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代谢组学方法在次生代谢合成生物学中的应用。

Metabolomics methods for the synthetic biology of secondary metabolism.

机构信息

Department of Microbial Physiology, Groningen Biomolecular Sciences and Biotechnology Institute, University of Groningen, Nijenborgh 7, 9747 AG Groningen, The Netherlands.

出版信息

FEBS Lett. 2012 Jul 16;586(15):2177-83. doi: 10.1016/j.febslet.2012.02.008. Epub 2012 Feb 15.

Abstract

Many microbial secondary metabolites are of high biotechnological value for medicine, agriculture, and the food industry. Bacterial genome mining has revealed numerous novel secondary metabolite biosynthetic gene clusters, which encode the potential to synthesize a large diversity of compounds that have never been observed before. The stimulation or "awakening" of this cryptic microbial secondary metabolism has naturally attracted the attention of synthetic microbiologists, who exploit recent advances in DNA sequencing and synthesis to achieve unprecedented control over metabolic pathways. One of the indispensable tools in the synthetic biology toolbox is metabolomics, the global quantification of small biomolecules. This review illustrates the pivotal role of metabolomics for the synthetic microbiology of secondary metabolism, including its crucial role in novel compound discovery in microbes, the examination of side products of engineered metabolic pathways, as well as the identification of major bottlenecks for the overproduction of compounds of interest, especially in combination with metabolic modeling. We conclude by highlighting remaining challenges and recent technological advances that will drive metabolomics towards fulfilling its potential as a cornerstone technology of synthetic microbiology.

摘要

许多微生物次生代谢产物具有很高的生物技术价值,可应用于医学、农业和食品工业。细菌基因组挖掘揭示了众多新型次生代谢生物合成基因簇,这些基因簇编码了合成大量以前从未观察到的化合物的潜力。这种隐匿微生物次生代谢的刺激或“唤醒”自然引起了合成微生物学家的关注,他们利用 DNA 测序和合成的最新进展,实现了对代谢途径的前所未有的控制。合成生物学工具包中不可或缺的工具之一是代谢组学,即对小分子生物物质的全面定量分析。本文综述了代谢组学在次生代谢的合成微生物学中的关键作用,包括其在微生物中新化合物发现中的关键作用、工程代谢途径副产物的检测,以及确定目标化合物过度生产的主要瓶颈,特别是与代谢建模相结合时。最后,我们强调了仍然存在的挑战和最近的技术进步,这些进步将推动代谢组学实现其作为合成微生物学基石技术的潜力。

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