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工程化木糖代谢及与葡萄糖共利用以构建高效微生物细胞工厂

Engineering Xylose Metabolism and Coutilization with Glucose in for Efficient Microbial Cell Factories.

作者信息

Ding Nana, Yan Jianan, Luo Qian, Chen Hui, Qin Yan, Ye Junhua, Tian Kangming, Shao Qingsong, Volkov Pavel V, Liang Ruixuan, Deng Yu, Yin Lianghong

机构信息

National Key Laboratory for Development and Utilization of Forest Food Resources, Zhejiang A&F University, Hangzhou 311300, China.

National Key Laboratory of Non-Food Biomass Energy Technology, Guangxi Academy of Sciences, 98 Daling Road, Nanning, Guangxi 530007, China.

出版信息

J Agric Food Chem. 2025 Aug 6;73(31):19587-19598. doi: 10.1021/acs.jafc.5c04620. Epub 2025 Jul 25.

Abstract

Xylose, an important sugar component of lignocellulosic biomass, is often inefficiently utilized due to limitations in its transport and metabolic pathways. This study aimed to enhance the xylose metabolism in through metabolic engineering and transcriptional regulation strategies. First, the xylose assimilation pathway was constructed by the heterologous expression of xylose isomerase (XylA) and xylulose kinase (XylB), which improved the strain's xylose metabolic capability. Transcriptomic analysis identified IolT2 as a potential xylose transporter. Furthermore, the introduction of the xylose-specific transporter XylE enhanced xylose transport and reduced the inhibitory effect of glucose on xylose metabolism. The strain WTABE_ALE6, selected through adaptive laboratory evolution, exhibited improved xylose utilization efficiency, supporting its ability to coutilize glucose and xylose in mixed-sugar fermentation. This study provides insights into optimizing the xylose utilization and glucose-xylose coutilization in , which may facilitate the conversion of lignocellulosic biomass and the production of biobased chemicals.

摘要

木糖是木质纤维素生物质的一种重要糖成分,由于其转运和代谢途径的限制,其利用效率往往较低。本研究旨在通过代谢工程和转录调控策略提高[具体对象未提及]中的木糖代谢。首先,通过木糖异构酶(XylA)和木酮糖激酶(XylB)的异源表达构建了木糖同化途径,这提高了菌株的木糖代谢能力。转录组分析确定IolT2为潜在的木糖转运体。此外,引入木糖特异性转运体XylE增强了木糖转运,并降低了葡萄糖对木糖代谢的抑制作用。通过适应性实验室进化筛选出的菌株WTABE_ALE6表现出提高的木糖利用效率,支持其在混合糖发酵中同时利用葡萄糖和木糖的能力。本研究为优化[具体对象未提及]中的木糖利用和葡萄糖-木糖共利用提供了见解,这可能有助于木质纤维素生物质的转化和生物基化学品的生产。

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