Department of Physical and Theoretical Chemistry, University of Braunschweig, Hans-Sommer-Str. 10, 38106 Braunschweig, Germany.
J Breath Res. 2007 Dec;1(2):026003. doi: 10.1088/1752-7155/1/2/026003. Epub 2007 Nov 8.
The detection of nitric oxide (NO) is of considerable medical interest. NO is involved in a multitude of mammal physiological processes, and various non-invasive concentration determination methods for NO have been developed during the last few years. Regarding time resolved metabolism behavior the quantitative determination of the (15)N(16)O-isotopologue in combination with (15)N-labeled drugs and amino acids is a central interest of current medical research. We apply laser-induced fluorescence (LIF) spectroscopy for isotope-selective detection of NO in various biological environments with a theoretical detection limit below 0.1 parts per trillion (ppt). Electronic excitation of the AX-transition in the UV provides fluorescence around 247 nm from [Formula: see text]. For an online measurement of human exhaled air, a respiratory mask has been constructed and integrated into our system. This paper gives an overview of the applied LIF device for non-invasive detection of NO originated from exhaled human air. The main advantages of this device compared to established methods are as follows: high sensitivity for NO concentrations in the ppt region, a high time resolution of 20 ms and isotopic selectivity to distinguish between (14)NO and (15)NO. Visualizations of single-exhalation profiles and long-time online measurements including the determination of absolute NO concentrations are presented and the influence of quenching gases present during the experiment is discussed. To our knowledge, we present for the first time time-resolved (15)NO online profiles of exhaled human air.
一氧化氮(NO)的检测具有重要的医学意义。NO 参与了哺乳动物的多种生理过程,近年来已经开发出了多种用于非侵入性检测 NO 浓度的方法。关于时间分辨代谢行为,与(15)N 标记药物和氨基酸相结合,对(15)N(16)O 同位素异构体的定量测定是当前医学研究的一个核心关注点。我们应用激光诱导荧光(LIF)光谱学,在各种生物环境中对 NO 进行同位素选择性检测,理论检测限低于 0.1 个 ppt。在 UV 中对 AX 跃迁的电子激发提供了来自 [Formula: see text] 的约 247nm 的荧光。为了对人体呼出的空气进行在线测量,我们构建了一个呼吸面罩并将其集成到我们的系统中。本文概述了用于非侵入式检测源自人体呼出空气的 NO 的 LIF 装置。与现有方法相比,该设备具有以下主要优势:对低 ppt 区域的 NO 浓度具有高灵敏度、20ms 的高时间分辨率和同位素选择性,以区分(14)NO 和(15)NO。展示了单呼气廓线的可视化和长时间在线测量,包括绝对 NO 浓度的确定,并讨论了实验过程中存在的猝灭气体的影响。据我们所知,我们首次展示了人体呼出空气的时间分辨(15)NO 在线廓线。