Miyado Takashi, Tanaka Yoshihide, Nagai Hidenori, Takeda Sahori, Saito Keiitsu, Fukushi Keiichi, Yoshida Yasukazu, Wakida Shin-Ichi, Niki Etsuo
Human Stress Signal Research Center, National Institute of Advanced Industrial Science and Technology, Ikeda, Osaka, Japan.
J Chromatogr A. 2004 Oct 8;1051(1-2):185-91.
In order to develop a highly sensitive and high-throughput screening method for nitrogen monoxide metabolites in biological fluids, we have investigated the simultaneous determination of nitrite and nitrate, using capillary electrophoresis and microchip capillary electrophoresis. In capillary zone electrophoresis, a running buffer based on human serum components with high ionic strength has been developed for the determination of nitrite and nitrate in human serum and human saliva. We obtained successful separation of nitrite and nitrate in the serum and the saliva within 7 min under optimum analytical conditions. Linear calibration curves for nitrite and nitrate for both peak height and area were obtained by a standard addition method. The limits of detection obtained at a signal-to-noise ratio (S/N) of 3 for nitrite and nitrate in the serum were 2.6 and 1.5 microM, respectively. The values of the relative standard deviation of peak height for the serum with 9.2 microM nitrite and 20.9 microM nitrate were 5.7 and 4.1%, respectively. For on-site analysis with high-throughput screening, a microchip capillary electrophoresis method using a microchip made of quartz with a UV detector was developed. In this high-throughput format, using a running buffer with an electroosmotic flow modifier, the peaks of nitrite and nitrate in an artificial serum sample were obtained within 8 s. In high-resolution mode, using the buffer without electroosmotic flow modifier, the separation of nitrite and nitrate was obtained within 15 s. In high-resolution mode, using an artificial serum sample with 50 microM NO2- and 50 microM NO3-, the limits of detection (S/N = 3) of 41 microM for NO2- and 26 microM for NO3- were obtained. The method was applied to human serum and saliva. We obtained peaks due to nitrite and nitrate in 10-fold diluted saliva.
为了开发一种用于生物体液中一氧化氮代谢物的高灵敏度和高通量筛选方法,我们研究了使用毛细管电泳和微芯片毛细管电泳同时测定亚硝酸盐和硝酸盐。在毛细管区带电泳中,已开发出一种基于具有高离子强度的人血清成分的运行缓冲液,用于测定人血清和人唾液中的亚硝酸盐和硝酸盐。在最佳分析条件下,我们在7分钟内成功分离了血清和唾液中的亚硝酸盐和硝酸盐。通过标准加入法获得了亚硝酸盐和硝酸盐的峰高和峰面积的线性校准曲线。血清中亚硝酸盐和硝酸盐在信噪比(S/N)为3时的检测限分别为2.6和1.5微摩尔/升。含有9.2微摩尔/升亚硝酸盐和20.9微摩尔/升硝酸盐的血清峰高的相对标准偏差值分别为5.7%和4.1%。为了进行高通量筛选的现场分析,开发了一种使用带有紫外检测器的石英微芯片的微芯片毛细管电泳方法。在这种高通量模式下,使用带有电渗流改性剂的运行缓冲液,在8秒内获得了人工血清样品中亚硝酸盐和硝酸盐的峰。在高分辨率模式下,使用没有电渗流改性剂的缓冲液,在15秒内实现了亚硝酸盐和硝酸盐的分离。在高分辨率模式下,使用含有50微摩尔/升NO2-和50微摩尔/升NO3-的人工血清样品,NO2-和NO3-的检测限(S/N = 3)分别为41微摩尔/升和26微摩尔/升。该方法应用于人体血清和唾液。我们在10倍稀释的唾液中获得了亚硝酸盐和硝酸盐产生的峰。