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Metabolic Engineering of Clostridium acetobutylicum ATCC 824 for Isopropanol-Butanol-Ethanol Fermentation

机译:丙酮丁醇梭菌ATCC 824的异丙醇-丁醇-乙醇发酵代谢工程

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Clostridium acetobutylicum naturally produces acetone as well as butanol and ethanol. Since acetone cannot be used as a biofuel, its production needs to be minimized or suppressed by cell or bioreactor engineering. Thus, there have been attempts to disrupt or inactivate the acetone formation pathway. Here we present another approach, namely, converting acetone to isopropanol by metabolic engineering. Since isopropanol can be used as a fuel additive, the mixture of isopropanol, butanol, and ethanol (IBE) produced by engineered C. acetobutylicum can be directly used as a biofuel. IBE production is achieved by the expression of a primary/secondary alcohol dehydrogenase gene from Clostridium beijerinckii NRRL B-593 (i.e., adh _(B-593)) in C. acetobutylicum ATCC 824. To increase the total alcohol titer, a synthetic acetone operon ( act operon; adc-ctfA-ctfB ) was constructed and expressed to increase the flux toward isopropanol formation. When this engineering strategy was applied to the PJC4BK strain lacking in the buk gene (encoding butyrate kinase), a significantly higher titer and yield of IBE could be achieved. The resulting PJC4BK(pIPA3-Cm2) strain produced 20.4 g/liter of total alcohol. Fermentation could be prolonged by in situ removal of solvents by gas stripping, and 35.6 g/liter of the IBE mixture could be produced in 45 h.
机译:丙酮丁醇梭菌自然产生丙酮以及丁醇和乙醇。由于丙酮不能用作生物燃料,因此需要通过细胞或生物反应器工程来最小化或抑制其生产。因此,已经尝试破坏或失活丙酮的形成途径。在这里,我们提出了另一种方法,即通过代谢工程将丙酮转化为异丙醇。由于异丙醇可以用作燃料添加剂,因此,由工程化丙酮丁醇梭菌生产的异丙醇,丁醇和乙醇(IBE)的混合物可以直接用作生物燃料。通过在丙酮丁醇梭菌ATCC 824中表达拜氏梭状芽胞杆菌NRRL B-593(即adh _(B-593))伯/仲醇脱氢酶基因来实现IBE的生产。为提高总醇滴度,可使用合成丙酮操纵子(act operon; adc-ctfA-ctfB)被构建并表达为增加通向异丙醇形成的通量。当将该工程策略应用于缺乏buk基因(编码丁酸激酶)的PJC4BK菌株时,可以实现更高的IBE效价和产量。所得的PJC4BK(pIPA3-Cm2)菌株产生20.4克/升的总醇。通过气体汽提原位去除溶剂可以延长发酵时间,并且在45小时内可以生产35.6克/升的IBE混合物。

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