Yin Ziyu, Zheng Rikuan, Li Lianfu, Xi Shichuan, Luan Zhendong, Sun Chaomin, Zhang Xin
CAS Key Laboratory of Marine Geology and Environment and CAS Key Laboratory of Experimental Marine Biology and Center of Deep Sea Research, Institute of Oceanology, Chinese Academy of Sciences, Qingdao, China.
Laboratory for Marine Geology and Laboratory for Marine Biology and Biotechnology, Pilot Laboratory for Marine Science and Technology, Qingdao, China.
Front Microbiol. 2023 Apr 6;14:1128064. doi: 10.3389/fmicb.2023.1128064. eCollection 2023.
Gas production from several metabolic pathways is a necessary process that accompanies the growth and central metabolism of some microorganisms. However, accurate and rapid nondestructive detection of gas production is still challenging. To this end, gas chromatography (GC) is primarily used, which requires sampling and sample preparation. Furthermore, GC is expensive and difficult to operate. Several researchers working on microbial gases are looking forward to a new method to accurately capture the gas trends within a closed system in real-time. In this study, we developed a precise quantitative analysis for headspace gas in Hungate tubes using Raman spectroscopy. This method requires only a controlled focus on the gas portion inside Hungate tubes, enabling nondestructive, real-time, continuous monitoring without the need for sampling. The peak area ratio was selected to establish a calibration curve with nine different CH-N gaseous mixtures and a linear relationship was observed between the peak area ratio of methane to nitrogen and their molar ratios ((CH)/(N) = 6.0739 × (CH)/(N)). The results of quantitative analysis using Raman spectroscopy showed good agreement with those of GC in the continuous monitoring of culture experiments of a deep-sea cold seep methanogenic archaeon. This method significantly improves the detection efficiency and shows great potential for quantitative gas detection in microbiology. It can be a powerful complementary tool to GC.
几种代谢途径产生气体是某些微生物生长和中心代谢过程中伴随的必要过程。然而,对气体产生进行准确、快速的无损检测仍然具有挑战性。为此,主要使用气相色谱法(GC),但这需要进行采样和样品制备。此外,气相色谱仪价格昂贵且操作困难。一些研究微生物气体的研究人员期待一种新方法,能够在封闭系统中实时准确地捕捉气体变化趋势。在本研究中,我们利用拉曼光谱法对亨盖特管中的顶空气体进行了精确的定量分析。该方法只需要聚焦于亨盖特管内的气体部分,无需采样即可进行无损、实时、连续监测。选择峰面积比,用九种不同的CH-N气体混合物建立校准曲线,观察到甲烷与氮气的峰面积比与其摩尔比之间存在线性关系((CH)/(N) = 6.0739 × (CH)/(N))。在对深海冷泉产甲烷古菌培养实验的连续监测中,拉曼光谱定量分析结果与气相色谱法结果吻合良好。该方法显著提高了检测效率,在微生物学气体定量检测方面具有巨大潜力。它可以成为气相色谱仪的有力补充工具。