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通过操纵脂质成分在……中高产三萜类化合物。 (原句似乎不完整,“in”后面缺少具体内容)

High production of triterpenoids in through manipulation of lipid components.

作者信息

Zhang Jin-Lai, Bai Qiu-Yan, Peng Yang-Zi, Fan Jie, Jin Cong-Cong, Cao Ying-Xiu, Yuan Ying-Jin

机构信息

Frontier Science Center for Synthetic Biology and Key Laboratory of Systems Bioengineering (Ministry of Education), School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072 China.

Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), Tianjin University, Tianjin, 300072 China.

出版信息

Biotechnol Biofuels. 2020 Jul 29;13:133. doi: 10.1186/s13068-020-01773-1. eCollection 2020.

Abstract

BACKGROUND

Lupeol exhibits novel physiological and pharmacological activities, such as anticancer and immunity-enhancing activities. However, cytotoxicity remains a challenge for triterpenoid overproduction in microbial cell factories. As lipophilic and relatively small molecular compounds, triterpenes are generally secreted into the extracellular space. The effect of increasing triterpene efflux on the synthesis capacity remains unknown.

RESULTS

In this study, we developed a strategy to enhance triterpene efflux through manipulation of lipid components in by overexpressing the enzyme Δ9-fatty acid desaturase () and disturbing phosphatidic acid phosphatase () and diacylglycerol kinase (). By this strategy combined with two-phase fermentation, the highest lupeol production reported to date was achieved, where the titer in the organic phase reached 381.67 mg/L and the total production was 411.72 mg/L in shake flasks, exhibiting a 33.20-fold improvement over the initial strain. Lipid manipulation led to a twofold increase in the unsaturated fatty acid (UFA) content, up to 61-73%, and an exceptionally elongated cell morphology, which might have been caused by enhanced membrane phospholipid biosynthesis flux. Both phenotypes accelerated the export of toxic products to the extracellular space and ultimately stimulated the capacity for triterpenoid synthesis, which was proven by the 5.11-fold higher ratio of extra/intracellular lupeol concentrations, 2.79-fold higher biomass accumulation and 2.56-fold higher lupeol productivity per unit OD in the modified strains. This strategy was also highly efficient for the biosynthesis of other triterpenes and sesquiterpenes, including α-amyrin, β-amyrin, longifolene, longipinene and longicyclene.

CONCLUSIONS

In conclusion, we successfully created a high-yield lupeol-producing strain via lipid manipulation. We demonstrated that the enhancement of lupeol efflux and synthesis capacity was induced by the increased UFA content and elongated cell morphology. Our study provides a novel strategy to promote the biosynthesis of valuable but toxic products in microbial cell factories.

摘要

背景

羽扇豆醇具有新颖的生理和药理活性,如抗癌和增强免疫力的活性。然而,细胞毒性仍然是微生物细胞工厂中三萜类化合物过量生产面临的挑战。作为亲脂性且相对小分子的化合物,三萜类化合物通常分泌到细胞外空间。增加三萜类化合物外排对合成能力的影响尚不清楚。

结果

在本研究中,我们通过过表达Δ9-脂肪酸去饱和酶()并干扰磷脂酸磷酸酶()和二酰基甘油激酶()来操纵脂质成分,从而开发了一种增强三萜类化合物外排的策略。通过该策略结合两相发酵,实现了迄今为止报道的最高羽扇豆醇产量,摇瓶中有机相的滴度达到381.67 mg/L,总产率为411.72 mg/L,比初始菌株提高了33.20倍。脂质操纵导致不饱和脂肪酸(UFA)含量增加两倍,高达61-73%,细胞形态异常延长,这可能是由增强的膜磷脂生物合成通量引起的。这两种表型都加速了有毒产物向细胞外空间的输出,并最终刺激了三萜类化合物的合成能力,这在修饰菌株中通过细胞外/细胞内羽扇豆醇浓度比高5.11倍、生物量积累高2.79倍和单位OD的羽扇豆醇生产率高2.56倍得到证明。该策略对其他三萜类化合物和倍半萜类化合物的生物合成也非常有效,包括α-香树脂醇、β-香树脂醇、长叶烯、长叶蒎烯和长环烯。

结论

总之,我们通过脂质操纵成功创建了一株高产羽扇豆醇的菌株。我们证明了羽扇豆醇外排和合成能力的增强是由增加的UFA含量和延长的细胞形态诱导的。我们的研究提供了一种新策略,以促进微生物细胞工厂中珍贵但有毒产物的生物合成。

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