通过代谢途径优化和萜烯合成酶工程提高桑黄孢子马兜铃酮产量。

IF 3.9 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Yihan Li, Chuanzhi Kang, Jiahui Xu, Wenqing Zhou, Weishan Pan, Daofang Xia, Jian Liang, Lanping Guo, Xiao-Kui Ma
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引用次数: 0

摘要

(-)-马里斯托酮是一种具有抗糖尿病和血管松弛作用的倍半萜,目前由于化学合成效率低下和缺乏可行的提取方法,其可用性有限。本研究提出了一种以桑黄孢子菌(sanghuang porus sanghuang DM989)为菌壳高产马兜铃酮的新策略。基因组挖掘鉴定出9个倍半萜合成酶,其中TPS2152与(-)-马兜铃酮生物合成有功能关联。TPS2152含有一个罕见的DQxxD基序,与植物中典型的DDxxD基序不同,表明其在真菌中的独特催化特性。过表达法尼脂基焦磷酸合成酶(FPPS)增加了FPP前体供应,导致FPPS+菌株角鲨烯含量增加78.79% (1.18 mg/g),并使(-)-马斯托酮合成(0.42 mg/g)。为了增强FPP对(-)-马兜铃酮的通量,通过共过表达TPS2152和沉默角鲨烯合成酶(SQS)构建ΔSQS/TPS2152+菌株,与FPPS+相比,(-)-马兜铃酮(1.30 mg/g)含量增加210%,角鲨烯含量减少56.78%。此外,位点定向诱变将DQxxD转化为DDxxD,产生TPS2152D,其保留了底物结合亲和力(对接评分:- 9.1 kcal/mol),催化效率提高了2.57倍。整合TPS2152D和SQS沉默产生ΔSQS/TPS2152D+菌株,获得比FPPS+高217%的(-)马里斯托酮产量。发酵动力学显示从第5天开始产物积累,第8天Qp达到最大值,第9天完全抑制角鲨烯。这些结果证明了桑黄霉是一个强大的倍半萜生产微生物平台,并证明了将真菌途径工程和基于基序的酶优化相结合以大规模生物合成高价值萜的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Engineering Sanghuangporus sanghuang for enhanced (-)-aristolone production via metabolic pathway optimization and terpene synthase engineering.

(-)-Aristolone, a sesquiterpene with promising therapeutic properties such as antidiabetic and vasorelaxant effects, currently suffers from limited availability due to inefficient chemical synthesis and lack of viable extraction methods. This study presents a novel strategy for high-yield microbial (-)-aristolone production using Sanghuangporus sanghuang DM989 as a fungal chassis. Genome mining identified nine sesquiterpene synthases, among which TPS2152 was functionally linked to (-)-aristolone biosynthesis. TPS2152 harbors a rare DQxxD motif, diverging from the canonical DDxxD motif in plants, suggesting unique catalytic properties in fungi. Overexpression of farnesyl pyrophosphate synthase (FPPS) increased FPP precursor supply, resulting in a 78.79% rise in squalene content (1.18 mg/g) and enabling de novo (-)-aristolone synthesis (0.42 mg/g) in the FPPS+ strain. To enhance FPP flux toward (-)-aristolone, the ΔSQS/TPS2152+ strain was constructed by co-overexpressing TPS2152 and silencing squalene synthase (SQS), yielding a 210% increase in (-)-aristolone (1.30 mg/g) and 56.78% reduction in squalene compared to FPPS+. Further, site-directed mutagenesis converted DQxxD to DDxxD, producing TPS2152D, which retained substrate binding affinity (docking score: - 9.1 kcal/mol) and exhibited a 2.57-fold increase in catalytic efficiency. Integration of TPS2152D with SQS silencing produced the ΔSQS/TPS2152D+ strain, achieving a 217% higher (-)-aristolone yield than FPPS+. Fermentation kinetics showed product accumulation from day 5, with maximal Qp on days 8 and complete squalene suppression by day 9. These results establish S. sanghuang as a robust microbial platform for sesquiterpene production and demonstrate the feasibility of combining fungal pathway engineering and motif-based enzyme optimization for scalable biosynthesis of high-value terpenoids.

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来源期刊
Applied Microbiology and Biotechnology
Applied Microbiology and Biotechnology 工程技术-生物工程与应用微生物
CiteScore
10.00
自引率
4.00%
发文量
535
审稿时长
2 months
期刊介绍: Applied Microbiology and Biotechnology focusses on prokaryotic or eukaryotic cells, relevant enzymes and proteins; applied genetics and molecular biotechnology; genomics and proteomics; applied microbial and cell physiology; environmental biotechnology; process and products and more. The journal welcomes full-length papers and mini-reviews of new and emerging products, processes and technologies.
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