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硝普钠在水相和脂相光解过程中形成的一氧化氮捕获:电子自旋共振研究

Trapping of nitric oxide formed during photolysis of sodium nitroprusside in aqueous and lipid phases: an electron spin resonance study.

作者信息

Singh R J, Hogg N, Neese F, Joseph J, Kalyanaraman B

机构信息

Biophysics Research Institute, Medical College of Wisconsin, Milwaukee 53226-0509, USA.

出版信息

Photochem Photobiol. 1995 Apr;61(4):325-30. doi: 10.1111/j.1751-1097.1995.tb08616.x.

Abstract

Photolytic decomposition of sodium nitroprusside (SNP), a widely used nitrovasodilator, produced nitric oxide (.NO), which was continuously monitored by electron spin resonance (ESR) spectroscopy. The .NO present in the aqueous or the lipid phase was trapped by either a hydrophilic or a hydrophobic nitronyl nitroxide, respectively, to form the corresponding imino nitroxide. The conversion of nitronyl nitroxide to imino nitroxide was monitored by ESR spectrometry. The quantum yield for the generation of .NO from SNP, measured from the rate of decay of nitronyl nitroxide, was 0.201 +/- 0.007 and 0.324 +/- 0.01 (mean +/- SD, n = 3) at 420 nm and 320 nm, respectively. The action spectrum for .NO generation was found to overlap the optical absorption spectrum of SNP closely. A mechanism for the reaction between SNP and nitronyl nitroxide in the presence of light is proposed and computer-aided simulation of this mechanism using published rate constants agreed well with experimental data. The methodology described here may be used to assay .NO production continuously during photoactivation of .NO donors in aqueous and lipid environments. Biological implications of this methodology are discussed.

摘要

硝普钠(SNP)是一种广泛使用的硝基血管扩张剂,其光解产生一氧化氮(·NO),通过电子自旋共振(ESR)光谱对其进行连续监测。水相或脂质相中的·NO分别被亲水性或疏水性硝酰基氮氧化物捕获,形成相应的亚氨基氮氧化物。通过ESR光谱监测硝酰基氮氧化物向亚氨基氮氧化物的转化。由硝酰基氮氧化物的衰减速率测得,SNP产生·NO的量子产率在420nm和320nm处分别为0.201±0.007和0.324±0.01(平均值±标准差,n = 3)。发现·NO生成的作用光谱与SNP的光吸收光谱紧密重叠。提出了在光存在下SNP与硝酰基氮氧化物之间反应的机制,并且使用已发表的速率常数对该机制进行计算机辅助模拟,结果与实验数据吻合良好。这里描述的方法可用于在水性和脂质环境中光激活·NO供体期间连续测定·NO的产生。讨论了该方法的生物学意义。

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