首页> 外文期刊>Metabolic Engineering Communications >Engineering redox-balanced ethanol production in the cellulolytic and extremely thermophilic bacterium, Caldicellulosiruptor bescii
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Engineering redox-balanced ethanol production in the cellulolytic and extremely thermophilic bacterium, Caldicellulosiruptor bescii

机译:在纤维素分解和极端嗜热细菌Caldicellulosiruptor bescii中进行工程氧化还原平衡的乙醇生产

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Caldicellulosiruptor bescii is an extremely thermophilic cellulolytic bacterium with great potential for consolidated bioprocessing of renewable plant biomass. Since it does not natively produce ethanol, metabolic engineering is required to create strains with this capability. Previous efforts involved the heterologous expression of the gene encoding a bifunctional alcohol dehydrogenase, AdhE, which uses NADH as the electron donor to reduce acetyl-CoA to ethanol. Acetyl-CoA produced from sugar oxidation also generates reduced ferredoxin but there is no known pathway for the transfer of electrons from reduced ferredoxin to NAD in C. bescii . Herein, we engineered a strain of C. bescii using a more stable genetic background than previously reported and heterologously-expressed adhE from Clostridium thermocellum (which grows optimally (Topt) at 60?°C) with and without co-expression of the membrane-bound Rnf complex from Thermoanaerobacter sp. X514 (Topt 60?°C). Rnf is an energy-conserving, reduced ferredoxin NAD oxidoreductase encoded by six genes ( rnfCDGEAB ). It was produced in a catalytically active form in C. bescii that utilized the largest DNA construct to be expressed in this organism. The new genetic lineage containing AdhE resulted in increased ethanol production compared to previous reports. Ethanol production was further enhanced by the presence of Rnf, which also resulted in decreased production of pyruvate, acetoin and an uncharacterized compound as unwanted side-products. Using crystalline cellulose as the growth substrate for the Rnf-containing strain, 75?mM (3.5?g/L) ethanol was produced at 60?°C, which is 5-fold higher than that reported previously. This underlines the importance of redox balancing and paves the way for achieving even higher ethanol titers in C. bescii .
机译:Caldicellulosiruptor bescii是一种高度嗜热的纤维素分解细菌,在可再生植物生物质的合并生物处理中具有巨大潜力。由于它不是天然产生乙醇,因此需要进行代谢工程以产生具有这种能力的菌株。先前的工作涉及编码双功能醇脱氢酶AdhE的基因的异源表达,该酶使用NADH作为电子供体将乙酰基CoA还原为乙醇。由糖氧化产生的乙酰辅酶A也产生还原的铁氧还蛋白,但是尚无已知的途径将电子从还原的铁氧还蛋白转移至贝氏梭菌中的NAD。本文中,我们设计了一种比以前报道的和稳定的遗传背景的比色梭菌菌株,该菌株比以前报道的和在热纤梭菌中异源表达的adhE(在60?C最佳生长(T sub))与和没有共表达来自嗜热厌氧菌的膜结合的Rnf复合物。 X514(T opt 60°C)。 Rnf是一种节能的还原铁氧还蛋白NAD氧化还原酶,由六个基因(rnfCDGEAB)编码。它是在贝氏梭菌中以催化活性形式产生的,它利用了在该生物体中表达的最大的DNA构建体。与以前的报道相比,含有AdhE的新遗传谱系导致乙醇产量增加。 Rnf的存在进一步提高了乙醇的产量,这也导致丙酮酸,丙酮酸和作为非所需副产物的未表征化合物的产量下降。使用结晶纤维素作为含Rnf菌株的生长底物,在60°C时产生75?mM(3.5?g / L)乙醇,比以前报道的高5倍。这突显了氧化还原平衡的重要性,并为在弯孢梭菌中实现更高的乙醇滴度铺平了道路。

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