Quéro Anthony, Jousse Cyril, Lequart-Pillon Michelle, Gontier Eric, Guillot Xavier, Courtois Bernard, Courtois Josiane, Pau-Roblot Corinne
Unité de Biologie des Plantes et Innovation, Université de Picardie Jules Verne, IUT d'Amiens, Dept. GB, Avenue des Facultés, Le Bailly, 80025 Amiens Cedex, France.
Unité de Biologie des Plantes et Innovation, Université de Picardie Jules Verne, 33 rue Saint Leu, 80039 Amiens Cedex, France.
J Chromatogr B Analyt Technol Biomed Life Sci. 2014 Nov 1;970:36-43. doi: 10.1016/j.jchromb.2014.08.040. Epub 2014 Sep 6.
Plant metabolite profiling is commonly carried out by GC-MS of methoximated trimethylsilyl (TMS) derivatives. This technique is robust and enables a library search for spectra produced by electron ionization. However, recent articles have described problems associated with the low stability of some TMS derivatives. This limits the use of GC-MS for metabolomic studies that need large sets of qualitative and quantitative analyses. The aim of this work is to determine the experimental conditions in which the stability of TMS derivatives could be improved. This would facilitate the analysis of the large-scale experimental designs needed in the metabolomics approach. For good repeatability, the sampling conditions and the storage temperature of samples during analysis were investigated. Multiple injections of one sample from one vial led to high variations while injection of one sample from different vials improved the analysis. However, before injection, some amino acid TMS derivatives were degraded during the storage of vials in the autosampler. Only 10% of the initial quantity of glutamine 3 TMS and glutamate 3 TMS and 66% of α-alanine 2 TMS was detected 48 h after derivatization. When stored at 4 °C until injection, all TMS derivatives remained stable for 12 h; at -20 °C, they remained stable for 72 h. From the integration of all these results, a detailed analytical procedure is thus proposed. It enables a robust quantification of polar metabolites, useful for further plant metabolomics studies using GC-MS.
植物代谢物谱分析通常通过对甲氧胺化三甲基硅烷基(TMS)衍生物进行气相色谱-质谱联用(GC-MS)来完成。该技术性能稳定,能够对电子电离产生的光谱进行谱库检索。然而,最近的文章描述了一些TMS衍生物稳定性较低的相关问题。这限制了GC-MS在需要大量定性和定量分析的代谢组学研究中的应用。这项工作的目的是确定可以提高TMS衍生物稳定性的实验条件。这将有助于代谢组学方法所需的大规模实验设计的分析。为了获得良好的重复性,研究了分析过程中的采样条件和样品的储存温度。从一个小瓶中多次进样一个样品会导致较大的变化,而从不同小瓶中进样一个样品则改善了分析。然而,在进样前,一些氨基酸TMS衍生物在自动进样器中的小瓶储存过程中会降解。衍生化48小时后,仅检测到谷氨酰胺3 TMS和谷氨酸3 TMS初始量的10%以及α-丙氨酸2 TMS的66%。当在4℃下储存至进样时,所有TMS衍生物在12小时内保持稳定;在-20℃下,它们在72小时内保持稳定。综合所有这些结果,因此提出了一个详细的分析程序。它能够对极性代谢物进行可靠的定量分析,这对于使用GC-MS进行进一步的植物代谢组学研究很有用。