对非常规酵母 Rhodotorula toruloides 进行工程改造以生产麦角硫因

IF 6.1 1区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Ke Liu, Gedan Xiang, Lekai Li, Tao Liu, Jie Ke, Liangbin Xiong, Dongzhi Wei, Fengqing Wang
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引用次数: 0

摘要

背景麦角硫因(EGT)是一种独特的含硫组氨酸衍生物,已被公认为一种高价值的抗氧化剂和细胞保护剂,在食品、医疗和化妆品等领域有着广泛的应用。目前,微生物发酵法具有绿色环保、发酵条件温和、生产成本低等优点,是一种很有前景的生产 EGT 的方法。然而,由于众多细胞工厂的生物合成过程效率较低,实现 EGT 的工业生物制备仍是一项挑战。非常规酵母 Rhodotorula toruloides 因其对动物的安全性和合成 EGT 的天然能力,被认为是 EGT 生产的潜在候选者。结果 本研究发现,在五株目标野生型 R. toruloides 菌株中,R. toruloides 2.1389(RT1389)的 EGT 产量最高,第 7 天在摇瓶水平可达到 79.0 mg/L。为了在菌株 RT1389 中实现迭代基因组编辑,建立了 CRISPR 辅助 Cre 重组(CACR)方法。在此基础上,通过将 EGT 生物合成核心基因 RtEGT1 和 RtEGT2 的额外拷贝整合到基因组中,构建了一株高产 EGT 的菌株 RT1389-2,其 EGT 滴度比 RT1389 提高了 1.5 倍。由于 S-腺苷蛋氨酸的供应被认为是决定 RT1389 菌株 EGT 产量的关键因素,随后,包括 S-腺苷蛋氨酸再平衡在内的一系列基因修饰被整合到 RT1389-2 菌株中,并根据其 EGT 产量滴度,利用基于麦角硫糖酶的高通量筛选方法对所产生的突变体进行了快速筛选。结论本研究鉴定了这些工程化菌株的麦角硫酸酯生产能力,并证明 CACR 和高通量筛选方法可快速工程化提高麦角硫酸酯产量的 R. toruloides 突变体。此外,本研究还提供了一种具有显著 EGT 生产性能的 RT1389-3 工程菌株,具有潜在的工业应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Engineering non-conventional yeast Rhodotorula toruloides for ergothioneine production

Background

Ergothioneine (EGT) is a distinctive sulfur-containing histidine derivative, which has been recognized as a high-value antioxidant and cytoprotectant, and has a wide range of applications in food, medical, and cosmetic fields. Currently, microbial fermentation is a promising method to produce EGT as its advantages of green environmental protection, mild fermentation condition, and low production cost. However, due to the low-efficiency biosynthetic process in numerous cell factories, it is still a challenge to realize the industrial biopreparation of EGT. The non-conventional yeast Rhodotorula toruloides is considered as a potential candidate for EGT production, thanks to its safety for animals and natural ability to synthesize EGT. Nevertheless, its synthesis efficiency of EGT deserves further improvement.

Results

In this study, out of five target wild-type R. toruloides strains, R. toruloides 2.1389 (RT1389) was found to accumulate the highest EGT production, which could reach 79.0 mg/L at the shake flask level on the 7th day. To achieve iterative genome editing in strain RT1389, CRISPR-assisted Cre recombination (CACR) method was established. Based on it, an EGT-overproducing strain RT1389-2 was constructed by integrating an additional copy of EGT biosynthetic core genes RtEGT1 and RtEGT2 into the genome, the EGT titer of which was 1.5-fold increase over RT1389. As the supply of S-adenosylmethionine was identified as a key factor determining EGT production in strain RT1389, subsequently, a series of gene modifications including S-adenosylmethionine rebalancing were integrated into the strain RT1389-2, and the resulting mutants were rapidly screened according to their EGT production titers with a high-throughput screening method based on ergothionase. As a result, an engineered strain named as RT1389-3 was selected with a production titer of 267.4 mg/L EGT after 168 h in a 50 mL modified fermentation medium.

Conclusions

This study characterized the EGT production capacity of these engineered strains, and demonstrated that CACR and high-throughput screening method allowed rapid engineering of R. toruloides mutants with improved EGT production. Furthermore, this study provided an engineered RT1389-3 strain with remarkable EGT production performance, which had potential industrial application prospects.

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来源期刊
Biotechnology for Biofuels
Biotechnology for Biofuels 工程技术-生物工程与应用微生物
自引率
0.00%
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0
审稿时长
2.7 months
期刊介绍: Biotechnology for Biofuels is an open access peer-reviewed journal featuring high-quality studies describing technological and operational advances in the production of biofuels, chemicals and other bioproducts. The journal emphasizes understanding and advancing the application of biotechnology and synergistic operations to improve plants and biological conversion systems for the biological production of these products from biomass, intermediates derived from biomass, or CO2, as well as upstream or downstream operations that are integral to biological conversion of biomass. Biotechnology for Biofuels focuses on the following areas: • Development of terrestrial plant feedstocks • Development of algal feedstocks • Biomass pretreatment, fractionation and extraction for biological conversion • Enzyme engineering, production and analysis • Bacterial genetics, physiology and metabolic engineering • Fungal/yeast genetics, physiology and metabolic engineering • Fermentation, biocatalytic conversion and reaction dynamics • Biological production of chemicals and bioproducts from biomass • Anaerobic digestion, biohydrogen and bioelectricity • Bioprocess integration, techno-economic analysis, modelling and policy • Life cycle assessment and environmental impact analysis
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