Li Hui-Hui, Wu Jie, Liu Jia-Qi, Wu Qi-Zhong, He Ru Li, Cheng Zhou-Hua, Lv Jun-Lu, Lin Wei-Qiang, Wu Jing, Liu Dong-Feng, Li Wen-Wei
Department of Life Sciences and Medicine, University of Science and Technology of China, Hefei 230027, China.
Suzhou Institute for Advanced Research, University of Science and Technology of China, Suzhou 215123, China.
ACS Synth Biol. 2023 Nov 17;12(11):3454-3462. doi: 10.1021/acssynbio.3c00498. Epub 2023 Oct 19.
Polyhydroxybutyrate (PHB) is an attractive biodegradable polymer that can be produced through the microbial fermentation of organic wastes or wastewater. However, its mass production has been restricted by the poor utilization of organic wastes due to the presence of inhibitory substances, slow microbial growth, and high energy input required for feedstock sterilization. Here, , a fast-growing bacterium with a broad substrate spectrum and high tolerance to salt and toxic substances, was genetically engineered to enable efficient PHB production from nonsterilized fermentation of organic wastes. The key genes encoding the PHB biosynthesis pathway of were identified through base editing and overexpressed. The metabolically engineered strain showed 166-fold higher PHB content (34.95 wt %) than the wide type when using glycerol as a substrate. Enhanced PHB production was also achieved when other sugars were used as feedstock. Importantly, it outperformed the engineered MG1655 in PHB productivity (0.053 g/L/h) and tolerance to toxic substances in crude glycerol, without obvious activity decline under nonsterilized fermentation conditions. Our work demonstrates the great potential of engineered for low-cost PHB bioproduction and lays a foundation for exploiting this strain as a next-generation model chassis microorganism in synthetic biology.
聚羟基丁酸酯(PHB)是一种具有吸引力的可生物降解聚合物,可通过有机废物或废水的微生物发酵来生产。然而,由于存在抑制性物质、微生物生长缓慢以及原料灭菌所需的高能量输入,有机废物的利用率低下限制了其大规模生产。在此,[一种具有广泛底物谱且对盐和有毒物质具有高耐受性的快速生长细菌]通过基因工程改造,能够从有机废物的非灭菌发酵中高效生产PHB。通过碱基编辑鉴定了编码[该细菌]PHB生物合成途径的关键基因并进行了过表达。当使用甘油作为底物时,代谢工程改造菌株的PHB含量(34.95 wt%)比野生型高166倍。当使用其他糖类作为原料时,也实现了PHB产量的提高。重要的是,它在PHB生产力(0.053 g/L/h)和对粗甘油中有毒物质的耐受性方面优于工程改造的大肠杆菌MG1655,在非灭菌发酵条件下没有明显的活性下降。我们的工作证明了工程改造的[该细菌]在低成本PHB生物生产方面的巨大潜力,并为将该菌株开发成为合成生物学中的下一代模型底盘微生物奠定了基础。