Hanf Stefan, Bögözi Timea, Keiner Robert, Frosch Torsten, Popp Jürgen
Leibniz Institute of Photonic Technology , Jena 07745, Germany.
Anal Chem. 2015 Jan 20;87(2):982-8. doi: 10.1021/ac503450y. Epub 2014 Dec 29.
Breath gas analysis is a novel powerful technique for noninvasive, early-stage diagnosis of metabolic disorders or diseases. Molecular hydrogen and methane are biomarkers for colonic fermentation, because of malabsorption of oligosaccharides (e.g., lactose or fructose) and for small intestinal bacterial overgrowth. Recently, the presence of these gases in exhaled breath was also correlated with obesity. Here, we report on the highly selective and sensitive detection of molecular hydrogen and methane within a complex gas mixture (consisting of H2, CH4, N2, O2, and CO2) by means of fiber-enhanced Raman spectroscopy (FERS). An elaborate FERS setup with a microstructured hollow core photonic crystal fiber (HCPCF) provided a highly improved analytical sensitivity. The simultaneous monitoring of H2 with all other gases was achieved by a combination of rotational (H2) and vibrational (other gases) Raman spectroscopy within the limited spectral transmission range of the HCPCF. The HCPCF was combined with an adjustable image-plane aperture pinhole, in order to separate the H2 rotational Raman bands from the silica background signal and improve the sensitivity down to a limit of detection (LOD) of 4.7 ppm (for only 26 fmol H2). The ability to monitor the levels of H2 and CH4 in a positive hydrogen breath test (HBT) was demonstrated. The FERS sensor possesses a high dynamic range (∼5 orders of magnitude) with a fast response time of few seconds and provides great potential for miniaturization. We foresee that this technique will pave the way for fast, noninvasive, and painless point-of-care diagnosis of metabolic diseases in exhaled human breath.
呼吸气体分析是一种用于代谢紊乱或疾病的非侵入性早期诊断的新型强大技术。分子氢和甲烷是结肠发酵的生物标志物,这是由于低聚糖(如乳糖或果糖)吸收不良以及小肠细菌过度生长所致。最近,呼出气体中这些气体的存在也与肥胖有关。在此,我们报告了通过光纤增强拉曼光谱(FERS)在复杂气体混合物(由H2、CH4、N2、O2和CO2组成)中对分子氢和甲烷进行高选择性和高灵敏度检测的方法。一种配备微结构空心芯光子晶体光纤(HCPCF)的精密FERS装置提供了大大提高的分析灵敏度。通过在HCPCF有限的光谱传输范围内结合转动(H2)和振动(其他气体)拉曼光谱,实现了对H2与所有其他气体的同时监测。HCPCF与一个可调节的像平面孔径针孔相结合,以便将H2转动拉曼谱带与二氧化硅背景信号分离,并将灵敏度提高到检测限(LOD)为4.7 ppm(仅针对26 fmol H2)。展示了在阳性氢呼气试验(HBT)中监测H2和CH4水平的能力。该FERS传感器具有高动态范围(约5个数量级),响应时间快,仅需几秒,并且具有很大的小型化潜力。我们预见,这项技术将为在呼出的人体气息中对代谢疾病进行快速、非侵入性和无痛的即时诊断铺平道路。