 base-pair frame-shift deletion of Nox4 , resulting in a loss of the ≈68 kDa band in Western blot analysis of renal cortical tissue of the knock out of Nox4 in the SS rat (SS Nox4−/− ) rats. SS Nox4−/− rats exhibited a significant reduction of salt-induced hypertension compared with SS rats after 21 days of 4.0% NaCl diet (134±5 versus 151±3 mm Hg in SS) and a significant reduction of albuminuria, tubular casts, and glomerular injury. Optical fluorescence 3-dimensional cryoimaging revealed significantly higher redox ratios (NADH/FAD [reduced nicotinamide adenine dinucleotide/flavin adenine dinucleotide]) in the kidneys of SS Nox4−/− rats even when fed the 0.4% NaCl diet, indicating greater levels of mitochondrial electron transport chain metabolic activity and reduced oxidative stress compared with SS rats. Before the development of hypertension, RNA expression levels of Nox subunits Nox2, p67 phox , and p22 phox were found to be significantly lower ( P <0.05) in SS Nox4−/− compared with SS rats in the renal cortex. Thus, the mutation of Nox4 seems to modify transcription of several genes in ways that contribute to the protective effects observed in the SS Nox4−/− rats. We conclude that the reduced renal injury and attenuated blood pressure response to high salt in the SS Nox4−/− rat could be the result of multiple pathways, including gene transcription, mitochondrial energetics, oxidative stress, and protein matrix production impacted by the knock out of Nox4.
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