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在克勒勃屈利阴性酿酒酵母中基于转录组的非乙醇化学品高效生物合成。

A highly efficient transcriptome-based biosynthesis of non-ethanol chemicals in Crabtree negative Saccharomyces cerevisiae.

作者信息

Yao Zhen, Guo Yufeng, Wang Huan, Chen Yun, Wang Qinhong, Nielsen Jens, Dai Zongjie

机构信息

Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin, 300308, China.

National Center of Technology Innovation for Synthetic Biology, Tianjin, 300308, China.

出版信息

Biotechnol Biofuels Bioprod. 2023 Mar 4;16(1):37. doi: 10.1186/s13068-023-02276-5.

Abstract

BACKGROUND

Owing to the Crabtree effect, Saccharomyces cerevisiae produces a large amount of ethanol in the presence of oxygen and excess glucose, leading to a loss of carbon for the biosynthesis of non-ethanol chemicals. In the present study, the potential of a newly constructed Crabtree negative S. cerevisiae, as a chassis cell, was explored for the biosynthesis of various non-ethanol compounds.

RESULTS

To understand the metabolic characteristics of Crabtree negative S. cerevisiae sZJD-28, its transcriptional profile was compared with that of Crabtree positive S. cerevisiae CEN.PK113-11C. The reporter GO term analysis showed that, in sZJD-28, genes associated with translational processes were down-regulated, while those related to carbon metabolism were significantly up-regulated. To verify a potential increase in carbon metabolism for the Crabtree negative strain, the production of non-ethanol chemicals, derived from different metabolic nodes, was then undertaken for both sZJD-28 and CEN.PK113-11C. At the pyruvate node, production of 2,3-butanediol and lactate in sZJD-28-based strains was remarkably higher than that of CEN.PK113-11C-based ones, representing 16.8- and 1.65-fold increase in titer, as well as 4.5-fold and 0.65-fold increase in specific titer (mg/L/OD), respectively. Similarly, for shikimate derived p-coumaric acid, the titer of sZJD-28-based strain was 0.68-fold higher than for CEN.PK113-11C-based one, with a 0.98-fold increase in specific titer. While farnesene and lycopene, two acetoacetyl-CoA derivatives, showed 0.21- and 1.88-fold increases in titer, respectively. From malonyl-CoA, the titer of 3-hydroxypropionate and fatty acids in sZJD-28-based strains were 0.19- and 0.76-fold higher than that of CEN.PK113-11C-based ones, respectively. In fact, yields of products also improved by the same fold due to the absence of residual glucose. Fed-batch fermentation further showed that the titer of free fatty acids in sZJD-28-based strain 28-FFA-E reached 6295.6 mg/L with a highest reported specific titer of 247.7 mg/L/OD in S. cerevisiae.

CONCLUSIONS

Compared with CEN.PK113-11C, the Crabtree negative sZJD-28 strain displayed a significantly different transcriptional profile and obvious advantages in the biosynthesis of non-ethanol chemicals due to redirected carbon and energy sources towards metabolite biosynthesis. The findings, therefore, suggest that a Crabtree negative S. cerevisiae strain could be a promising chassis cell for the biosynthesis of various chemicals.

摘要

背景

由于克勒勃屈利效应,酿酒酵母在有氧和葡萄糖过量存在的情况下会产生大量乙醇,导致用于非乙醇化学品生物合成的碳损失。在本研究中,探索了一种新构建的克勒勃屈利阴性酿酒酵母作为底盘细胞用于各种非乙醇化合物生物合成的潜力。

结果

为了解克勒勃屈利阴性酿酒酵母sZJD - 28的代谢特征,将其转录谱与克勒勃屈利阳性酿酒酵母CEN.PK113 - 11C的转录谱进行了比较。报告基因GO术语分析表明,在sZJD - 28中,与翻译过程相关的基因下调,而与碳代谢相关的基因显著上调。为验证克勒勃屈利阴性菌株碳代谢的潜在增加,随后对sZJD - 28和CEN.PK113 - 11C进行了源自不同代谢节点的非乙醇化学品生产。在丙酮酸节点,基于sZJD - 28的菌株中2,3 - 丁二醇和乳酸的产量显著高于基于CEN.PK113 - 11C的菌株,滴度分别提高了16.8倍和1.65倍,比滴度(mg/L/OD)分别提高了4.5倍和0.65倍。同样,对于源自莽草酸的对香豆酸,基于sZJD - 28的菌株的滴度比基于CEN.PK113 - 11C的菌株高0.68倍,比滴度提高了0.98倍。而两种乙酰乙酰辅酶A衍生物法尼烯和番茄红素的滴度分别提高了0.21倍和1.88倍。从丙二酰辅酶A来看,基于sZJD - 28的菌株中3 - 羟基丙酸和脂肪酸的滴度分别比基于CEN.PK113 - 11C的菌株高0.19倍和0.76倍。事实上,由于没有残留葡萄糖,产物产量也提高了相同倍数。补料分批发酵进一步表明,基于sZJD - 28的菌株28 - FFA - E中游离脂肪酸的滴度达到6295.6 mg/L,在酿酒酵母中报道的最高比滴度为247.7 mg/L/OD。

结论

与CEN.PK113 - 11C相比,克勒勃屈利阴性sZJD - 28菌株表现出显著不同的转录谱,并且由于碳和能源重新导向代谢物生物合成,在非乙醇化学品生物合成中具有明显优势。因此,这些发现表明克勒勃屈利阴性酿酒酵母菌株可能是用于各种化学品生物合成的有前景的底盘细胞。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8f6d/9985264/fae313289031/13068_2023_2276_Fig1a_HTML.jpg

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