Wang Qian, Gao Jiaoqi, Zhou Yongjin
Division of Biotechnology, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, Liaoning, China.
Dalian Key Laboratory of Energy Biotechnology, Dalian 116023, Liaoning, China.
Sheng Wu Gong Cheng Xue Bao. 2024 Aug 25;40(8):2710-2730. doi: 10.13345/j.cjb.240199.
Microbial production of chemicals from renewable biomass has emerged as a crucial route for sustainable bio-manufacturing. Lignocellulose with a renewable property and wide sources is supposed to be a promising feedstock for the second-generation biorefinery. The efficient co-utilization of mixed sugars from lignocellulosic hydrolysates represents one of the key challenges in reducing the production cost. However, most microorganisms prefer glucose over xylose due to carbon catabolite repression, which constrains the efficiency of lignocellulosic conversion. Therefore, developing the microbial platforms capable of simultaneously utilizing glucose and xylose is paramount for economically viable industrial-scale production. This article reviews the key strategies and studies of metabolic engineering for promoting efficient co-utilization of glucose and xylose by microorganisms. The representative strategies include relieving glucose repression, enhancing xylose transport, constructing xylose metabolic pathways, and directed evolution.
利用可再生生物质进行微生物化学品生产已成为可持续生物制造的关键途径。木质纤维素具有可再生性且来源广泛,有望成为第二代生物炼制的理想原料。木质纤维素水解产物中混合糖的高效共利用是降低生产成本的关键挑战之一。然而,由于碳代谢物阻遏,大多数微生物优先利用葡萄糖而非木糖,这限制了木质纤维素的转化效率。因此,开发能够同时利用葡萄糖和木糖的微生物平台对于经济可行的工业规模生产至关重要。本文综述了促进微生物高效共利用葡萄糖和木糖的代谢工程关键策略和研究。代表性策略包括解除葡萄糖阻遏、增强木糖转运、构建木糖代谢途径和定向进化。