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Strain optimization for efficient isobutanol production using corynebacterium glutamicum under oxygen deprivation

机译:缺氧条件下使用谷氨酸棒杆菌高效生产异丁醇的菌株优化

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Microbial production of isobutanol is made difficult by the chemical's high cell toxicity. Corynebacterium glutamicum, inherently one of the more isobutanol-tolerant industrial microorganisms, exhibits unprecedented productivity under oxygen deprivation, potentially allowing for high productivity of such toxic chemicals as isobutanol. Here, we show that development of C. glutamicum strains proficient in isobutanol production depends not only on modulating the activity of 2-keto acid decarboxylase (KDC) and isobutanol dehydrogenase (IBDH) and suppressing by-product formation, but also on optimizing the production process to eschew product inhibition. Isobutanol production under oxygen deprivation reached 343mM (3.2% v/v) in strain IBU5 expressing kivd (encoding KDC) under the control of ldhA promoter and adhP (encoding IBDH from Escherichia coli MG1655) under the control of gapA promoter. This productivity is double the previously reported best productivity of 1.6% (v/v) and exceeds the 2.5% (v/v) limit beyond which cell growth becomes too severely suppressed. Irrespective, a cumulative 56.5% improvement on yield was possible with the combined effects of disruption of the ppc gene, encoding phosphoenolpyruvate carboxylase (PEPC), use of a NAD~+-specific mutant acetohydroxyacid isomeroreductase (AHAIR), and overexpression of select glycolytic genes. Using oleyl alcohol to continuously extract the isobutanol from reaction mixture and tripling the cell concentration in the reaction mixture to 60g dry cell/L stretched the yield to 78.1% and volumetric productivity to 981mM (9.1% v/v).
机译:化学品的高细胞毒性使异丁醇的微生物生产变得困难。固有的谷氨酸棒杆菌是更耐异丁醇的工业微生物之一,在缺氧条件下表现出空前的生产率,潜在地使诸如异丁醇之类的有毒化学品具有高生产率。在这里,我们表明精通异丁醇生产的谷氨酸棒杆菌菌株的开发不仅取决于调节2-酮酸脱羧酶(KDC)和异丁醇脱氢酶(IBDH)的活性并抑制副产物的形成,而且还取决于优化生产避免产品抑制的过程。在ldhA启动子的控制下表达kivd(编码KDC)的菌株IBU5和在gapA启动子的控制下表达adhP(编码来自大肠杆菌MG1655的IBDH)的IBU5菌株在缺氧条件下产生的异丁醇达到343mM(3.2%v / v)。该生产率是先前报道的最佳生产率1.6%(v / v)的两倍,并且超过了2.5%(v / v)的极限,超过该极限后,细胞的生长变得过于严重。无论如何,通过破坏ppc基因,编码磷酸烯醇丙酮酸羧化酶(PEPC),使用NAD〜+特异性突变型乙酰羟酸异构还原酶(AHAIR)和过分选择糖酵解基因的综合作用,产量可能累计提高56.5%。 。使用油醇从反应混合物中连续提取异丁醇,并将反应混合物中的细胞浓度增加三倍至60g干细胞/ L,可将收率提高至78.1%,体积生产率提高至981mM(9.1%v / v)。

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