Systems metabolic engineering of Escherichia coli for hyper-production of 5‑aminolevulinic acid.

Wei Pu, Jiuzhou Chen, Yingyu Zhou, Huamin Qiu, Tuo Shi, Wenjuan Zhou, Xuan Guo, Ningyun Cai, Zijian Tan, Jiao Liu, Jinhui Feng, Yu Wang, Ping Zheng, Jibin Sun
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Abstract

Background: 5-Aminolevulinic acid (5-ALA) is a promising biostimulant, feed nutrient, and photodynamic drug with wide applications in modern agriculture and therapy. Although microbial production of 5-ALA has been improved realized by using metabolic engineering strategies during the past few years, there is still a gap between the present production level and the requirement of industrialization.

Results: In this study, pathway, protein, and cellular engineering strategies were systematically employed to construct an industrially competitive 5-ALA producing Escherichia coli. Pathways involved in precursor supply and product degradation were regulated by gene overexpression and synthetic sRNA-based repression to channel metabolic flux to 5-ALA biosynthesis. 5-ALA synthase was rationally engineered to release the inhibition of heme and improve the catalytic activity. 5-ALA transport and antioxidant defense systems were targeted to enhance cellular tolerance to intra- and extra-cellular 5-ALA. The final engineered strain produced 30.7 g/L of 5-ALA in bioreactors with a productivity of 1.02 g/L/h and a yield of 0.532 mol/mol glucose, represent a new record of 5-ALA bioproduction.

Conclusions: An industrially competitive 5-ALA producing E. coli strain was constructed with the metabolic engineering strategies at multiple layers (protein, pathway, and cellular engineering), and the strategies here can be useful for developing industrial-strength strains for biomanufacturing.

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大肠杆菌的系统代谢工程,用于超量生产 5-氨基乙酰丙酸。
背景:5-氨基乙酰丙酸(5-ALA)是一种前景广阔的生物刺激剂、饲料营养素和光动力药物,在现代农业和治疗领域有着广泛的应用。尽管在过去几年中,利用代谢工程策略提高了 5-ALA 的微生物生产水平,但目前的生产水平与工业化生产的要求仍有差距:本研究系统地采用了途径、蛋白质和细胞工程策略来构建具有工业竞争力的 5-ALA 生产大肠杆菌。通过基因过表达和基于合成 sRNA 的抑制来调节涉及前体供应和产物降解的途径,从而将代谢通量导向 5-ALA 生物合成。对 5-ALA 合成酶进行了合理设计,以解除血红素的抑制并提高其催化活性。针对 5-ALA 运输和抗氧化防御系统,提高了细胞对细胞内和细胞外 5-ALA 的耐受性。最终的工程菌株在生物反应器中产生了 30.7 克/升的 5-ALA,生产率为 1.02 克/升/小时,产率为 0.532 摩尔/摩尔葡萄糖,创下了 5-ALA 生物生产的新纪录:通过多层次(蛋白质、途径和细胞工程)的代谢工程策略,构建了具有工业竞争力的5-ALA生产大肠杆菌菌株。
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