Co-Culture Systems for the Production of Secondary Metabolites: Current and Future Prospects

Zin Quat Tan, Hui Yin Leow, David Charles Weerasingam Lee, K. Karisnan, A. A. Song, C. Mai, W. Yap, S. Lim, K. Lai
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引用次数: 18

Abstract

Microorganisms are the great sources of Natural Products (NPs); these are imperative to their survival apart from conferring competitiveness amongst each other within their environmental niches. Primary and secondary metabolites are the two major classes of NPs that help in cell development, where antimicrobial activity is closely linked with secondary metabolites. To capitalize on the effects of secondary metabolites, co-culture methods have been often used to develop an artificial microbial community that promotes the action of these metabolites. Different analytical techniques will subsequently be employed based on the metabolite specificity and sensitivity to further enhance the metabolite induction. Liquid Chromatography-Mass Spectrometry (LC-MS) and Gas Chromatography (GC)-MS are commonly used for metabolite separation while Nuclear Magnetic Resonance (NMR) and Mass Spectrometry (MS) have been used as tools to elucidate the structure of compounds. This review intends to discuss current systems in use for co-culture in addition to its advantages, with discourse into the investigation of specific techniques in use for the detailed study of secondary metabolites. Further advancements and focus on co-culture technologies are required to fully realize the massive potential in synthetic biological systems.
次生代谢物生产的共培养系统:当前和未来展望
微生物是天然产物(NPs)的重要来源;除了赋予它们在环境利基中彼此之间的竞争力之外,这些对它们的生存是必不可少的。初级代谢物和次级代谢物是帮助细胞发育的两大类NPs,其中抗菌活性与次级代谢物密切相关。为了充分利用次生代谢物的作用,通常采用共培养方法来开发人工微生物群落,以促进这些代谢物的作用。随后将根据代谢物的特异性和敏感性采用不同的分析技术,进一步增强代谢物的诱导作用。液相色谱-质谱(LC-MS)和气相色谱(GC)-质谱(MS)是常用的代谢物分离方法,而核磁共振(NMR)和质谱(MS)已被用作阐明化合物结构的工具。本文旨在讨论目前用于共培养的系统及其优点,并讨论用于次级代谢物详细研究的特定技术的研究。为了充分发挥合成生物系统的巨大潜力,需要进一步发展和关注共培养技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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