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Effect of Sorghum vulgare phosphoenolpyruvate carboxylase and Lactococcus lactis pyruvate carboxylase coexpression on succinate production in mutant strains of Escherichia coli

机译:高粱磷酸烯醇丙酮酸羧化酶和乳酸乳球菌丙酮酸丙酮酸羧化酶共表达对大肠杆菌突变菌株琥珀酸产生的影响。

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摘要

Sorghum vulgare phosphoenolpyruvate carboxylase (PEPC) and Lactococcus lactis pyruvate carboxylase (PYC) were overexpressed in Escherichia coli concurrently to improve the production of succinate, a valuable industrial specialty chemical. This coexpression system was also applied to E. coli mutant strains strategically designed by inactivating the competing pathways of succinate formation. The highest level of succinate production was observed in E. coli strains coexpressing both PEPC and PYC when compared with E. coli strains individually overexpressing either PEPC or PYC. Lactate production was also significantly reduced with PEPC and PYC coexpression. Lactate and acetate pathways were inactivated to eliminate the competing pathways of succinate formation. Results showed that inactivation of both the lactate and acetate pathways with the coexpression of PEPC and PYC was most effective in improving succinate production. Inactivating the lactate or acetate pathway alone only caused a majority of the carbon flux to shift to other metabolites rather than succinate. Coexpression of PEPC and PYC was also applied to an E. coli mutant strain deficient in lactate dehydrogenase and pyruvate:formate lyase that accumulated a substantial amount of the intermediate metabolite pyruvate during growth. Results showed that PEPC and PYC coexpression was effective in depleting pyruvate accumulation and increasing the production of metabolites.
机译:同时在大肠杆菌中过表达了高粱低聚磷酸烯醇丙酮酸羧化酶(PEPC)和乳酸乳球菌丙酮酸丙酮酸羧化酶(PYC),以提高琥珀酸的生产,琥珀酸是一种有价值的工业特殊化学品。该共表达系统还应用于通过灭活琥珀酸形成的竞争途径而策略性设计的大肠杆菌突变株。与单独过表达PEPC或PYC的大肠杆菌菌株相比,在同时表达PEPC和PYC的大肠杆菌菌株中观察到了最高水平的琥珀酸生产。 PEPC和PYC共表达也显着降低了乳酸的产生。乳酸和乙酸途径被灭活以消除琥珀酸盐形成的竞争途径。结果表明,乳酸和乙酸途径的失活与PEPC和PYC的共表达对提高琥珀酸盐的产生最有效。仅使乳酸或乙酸途径失活仅导致大部分碳通量转移至其他代谢产物而不是琥珀酸盐。 PEPC和PYC的共表达也应用于缺乏乳酸脱氢酶和丙酮酸:甲酸酯裂解酶的大肠杆菌突变菌株,该菌株在生长过程中积累了大量的中间代谢产物丙酮酸。结果表明,PEPC和PYC共表达可有效减少丙酮酸的积累并增加代谢产物的产生。

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