Nakashima Taiken, Wada Hiroshi, Morita Satoshi, Erra-Balsells Rosa, Hiraoka Kenzo, Nonami Hiroshi
Plant Biophysics/Biochemistry Research Laboratory, Faculty of Agriculture, Ehime University , Matsuyama, 790-8566, Japan.
Kyushu Okinawa Agricultural Research Center, National Agriculture and Food Research Organization (NARO) , Chikugo, 833-0041, Japan.
Anal Chem. 2016 Mar 15;88(6):3049-57. doi: 10.1021/acs.analchem.5b03366. Epub 2016 Feb 29.
In this report, we developed the pressure probe electrospray ionization-mass spectrometry with internal electrode capillary (IEC-PPESI-MS) which enables high spatial-resolution cell sampling, precise postsampling manipulation, and high detection sensitivity. Using this technique, a comparative in situ single-cell metabolite profiling of stalk and glandular cells, the two adjacent cell types comprising a trichome unit in tomato plants (Solanum lycopersicum L.), were performed to clarify the extent of metabolic differentiation between two cell types as well as among different types of trichomes. Owing to high sensitivity of the system, less than a picoliter cell sap from a single stalk cell sufficiently yielded a number of peaks of amino acids, organic acids, carbohydrates, and flavonoids. The minimal cell sap removal from a stalk cell without severe disturbance of trichome structure enabled sequential analysis of adjacent glandular cell on the same trichome, which showed the presence of striking differences in metabolite compositions between two adjacent cell types. Comparison among different types of trichome also revealed significant variations in metabolite profiles, particularly in flavonoids and acyl sugars compositions. Some metabolites were found only in specific cell types or particular trichome types. Although extensive metabolomics analysis of glandular cells of tomato trichomes has been previously documented, this is the first report describing cell-to-cell variations in metabolite compositions of stalk and glandular cells as well as in different trichome types. Further application of this technique may provide new insights into distinct metabolism in plant cells displaying variations in shape, size, function and physicochemical properties.
在本报告中,我们开发了带有内部电极毛细管的压力探针电喷雾电离质谱技术(IEC-PPESI-MS),该技术能够实现高空间分辨率的细胞采样、精确的采样后操作以及高检测灵敏度。利用这项技术,我们对番茄植株(Solanum lycopersicum L.)中构成腺毛单元的两种相邻细胞类型——柄细胞和腺细胞进行了原位单细胞代谢物比较分析,以阐明这两种细胞类型之间以及不同类型腺毛之间的代谢分化程度。由于该系统灵敏度高,从单个柄细胞中获取的不到一皮升的细胞液就足以产生许多氨基酸、有机酸、碳水化合物和黄酮类化合物的峰。在不严重干扰腺毛结构的情况下,从柄细胞中最小限度地去除细胞液,使得能够对同一腺毛上相邻的腺细胞进行顺序分析,结果显示两种相邻细胞类型的代谢物组成存在显著差异。不同类型腺毛之间的比较也揭示了代谢物谱的显著变化,特别是在黄酮类化合物和酰基糖组成方面。一些代谢物仅在特定的细胞类型或特定的腺毛类型中被发现。尽管此前已有关于番茄腺毛腺细胞的广泛代谢组学分析的报道,但这是第一份描述柄细胞和腺细胞以及不同腺毛类型之间代谢物组成的细胞间差异的报告。这项技术的进一步应用可能会为在形状、大小、功能和物理化学性质方面存在差异的植物细胞中的独特代谢提供新的见解。