首页> 外文期刊>Applied Spectroscopy: Society for Applied Spectroscopy >Real-Time Analysis of Exhaled Breath via Resonance-Enhanced Multiphoton Ionization-Mass Spectrometry with a Medium Pressure Laser Ionization Source: Observed Nitric Oxide Profile
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Real-Time Analysis of Exhaled Breath via Resonance-Enhanced Multiphoton Ionization-Mass Spectrometry with a Medium Pressure Laser Ionization Source: Observed Nitric Oxide Profile

机译:通过中压激光电离共振增强多光子电离质谱法实时分析呼出气来源:观察到的一氧化氮谱

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摘要

An elevated concentration of nitric oxide (NO) in alveolar ventilation is indicative of inflammatory stress within the lung. We present here the first description of time-resolved measurement of NO in breath using photoionization mass spectrometry, providing new capabilities for the medical investigator, such as isotopic tracing. Here we use resonance-enhanced multiphoton ionization (REMPI) with time-of-flight mass spectrometry (TOF-MS) coupled with a medium pressure laser ionization (MPLI) source for the selective detection of NO in breath. To demonstrate this technology, a single male subject breathes NO-free air for several minutes, and then the exhaled breath is monitored. The ability of REMPI to differentiate among three different isotopomers of NO is demonstrated, and then the concentration profile of NO in exhaled breath is measured. A similar time-dependence concentration is found as observed by previous techniques. The advantages of this approach compared to other techniques are: (1) parts-per-billion by volume (ppbV) mixing ratios of NO can be measured on a sub-second time scale, (2) since the technique operates optically as well as mass-resolved, isotopomers of NO are discernable, permitting the use of isotopic tracing, and (3) other biologically significant gas molecules can be measured via REMPI.
机译:肺泡通气中一氧化氮(NO)浓度升高表明肺内存在炎性应激。我们在此首次介绍使用光电离质谱法对呼吸中NO进行时间分辨测量的方法,从而为医学研究人员提供新的功能,例如同位素示踪。在这里,我们将共振增强的多光子电离(REMPI)与飞行时间质谱(TOF-MS)结合使用中压激光电离(MPLI)源来选择性检测呼吸中的NO。为了演示该技术,单个男性受试者呼吸无NO的空气几分钟,然后监测呼出的呼吸。证明了REMPI在三种不同的NO同分异构体之间进行区分的能力,然后测量呼出气中NO的浓度分布。如先前技术所观察到的,发现类似的时间依赖性浓度。与其他技术相比,该方法的优势在于:(1)可以在亚秒级的时间内测量NO的十亿分之几(ppbV)的混合比;(2)由于该技术的光学效果以及质量分辨的NO的异构体是可辨别的,允许使用同位素示踪,并且(3)其他具有生物学意义的气体分子可以通过REMPI测量。

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