Department of Plant and Environmental Sciences, Weizmann Institute of Science, Rehovot 76100, Israel.
Department of Biochemistry and Systems Biology, Institute of Systems, Molecular and Integrative Biology, University of Liverpool, Liverpool L69 7BE, UK.
Proc Natl Acad Sci U S A. 2023 Mar 21;120(12):e2217383120. doi: 10.1073/pnas.2217383120. Epub 2023 Mar 17.
This year marks the 25th anniversary of the coinage of the term metabolome [S. G. Oliver ., , 373-378 (1998)]. As the field rapidly advances, it is important to take stock of the progress which has been made to best inform the disciplines future. While a medical-centric perspective on metabolomics has recently been published [M. Giera ., , 21-34 (2022)], this largely ignores the pioneering contributions made by the plant and microbial science communities. In this perspective, we provide a contemporary overview of all fields in which metabolomics is employed with particular emphasis on both methodological and application breakthroughs made in plant and microbial sciences that have shaped this evolving research discipline from the very early days of its establishment. This will not cover all types of metabolomics assays currently employed but will focus mainly on those utilizing mass spectrometry-based measurements since they are currently by far the most prominent. Having established the historical context of metabolomics, we will address the key challenges currently facing metabolomics and offer potential approaches by which these can be faced. Most salient among these is the fact that the vast majority of mass features are as yet not annotated with high confidence; what we may refer to as definitive identification. We discuss the potential of both standard compound libraries and artificial intelligence technologies to address this challenge and the use of natural variance-based approaches such as genome-wide association studies in attempt to assign specific functions to the myriad of structurally similar and complex specialized metabolites. We conclude by stating our contention that as these challenges are epic and that they will need far greater cooperative efforts from biologists, chemists, and computer scientists with an interest in all kingdoms of life than have been made to date. Ultimately, a better linkage of metabolome and genome data will likely also be needed particularly considering the Earth BioGenome Project.
今年是术语代谢组学诞生 25 周年[ S.G.Oliver 等,373-378(1998)]。随着该领域的快速发展,有必要对已经取得的进展进行评估,以便为该学科的未来提供最佳信息。虽然最近发表了一篇以医学为中心的代谢组学观点[ M.Giera 等,21-34(2022)],但这在很大程度上忽略了植物和微生物科学界的开创性贡献。在本观点中,我们提供了代谢组学在所有领域的当代概述,特别强调了植物和微生物科学在方法和应用方面的突破,这些突破从该研究领域建立的早期就塑造了这个不断发展的研究领域。这不会涵盖目前使用的所有类型的代谢组学分析,但主要集中在基于质谱测量的分析上,因为它们目前是最突出的。在确定了代谢组学的历史背景之后,我们将解决代谢组学目前面临的关键挑战,并提出潜在的方法来应对这些挑战。其中最突出的是,绝大多数的质量特征尚未被高度置信地注释;我们可能称之为明确鉴定。我们讨论了标准化合物库和人工智能技术的潜力,以解决这一挑战,以及利用基于自然变异的方法,如全基因组关联研究,试图将无数结构相似和复杂的特殊代谢物赋予特定的功能。最后,我们断言,由于这些挑战是巨大的,它们需要来自对所有生命领域都感兴趣的生物学家、化学家、计算机科学家的合作努力,比迄今为止所做的要多得多。最终,代谢组学和基因组数据的更好链接可能也是必要的,特别是考虑到地球生物基因组计划。