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发现并改造海洋盐单胞菌作为高效甲酸生物炼制的微生物平台。

Discovery and remodeling of Vibrio natriegens as a microbial platform for efficient formic acid biorefinery.

机构信息

CAS-Key Laboratory of Synthetic Biology, CAS Center for Excellence in Molecular Plant Sciences, Shanghai Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai, 200032, China.

Xianghu Laboratory, Hangzhou, 311231, China.

出版信息

Nat Commun. 2023 Nov 27;14(1):7758. doi: 10.1038/s41467-023-43631-2.

Abstract

Formic acid (FA) has emerged as a promising one-carbon feedstock for biorefinery. However, developing efficient microbial hosts for economically competitive FA utilization remains a grand challenge. Here, we discover that the bacterium Vibrio natriegens has exceptional FA tolerance and metabolic capacity natively. This bacterium is remodeled by rewiring the serine cycle and the TCA cycle, resulting in a non-native closed loop (S-TCA) which as a powerful metabolic sink, in combination with laboratory evolution, enables rapid emergence of synthetic strains with significantly improved FA-utilizing ability. Further introduction of a foreign indigoidine-forming pathway into the synthetic V. natriegens strain leads to the production of 29.0 g · L indigoidine and consumption of 165.3 g · L formate within 72 h, achieving a formate consumption rate of 2.3 g · L · h. This work provides an important microbial chassis as well as design rules to develop industrially viable microorganisms for FA biorefinery.

摘要

甲酸(FA)作为一种有前途的一碳原料,在生物炼制中得到了广泛的应用。然而,开发高效的微生物宿主来实现经济上有竞争力的 FA 利用仍然是一个巨大的挑战。在这里,我们发现细菌海栖盐单胞菌(Vibrio natriegens)具有出色的 FA 耐受性和天然的代谢能力。通过重新布线丝氨酸循环和 TCA 循环,对该细菌进行了改造,形成了一个非天然的闭环(S-TCA),作为一个强大的代谢汇,与实验室进化相结合,使具有显著提高 FA 利用能力的合成菌株能够迅速出现。进一步将一个外源靛蓝形成途径引入到合成的海栖盐单胞菌菌株中,导致在 72 小时内生产了 29.0 g·L 的靛蓝和消耗了 165.3 g·L 的甲酸盐,实现了 2.3 g·L·h 的甲酸盐消耗速率。这项工作为 FA 生物炼制提供了一个重要的微生物底盘和设计规则,以开发具有工业可行性的微生物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aaed/10682008/1d95ff87cf35/41467_2023_43631_Fig1_HTML.jpg

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