Mori Tetsuya, Rai Amit, Tsugawa Hiroshi, Yamada Yutaka, Saito Kazuki
RIKEN Center for Sustainable Resource Science, Kanagawa, Japan.
RIKEN Center for Sustainable Resource Science, Kanagawa, Japan; Plant Molecular Science Center, Chiba University, Chiba, Japan.
Methods Enzymol. 2023;680:247-273. doi: 10.1016/bs.mie.2022.08.029. Epub 2022 Sep 24.
Plants are expert chemists producing millions of metabolites, only a fraction of which are known to date. Plant metabolomics explores the rationale for highly diverse metabolites evolved and synthesized by plants. Over two-thirds of modern medicines are somehow inspired and/or derived from plants, making the identification of phytochemicals a means of discovering new medicines to challenge existing and emerging diseases. This chapter introduces our established liquid chromatography-tandem mass spectrometry-based untargeted metabolomics approach centered around discovering specialized metabolites (so-called secondary metabolites) across broad lineages of nonmodel plant species. Detecting hundreds to thousands of metabolite peaks, including assigning chemical identity, makes metabolomics data generation and analysis a very complex process. Various mass spectrometry techniques are currently being developed to approach the comprehensive metabolome. Among them, untargeted metabolomics can provide new biological insights by simultaneously and unbiasedly measuring and analyzing all detected metabolites. We have provided a hands-on modular account for untargeted plant metabolomics, from preparing plant biological samples to data analysis and processing using ultra-performance liquid chromatography-quadrupole time-of-flight mass spectrometry. The methods described here offer a foundation and expert opinion on plant metabolome analysis.
植物是专业的化学家,能产生数百万种代谢物,而迄今为止人们只了解其中一小部分。植物代谢组学探索植物进化和合成的高度多样化代谢物的基本原理。超过三分之二的现代药物在某种程度上受到植物的启发和/或源自植物,这使得植物化学物质的鉴定成为发现新药物以应对现有和新出现疾病的一种手段。本章介绍了我们基于液相色谱 - 串联质谱的非靶向代谢组学方法,该方法主要围绕在非模式植物物种的广泛谱系中发现特殊代谢物(即所谓的次生代谢物)展开。检测数百到数千个代谢物峰,包括确定化学身份,使得代谢组学数据的生成和分析成为一个非常复杂的过程。目前正在开发各种质谱技术以接近全面的代谢组。其中,非靶向代谢组学可以通过同时、无偏地测量和分析所有检测到的代谢物提供新的生物学见解。我们提供了一个关于非靶向植物代谢组学的实用模块化说明,从制备植物生物样品到使用超高效液相色谱 - 四极杆飞行时间质谱进行数据分析和处理。这里描述的方法为植物代谢组分析提供了基础和专业见解。