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Increase in Ethanol Yield via Elimination of Lactate Production in an Ethanol-Tolerant Mutant of Clostridium thermocellum

机译:通过消除耐热纤维素梭菌的耐乙醇突变体中乳酸产生来提高乙醇收率。

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摘要

Large-scale production of lignocellulosic biofuel is a potential solution to sustainably meet global energy needs. One-step consolidated bioprocessing (CBP) is a potentially advantageous approach for the production of biofuels, but requires an organism capable of hydrolyzing biomass to sugars and fermenting the sugars to ethanol at commercially viable titers and yields. Clostridium thermocellum, a thermophilic anaerobe, can ferment cellulosic biomass to ethanol and organic acids, but low yield, low titer, and ethanol sensitivity remain barriers to industrial production. Here, we deleted the hypoxanthine phosphoribosyltransferase gene in ethanol tolerant strain of C. thermocellum adhE*(EA) in order to allow use of previously developed gene deletion tools, then deleted lactate dehydrogenase (ldh) to redirect carbon flux towards ethanol. Upon deletion of ldh, the adhE*(EA) Δldh strain produced 30% more ethanol than wild type on minimal medium. The adhE*(EA) Δldh strain retained tolerance to 5% v/v ethanol, resulting in an ethanol tolerant platform strain of C. thermocellum for future metabolic engineering efforts.
机译:木质纤维素生物燃料的大规模生产是可持续满足全球能源需求的潜在解决方案。一步整合生物处理(CBP)是生产生物燃料的潜在有利途径,但需要一种能够以商业上可行的滴度和产率将生物质水解为糖并将糖发酵为乙醇的生物。嗜热梭菌(Clostridium thermocellum)是一种嗜热厌氧菌,可以将纤维素生物质发酵成乙醇和有机酸,但是低产率,低滴度和对乙醇的敏感性仍然是工业生产的障碍。在这里,我们删除了耐高温热纤梭菌adhE *(EA)的耐乙醇菌株中的次黄嘌呤磷酸核糖转移酶基因,以便允许使用以前开发的基因删除工具,然后删除了乳酸脱氢酶(ldh)以将碳通量重定向至乙醇。缺失ldh后,在基本培养基上,adhE *(EA)Δldh菌株比野生型产生的乙醇多30%。 adhE *(EA)Δldh菌株保留了对5%v / v乙醇的耐受性,产生了耐高温梭菌的耐乙醇平台菌株,可用于未来的代谢工程。

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