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首页> 外文期刊>Biotechnology Journal: Healthcare,Nutrition,Technology >Improving Fructose Utilization and Butanol Production by Clostridium acetobutylicum via Extracellular Redox Potential Regulation and Intracellular Metabolite Analysis
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Improving Fructose Utilization and Butanol Production by Clostridium acetobutylicum via Extracellular Redox Potential Regulation and Intracellular Metabolite Analysis

机译:通过细胞外氧化还原潜在调节和细胞内代谢物分析,通过酸辛酸纤维素改善果糖利用和丁醇生产

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> Jerusalem artichoke (JA) can grow well in marginal lands with high biomass yield, and thus is a potential energy crop for biorefinery. The major biomass of JA is from tubers, which contain inulin that can be easily hydrolyzed into a mixture of fructose and glucose, but fructose utilization for producing butanol as an advanced biofuel is poor compared to glucose‐based ABE fermentation by Clostridium acetobutylicum . In this article, the impact of extracellular redox potential (ORP) on the process is studied using a mixture of fructose and glucose to simulate the hydrolysate of JA tubers. When the extracellular ORP is controlled above ?460?mV, 13.2?g?L ?1 butanol is produced from 51.0?g?L ?1 total sugars (40.1?g?L ?1 fructose and 10.9?g?L ?1 glucose), leading to dramatically increased butanol yield and butanol/ABE ratio of 0.26?g?g ?1 and 0.67, respectively. Intracellular metabolite and q‐PCR analysis further indicate that intracellular ATP and NADH availabilities are significantly improved together with the fructose‐specific PTS expression at the lag phase, which consequently facilitate fructose transport, metabolic shift toward solventogenesis and carbon flux redistribution for butanol biosynthesis. Therefore, the extracellular ORP control can be an effective strategy to improve butanol production from fructose‐based feedstock.
机译: <第XML:ID =“BIOT201700198-SEC-0001”> > 耶路撒冷朝鲜蓟(JA)可以在较高的生物质产量的边缘地中生长,因此是生物术的潜在能源作物。 JA的主要生物质来自块茎,含有菊粉,可以容易地水解成果糖和葡萄糖的混合物,但与葡萄糖的ABE发酵相比,生产丁醇的果糖利用率差 乙酸梭菌乙酸酯 。在本文中,使用果糖和葡萄糖的混合物研究细胞外氧化还原电位(ORP)对该方法的影响,以模拟JA块茎的水解产物。当细胞外ORP控制在上方?460?MV,13.2?G?L. ?1 丁醇由51.0?g?l ?1 总糖(40.1?g?l ?1 果糖和10.9?g?l ?1 葡萄糖),导致丁醇产量和丁醇/ ABE比率大幅增加0.26Ω·克 ?1 分别为0.67。细胞内代谢物和Q-PCR分析进一步表明细胞内ATP和NADH可用性与滞后阶段的果糖特异性PTS表达一起显着改善,这促进了果糖转运,对丁醇生物合成的溶剂发生和碳通量再分配的代谢转变。因此,细胞外ORP对照可以是改善基于果糖的原料的丁醇产生的有效策略。

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