Ghaste Manoj, Mattivi Fulvio, Astarita Giuseppe, Shulaev Vladimir
Department of Biological Sciences, College of Science, University of North Texas, Denton, TX, USA.
Department of Food Quality and Nutrition, Research and Innovation Centre, Fondazione Edmund Mach (FEM), San Michele all'Adige, (TN), Italy.
Methods Mol Biol. 2022;2396:117-136. doi: 10.1007/978-1-0716-1822-6_10.
Analysis of volatile compounds in fruits and plants can be a challenging task as they present in a large amount with structural diversity and high aroma threshold, the information on molecular ion can be very useful for compound identification. Electron ionization gas-chromatography-mass spectrometry (EI-GC-MS) which is widely used for the analysis of plant volatiles has a certain limitation providing the limited capability to characterize novel metabolites in a complex biological matrix due to hard fragmentation level. Atmospheric pressure ionization using APGC source in combination with high-resolution time-of-flight mass spectrometry (TOF-MS) provides an excellent combination of GC with high-resolution mass spectrometry. The APGC-MS approach provides several advantages over the conventional EI and CI based GC-MS techniques in metabolomics studies due to highly reduced fragmentation, which preserves molecular ion, and accurate mass measurement by HRMS allows to deduce the elemental composition of the volatile compounds. Moreover, the use of MS mode provides spectral similarity to EI in high-energy mode which can be used for the further confirmation of metabolite identity. We describe an APGC-MS-based untargeted metabolomics approach with a case study of grape volatile compounds and the development of a spectral library for metabolite identification.
水果和植物中挥发性化合物的分析可能是一项具有挑战性的任务,因为它们大量存在,结构多样且香气阈值高,分子离子信息对于化合物鉴定非常有用。广泛用于植物挥发物分析的电子电离气相色谱 - 质谱联用仪(EI-GC-MS)存在一定局限性,由于其硬碎裂程度,在复杂生物基质中表征新型代谢物的能力有限。使用APGC源结合高分辨率飞行时间质谱(TOF-MS)的大气压电离提供了气相色谱与高分辨率质谱的出色组合。在代谢组学研究中,APGC-MS方法相对于传统的基于EI和CI的GC-MS技术具有多个优势,这是因为其碎裂程度大大降低,保留了分子离子,并且通过高分辨率质谱(HRMS)进行的精确质量测量能够推断挥发性化合物的元素组成。此外,MS模式在高能模式下提供了与EI相似的光谱,可用于进一步确认代谢物的身份。我们描述了一种基于APGC-MS的非靶向代谢组学方法,并以葡萄挥发性化合物为例进行研究,同时开发了用于代谢物鉴定的光谱库。