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通过甲基赤藓糖醇磷酸途径与甲烷营养型细菌中通向1-脱氧-D-木酮糖5-磷酸的捷径协同作用提高甲烷生成倍半萜类化合物的产量。

Enhancing Sesquiterpenoid Production from Methane via Synergy of the Methylerythritol Phosphate Pathway and a Short-Cut Route to 1-Deoxy-D-xylulose 5-Phosphate in Methanotrophic Bacteria.

作者信息

Nguyen Anh Duc, Pham Diep Ngoc, Chau Tin Hoang Trung, Lee Eun Yeol

机构信息

Department of Chemical Engineering (Integrated Engineering), Kyung Hee University, Yongin-si 17104, Gyeonggi-do, Korea.

出版信息

Microorganisms. 2021 Jun 7;9(6):1236. doi: 10.3390/microorganisms9061236.

Abstract

Sesquiterpenoids are one of the most diverse classes of isoprenoids which exhibit numerous potentials in industrial biotechnology. The methanotrophs-based methane bioconversion is a promising approach for sustainable production of chemicals and fuels from methane. With intrinsic high carbon flux though the ribulose monophosphate cycle in 20Z, we demonstrated here that employing a short-cut route from ribulose 5-phosphate to 1-deoxy-d-xylulose 5-phosphate (DXP) could enable a more efficient isoprenoid production via the methylerythritol 4-phosphate (MEP) pathway, using α-humulene as a model compound. An additional 2.8-fold increase in α-humulene production yield was achieved by the fusion of the nDXP enzyme and DXP reductase. Additionally, we utilized these engineering strategies for the production of another sesquiterpenoid, α-bisabolene. The synergy of the nDXP and MEP pathways improved the α-bisabolene titer up to 12.24 ± 0.43 mg/gDCW, twofold greater than that of the initial strain. This study expanded the suite of sesquiterpenoids that can be produced from methane and demonstrated the synergistic uses of the nDXP and MEP pathways for improving sesquiterpenoid production in methanotrophic bacteria.

摘要

倍半萜类化合物是类异戊二烯中种类最多的一类,在工业生物技术中具有众多潜力。基于甲烷营养菌的甲烷生物转化是一种从甲烷可持续生产化学品和燃料的有前景的方法。鉴于20Z中通过磷酸核酮糖循环具有固有的高碳通量,我们在此证明,以α-葎草烯为模型化合物,采用从5-磷酸核酮糖到1-脱氧-D-木酮糖5-磷酸(DXP)的捷径途径,可通过甲基赤藓糖醇4-磷酸(MEP)途径实现更高效的类异戊二烯生产。通过融合nDXP酶和DXP还原酶,α-葎草烯的产量额外提高了2.8倍。此外,我们利用这些工程策略生产另一种倍半萜类化合物α-红没药烯。nDXP和MEP途径的协同作用将α-红没药烯的滴度提高到12.24±0.43 mg/gDCW,比初始菌株高出两倍。本研究扩展了可从甲烷生产的倍半萜类化合物的范围,并证明了nDXP和MEP途径在提高甲烷营养细菌中倍半萜类化合物产量方面的协同作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e4de/8227265/476d22002605/microorganisms-09-01236-g001.jpg

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