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通过 SecY 工程化大肠杆菌实现碳代谢通量的智能自我控制,以从木糖-葡萄糖混合物中生物合成木糖醇。

Intelligent self-control of carbon metabolic flux in SecY-engineered Escherichia coli for xylitol biosynthesis from xylose-glucose mixtures.

机构信息

College of Life Science and Technology, Beijing University of Chemical Technology, Beijing, People's Republic of China.

College of Chemical Engineering, Fujian Engineering Research Center of Advanced Manufacturing Technology for Fine Chemicals, Fuzhou University, Fuzhou, People's Republic of China.

出版信息

Biotechnol Bioeng. 2022 Feb;119(2):388-398. doi: 10.1002/bit.28002. Epub 2021 Dec 8.

DOI:10.1002/bit.28002
PMID:34837379
Abstract

Xylitol is a salutary sugar substitute that has been widely used in the food, pharmaceutical, and chemical industries. Co-fermentation of xylose and glucose by metabolically engineered cell factories is a promising alternative to chemical hydrogenation of xylose for commercial production of xylitol. Here, we engineered a mutant of SecY protein-translocation channel (SecY [ΔP]) in xylitol-producing Escherichia coli JM109 (DE3) as a passageway for xylose uptake. It was found that SecY (ΔP) channel could rapidly transport xylose without being interfered by XylB-catalyzed synthesis of xylitol-phosphate, which is impossible for native XylFGH and XylE transporters. More importantly, with the coaction of SecY (ΔP) channel and carbon catabolite repression (CCR), the flux of xylose to the pentose phosphate (PP) pathway and the xylitol synthesis pathway in E. coli could be automatically controlled in response to glucose, thereby ensuring that the mutant cells were able to fully utilize sugars with high xylitol yields. The E. coli cell factory developed in this study has been proven to be applicable to a broad range of xylose-glucose mixtures, which is conducive to simplifying the mixed-sugar fermentation process for efficient and economical production of xylitol.

摘要

木糖醇是一种有益健康的糖替代品,已广泛应用于食品、制药和化工行业。通过代谢工程细胞工厂对木糖和葡萄糖进行共发酵,是化学氢化木糖用于商业生产木糖醇的一种有前途的替代方法。在这里,我们在产木糖醇的大肠杆菌 JM109(DE3)中对 SecY 蛋白易位通道(SecY [ΔP])进行了突变,将其作为木糖摄取的通道。结果发现,SecY(ΔP)通道可以快速转运木糖,而不会受到 XylB 催化的木糖醇-5-磷酸合成的干扰,这对于天然的 XylFGH 和 XylE 转运体是不可能的。更重要的是,在 SecY(ΔP)通道和碳分解代谢物阻遏(CCR)的共同作用下,木糖进入戊糖磷酸(PP)途径和大肠杆菌中木糖醇合成途径的通量可以自动响应葡萄糖进行控制,从而确保突变细胞能够充分利用高木糖醇产量的糖。本研究开发的大肠杆菌细胞工厂已被证明适用于广泛的木糖-葡萄糖混合物,有利于简化混合糖发酵工艺,实现高效、经济地生产木糖醇。

相似文献

1
Intelligent self-control of carbon metabolic flux in SecY-engineered Escherichia coli for xylitol biosynthesis from xylose-glucose mixtures.通过 SecY 工程化大肠杆菌实现碳代谢通量的智能自我控制,以从木糖-葡萄糖混合物中生物合成木糖醇。
Biotechnol Bioeng. 2022 Feb;119(2):388-398. doi: 10.1002/bit.28002. Epub 2021 Dec 8.
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Reprogramming of sugar transport pathways in Escherichia coli using a permeabilized SecY protein-translocation channel.利用通透化的SecY蛋白转运通道对大肠杆菌中的糖转运途径进行重编程。
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Systematic approach to engineer Escherichia coli pathways for co-utilization of a glucose-xylose mixture.系统工程方法构建大肠杆菌共利用葡萄糖-木糖混合糖的途径。
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引用本文的文献

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XylR Overexpression in Escherichia coli Alleviated Transcriptional Repression by Arabinose and Enhanced Xylitol Bioproduction from Xylose Mother Liquor.在大肠杆菌中过表达 XylR 减轻了阿拉伯糖的转录抑制作用,并增强了从木糖母液中生产木糖醇。
Appl Biochem Biotechnol. 2024 Oct;196(10):6624-6637. doi: 10.1007/s12010-024-04890-x. Epub 2024 Feb 23.
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Construction of a xylose metabolic pathway in Trichosporonoides oedocephalis ATCC 16958 for the production of erythritol and xylitol.在产朊假丝酵母 ATCC 16958 中构建木糖代谢途径用于生产赤藓糖醇和木糖醇。
Biotechnol Lett. 2023 Dec;45(11-12):1529-1539. doi: 10.1007/s10529-023-03428-1. Epub 2023 Oct 13.