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工程改造关键酶和途径以改善酵母中三萜生物合成

Engineering Critical Enzymes and Pathways for Improved Triterpenoid Biosynthesis in Yeast.

作者信息

Guo Hao, Wang Huiyan, Huo Yi-Xin

机构信息

Key Laboratory of Molecular Medicine and Biotherapy, School of Life Science, Beijing Institute of Technology, Beijing, 100081, P. R. China.

SIP-UCLA Institute for Technology Advancement, Suzhou, 215123, P. R. China.

出版信息

ACS Synth Biol. 2020 Sep 18;9(9):2214-2227. doi: 10.1021/acssynbio.0c00124. Epub 2020 Aug 24.

Abstract

Triterpenoids represent a diverse group of phytochemicals that are widely distributed in the plant kingdom and have many biological activities. The heterologous production of triterpenoids in has been successfully implemented by introducing various triterpenoid biosynthetic pathways. By engineering related enzymes as well as through yeast metabolism, the yield of various triterpenoids is significantly improved from the milligram per liter scale to the gram per liter scale. This achievement demonstrates that engineering critical enzymes is considered a potential strategy to overcome the main hurdles of the industrial application of these potent natural products. Here, we review strategies for designing enzymes to improve the yield of triterpenoids in in terms of three main aspects: 1, elevating the supply of the precursor 2,3-oxidosqualene; 2, optimizing triterpenoid-involved reactions; and 3, lowering the competition of the native sterol pathway. Then, we provide challenges and prospects for further enhancing triterpenoid production in .

摘要

三萜类化合物是一类多样的植物化学物质,广泛分布于植物界并具有多种生物活性。通过引入各种三萜类生物合成途径,已成功实现了在[具体对象未给出]中异源生产三萜类化合物。通过对相关酶进行工程改造以及利用酵母代谢,各种三萜类化合物的产量从毫克每升级别显著提高到克每升级别。这一成果表明,对关键酶进行工程改造被认为是克服这些强效天然产物工业应用主要障碍的一种潜在策略。在此,我们从三个主要方面综述了设计酶以提高[具体对象未给出]中三萜类化合物产量的策略:1. 提高前体2,3-氧化角鲨烯的供应;2. 优化涉及三萜类化合物的反应;3. 降低天然甾醇途径的竞争。然后,我们阐述了在[具体对象未给出]中进一步提高三萜类化合物产量所面临的挑战和前景。

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