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体内一氧化氮抑制引发白细胞激活之前的微血管氧化应激。

Microvascular oxidative stress preceding leukocyte activation elicited by in vivo nitric oxide suppression.

作者信息

Suematsu M, Tamatani T, Delano F A, Miyasaka M, Forrest M, Suzuki H, Schmid-Schönbein G W

机构信息

Institute for Biomedical Engineering, University of California, San Diego, La Jolla 92093.

出版信息

Am J Physiol. 1994 Jun;266(6 Pt 2):H2410-5. doi: 10.1152/ajpheart.1994.266.6.H2410.

Abstract

This study was aimed to determine the mechanism by which endogenous nitric oxide suppression promotes leukocyte adhesion in vivo. The rat mesenteric microcirculation was superfused with NG-nitro-L-arginine methyl ester (L-NAME; 100 microM), and intracellular oxidant formation in several microcirculatory cellular components such as arteriolar and venular endothelium and mast cells was visually monitored by digital microfluorography assisted by carboxydichlorofluorescein (CDCF), a hydroperoxide-sensitive fluorogenic probe. Adherent leukocyte density was measured simultaneously. L-NAME induced a significant time-dependent increase in CDCF fluorescence in arteriolar and venular endothelium and mast cells followed by firm adhesion of leukocytes. L-NAME-induced CDCF elevation showed a different spatial distribution compared with that evoked by N-formylmethionyl-leucyl-phenylalanine, in which only local venular segments with adhering leukocytes exhibited CDCF fluorescence enhancement. The level of hydroperoxide formation in arterioles and venules evoked by 60-min L-NAME superfusion was equivalent to that induced by the superfusion of approximately 880 microM tert-butyl hydroperoxide for 10 min. Pretreatment with anti-intracellular adhesion molecule-1, anti-P-selectin, or anti-CD18 monoclonal antibody attenuated L-NAME-elicited venular leukocyte adhesion without abolishing CDCF fluorescence in situ. Pretreatment with desferioxamine (50 mg/kg iv; 1 h before L-NAME superfusion) significantly diminished the iron-catalyzed hydroperoxide formation in arterioles and venules, but not in interstitial mast cells, as well as subsequent venular leukocyte adhesion. These findings indicate that endogenous nitric oxide may modulate oxidative stress in mast cells, arteriolar and venular microvascular endothelium and thereby can play a crucial role in leukocyte recruitment in venules.

摘要

本研究旨在确定内源性一氧化氮抑制在体内促进白细胞黏附的机制。用NG-硝基-L-精氨酸甲酯(L-NAME;100微摩尔)灌注大鼠肠系膜微循环,并用对氢过氧化物敏感的荧光探针羧基二氯荧光素(CDCF)辅助的数字显微荧光成像技术直观监测小动脉和小静脉内皮以及肥大细胞等几种微循环细胞成分中的细胞内氧化剂形成。同时测量黏附白细胞密度。L-NAME诱导小动脉和小静脉内皮以及肥大细胞中CDCF荧光随时间显著增加,随后白细胞牢固黏附。与N-甲酰甲硫氨酰-亮氨酰-苯丙氨酸引起的情况相比,L-NAME诱导的CDCF升高显示出不同的空间分布,其中只有有白细胞黏附的局部小静脉段表现出CDCF荧光增强。60分钟L-NAME灌注引起的小动脉和小静脉中氢过氧化物形成水平与约880微摩尔叔丁基氢过氧化物灌注10分钟诱导的水平相当。用抗细胞间黏附分子-1、抗P-选择素或抗CD18单克隆抗体预处理可减弱L-NAME引起的小静脉白细胞黏附,但不会消除原位CDCF荧光。用去铁胺(静脉注射50毫克/千克;在L-NAME灌注前1小时)预处理可显著减少小动脉和小静脉中铁催化的氢过氧化物形成,但不减少间质肥大细胞中的形成,以及随后的小静脉白细胞黏附。这些发现表明,内源性一氧化氮可能调节肥大细胞、小动脉和小静脉微血管内皮中的氧化应激,从而在小静脉白细胞募集中起关键作用。

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