Promoter engineering enables precise metabolic regulation towards efficient β-elemene production in Ogataea polymorpha

IF 4.4 2区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Synthetic and Systems Biotechnology Pub Date : 2024-02-11 DOI:10.1016/j.synbio.2024.02.001
Min Ye , Jiaoqi Gao , Jingjing Li , Wei Yu , Fan Bai , Yongjin J. Zhou
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Abstract

Precisely controlling gene expression is beneficial for optimizing biosynthetic pathways for improving the production. However, promoters in nonconventional yeasts such as Ogataea polymorpha are always limited, which results in incompatible gene modulation. Here, we expanded the promoter library in O. polymorpha based on transcriptional data, among which 13 constitutive promoters had the strengths ranging from 0–55% of PGAP, the commonly used strong constitutive promoter, and 2 were growth phase-dependent promoters. Subsequently, 2 hybrid growth phase-dependent promoters were constructed and characterized, which had 2-fold higher activities. Finally, promoter engineering was applied to precisely regulate cellular metabolism for efficient production of β-elemene. The glyceraldehyde-3-phosphate dehydrogenase gene GAP was downregulated to drive more flux into pentose phosphate pathway (PPP) and then to enhance the supply of acetyl-CoA by using phosphoketolase-phosphotransacetylase (PK-PTA) pathway. Coupled with the phase-dependent expression of synthase module (ERG20LsLTC2 fusion), the highest titer of 5.24 g/L with a yield of 0.037 g/(g glucose) was achieved in strain YY150U under fed-batch fermentation in shake flasks. This work characterized and engineered a series of promoters, that can be used to fine-tune genes for constructing efficient yeast cell factories.

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启动子工程可实现精确的代谢调控,从而在 Ogataea polymorpha 中高效生产β-榄香烯
精确控制基因表达有利于优化生物合成途径,提高产量。然而,非传统酵母(如 Ogataea polymorpha)中的启动子总是有限的,这导致了不兼容的基因调控。在此,我们根据转录数据扩充了 O. polymorpha 的启动子库,其中 13 个组成型启动子的强度为常用的强组成型启动子 PGAP 的 0-55%,2 个为生长阶段依赖型启动子。随后,又构建并鉴定了 2 个杂交生长期依赖性启动子,其活性提高了 2 倍。最后,启动子工程被用于精确调节细胞代谢,以高效生产β-榄香烯。通过下调甘油醛-3-磷酸脱氢酶基因 GAP,使更多的通量进入磷酸戊糖途径(PPP),然后利用磷酸酮醇酶-磷酸反式乙酰化酶(PK-PTA)途径增加乙酰-CoA 的供应。再加上合成酶模块(ERG20∼LsLTC2融合)的阶段依赖性表达,在摇瓶喂料批量发酵条件下,菌株YY150U的最高滴度达到5.24克/升,产量为0.037克/(克葡萄糖)。这项研究表征并设计了一系列启动子,可用于微调基因,构建高效的酵母细胞工厂。
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来源期刊
Synthetic and Systems Biotechnology
Synthetic and Systems Biotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-
CiteScore
6.90
自引率
12.50%
发文量
90
审稿时长
67 days
期刊介绍: Synthetic and Systems Biotechnology aims to promote the communication of original research in synthetic and systems biology, with strong emphasis on applications towards biotechnology. This journal is a quarterly peer-reviewed journal led by Editor-in-Chief Lixin Zhang. The journal publishes high-quality research; focusing on integrative approaches to enable the understanding and design of biological systems, and research to develop the application of systems and synthetic biology to natural systems. This journal will publish Articles, Short notes, Methods, Mini Reviews, Commentary and Conference reviews.
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