Sun Jiahui, Zhang Zhichao, Zhang Shanshan, Dan Yu, Sun Huili, Wu Yannan, Luan Guodong, Lu Xuefeng
Shandong Provincial Key Laboratory of Synthetic Biology, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, No. 189 Songling Road, Qingdao 266101, China.
Shandong Energy Institute, No. 189 Songling Road, Qingdao, Shandong 266101, China.
ACS Synth Biol. 2023 Oct 20;12(10):3008-3019. doi: 10.1021/acssynbio.3c00338. Epub 2023 Sep 20.
Fructose is an important monosaccharide product widely applied in the food, medicine, and chemical industries. Currently, fructose is mainly manufactured with plant biomass-sourced polysaccharides through multiple steps of digestion, conversion, separation, and purification. The development of cyanobacterial metabolic engineering provides an attractive alternative route for the one-step direct production of fructose utilizing carbon dioxide and solar energy. In this work, we developed a paradigm for engineering cyanobacterial chassis cells into efficient cell factories for the photosynthetic production of fructose. In a representative cyanobacterial strain, PCC 7942, knockout of fructokinase effectively activated the synthesis and secretion of fructose in hypersaline conditions, independent of any heterologous transporters. The native sucrose synthesis pathway was identified as playing a primary role in fructose synthesis. Through combinatory optimizations on the levels of metabolism, physiology, and cultivation, the fructose yield of the cell factories was stepwise improved to 3.9 g/L. Such a paradigm was also adopted to engineer another strain, the marine species sp. PCC 7002, and facilitated an even higher fructose yield of over 6 g/L. Finally, the fructose synthesized and secreted by the cyanobacterial photosynthetic cell factories was successfully extracted and prepared from the culture broth in the form of products with 86% purity through multistep separation-purification operations. This work demonstrated a paradigm for systematically engineering cyanobacteria for photosynthetic production of desired metabolites, and it also confirmed the feasibility and potential of cyanobacterial photosynthetic biomanufacturing as a simple and efficient route for fructose production.
果糖是一种重要的单糖产品,广泛应用于食品、医药和化工行业。目前,果糖主要通过对植物生物质来源的多糖进行多步消化、转化、分离和纯化来生产。蓝藻代谢工程的发展为利用二氧化碳和太阳能一步直接生产果糖提供了一条有吸引力的替代途径。在这项工作中,我们开发了一种模式,将蓝藻底盘细胞工程改造为用于光合生产果糖的高效细胞工厂。在代表性蓝藻菌株集胞藻PCC 7942中,敲除果糖激酶可在高盐条件下有效激活果糖的合成与分泌,且不依赖任何异源转运蛋白。已确定天然蔗糖合成途径在果糖合成中起主要作用。通过对代谢、生理和培养水平的组合优化,细胞工厂的果糖产量逐步提高到3.9 g/L。这种模式也被用于改造另一种菌株,海洋物种聚球藻PCC 7002,并实现了超过6 g/L的更高果糖产量。最后,通过多步分离纯化操作,成功从培养液中提取并制备出纯度为86%的蓝藻光合细胞工厂合成和分泌的果糖产品。这项工作展示了一种系统工程改造蓝藻以光合生产所需代谢物的模式,也证实了蓝藻光合生物制造作为一种简单高效的果糖生产途径的可行性和潜力。