Hu Guipeng, Guo Liang, Gao Cong, Song Wei, Liu Liming, Chen Xiulai
School of Pharmaceutical Sciences, Jiangnan University, Wuxi 214122, China.
State Key Laboratory of Food Science and Technology, Jiangnan University, Wuxi 214122, China.
ACS Synth Biol. 2022 Jan 21;11(1):135-143. doi: 10.1021/acssynbio.1c00289. Epub 2022 Jan 3.
Microbial cell factories using a single carbon source (e.g., sugars) have been used to produce a wide variety of chemicals. However, this process is often accompanied by stoichiometric constraints on carbons and redox cofactors. Here, a synthetic pathway was designed and constructed in to synergistically use glucose and formate as mixed carbon sources. By optimizing this synthetic pathway via enzyme mining, protein engineering, and bioprocess approaches, the yield of pyruvate from glucose was enhanced to 94% of the theoretical glycolysis yield, reaching 1.88 mol/mol. Finally, the optimized synthetic pathway was integrated with a phosphite reductase-based NADH regeneration system in malate-producing , resulting in the conversion of glucose into l-malate with a high yield of up to 1.65 mol/mol. This synergistic carbon metabolism strategy can be used to establish carbon- and energy-efficient productive processes.
利用单一碳源(如糖类)的微生物细胞工厂已被用于生产各种各样的化学品。然而,这个过程常常伴随着碳和氧化还原辅因子的化学计量限制。在此,设计并构建了一条合成途径,以协同利用葡萄糖和甲酸盐作为混合碳源。通过酶挖掘、蛋白质工程和生物工艺方法对该合成途径进行优化,葡萄糖生成丙酮酸的产量提高到理论糖酵解产量的94%,达到1.88 mol/mol。最后,将优化后的合成途径与基于亚磷酸还原酶的苹果酸生产中的NADH再生系统整合,实现了葡萄糖高效转化为L-苹果酸,产量高达1.65 mol/mol。这种协同碳代谢策略可用于建立碳和能源高效的生产过程。