黄嘌呤氧化酶
次黄嘌呤
化学
氧化应激
肾缺血
别嘌呤醇
非布索坦
肾毒性
药理学
肾
肾皮质
腺嘌呤核苷酸
缺血
谷胱甘肽
生物化学
黄嘌呤
再灌注损伤
尿酸
内科学
核苷酸
医学
酶
高尿酸血症
基因
作者
Kentaro Fujii,Akiko Kubo,Kazutoshi Miyashita,Masaaki Sato,Aika Hagiwara,Hiroyuki Inoue,Masaki Ryuzaki,Masanori Tamaki,Takako Hishiki,Noriyo Hayakawa,Yasuaki Kabe,Hiroshi Itoh,Makoto Suematsu
出处
期刊:JCI insight
[American Society for Clinical Investigation]
日期:2019-11-13
卷期号:4 (22)
被引量:45
标识
DOI:10.1172/jci.insight.124816
摘要
Although oxidative stress plays central roles in postischemic renal injury, region-specific alterations in energy and redox metabolism caused by short-duration ischemia remain unknown. Imaging mass spectrometry enabled us to reveal spatial heterogeneity of energy and redox metabolites in the postischemic murine kidney. After 10-minute ischemia and 24-hour reperfusion (10mIR), in the cortex and outer stripes of the outer medulla, ATP substantially decreased, but not in the inner stripes of the outer medulla and inner medulla. 10mIR caused renal injury with elevation of fractional excretion of sodium, although histological damage by oxidative stress was limited. Ischemia-induced NADH elevation in the cortex indicated prolonged production of reactive oxygen species by xanthine oxidase (XOD). However, consumption of reduced glutathione after reperfusion suggested the amelioration of oxidative stress. An XOD inhibitor, febuxostat, which blocks the degradation pathway of adenine nucleotides, promoted ATP recovery and exerted renoprotective effects in the postischemic kidney. Because effects of febuxostat were canceled by silencing of the hypoxanthine phosphoribosyl transferase 1 gene in cultured tubular cells, mechanisms for the renoprotective effects appear to involve the purine salvage pathway, which uses hypoxanthine to resynthesize adenine nucleotides, including ATP. These findings suggest a novel therapeutic approach for acute ischemia/reperfusion renal injury with febuxostat through salvaging high-energy adenine nucleotides.
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