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首页> 外文期刊>Biotechnology for Biofuels >Strategies for improved isopropanol–butanol production by a Clostridium strain from glucose and hemicellulose through consolidated bioprocessing
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Strategies for improved isopropanol–butanol production by a Clostridium strain from glucose and hemicellulose through consolidated bioprocessing

机译:梭状芽孢杆菌菌株通过合并生物处理提高葡萄糖和半纤维素梭菌产异丙醇-丁醇的策略

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BackgroundHigh cost of traditional substrates and formation of by-products (such as acetone and ethanol) in acetone–butanol–ethanol (ABE) fermentation hindered the large-scale production of biobutanol. Here, we comprehensively characterized a newly isolated solventogenic and xylanolytic Clostridium species, which could produce butanol at a high ratio with elimination of ethanol and conversion of acetone to more value-added product, isopropanol. Ultimately, direct butanol production from hemicellulose was achieved with efficient expression of indigenous xylanase by the novel strain via consolidated bioprocessing. ResultsA novel wild-type Clostridium sp. strain NJP7 was isolated and characterized in this study, which was capable of fermenting monosaccharides, e.g., glucose into butanol via a fermentative acetone–isopropanol–butanol pathway. With enhancement of buffering capacity and alcohol dehydrogenase activities, butanol and isopropanol titer by Clostridium sp. strain NJP7 was improved to 12.21 and 1.92?g/L, respectively, and solvent productivity could be enhanced to 0.44?g/L/h. Furthermore, with in situ extraction with biodiesel, the amount of butanol and isopropanol was finally improved to 25.58 and 5.25?g/L in the fed-batch mode. Meanwhile, Clostridium sp. strain NJP7 shows capability of direct isopropanol–butanol production from hemicelluloses with expression of indigenous xylanase. 2.06?g/L of butanol and 0.54?g/L of isopropanol were finally achieved through the temperature-shift simultaneous saccharification and fermentation, representing the highest butanol production directly from hemicellulose. ConclusionThe co-production of isopropanol with butanol by the newly isolated Clostridium sp. strain NJP7 would add on the economical values for butanol fermentation. Furthermore, the high isopropanol-butanol production with in situ extraction would also greatly enhance the economic feasibility for fermentative production of butanol–isopropanol in large scale. Meanwhile, its direct production of butanol–isopropanol from polysaccharides, hemicellulose through secretion of indigenous thermostable xylanase, shows great potential using lignocellulosic wastes for biofuel production.
机译:背景技术传统底物的高成本以及丙酮-丁醇-乙醇(ABE)发酵过程中副产物(如丙酮和乙醇)的形成阻碍了生物丁醇的大规模生产。在这里,我们全面地表征了新分离的产溶剂的和木聚糖分解的梭菌属物种,该物种可以高比例生产丁醇,并且消除了乙醇,并将丙酮转化为高附加值的产品异丙醇。最终,通过新的菌株通过整合的生物加工有效表达本地木聚糖酶,从而实现了从半纤维素直接生产丁醇的功能。结果:一种新的野生型梭状芽孢杆菌。分离并鉴定了NJP7菌株,该菌株能够通过丙酮-异丙醇-丁醇发酵途径将葡萄糖等单糖发酵成丁醇。随着缓冲能力和醇脱氢酶活性的增强,梭状芽胞杆菌的丁醇和异丙醇滴定度增加。 NJP7菌株分别提高到12.21和1.92?g / L,溶剂生产率可以提高到0.44?g / L / h。此外,通过生物柴油原位萃取,在分批补料模式下,丁醇和异丙醇的量最终提高到25.58和5.25?g / L。同时,梭菌属。 NJP7菌株显示了从半纤维素直接生产异丙醇-丁醇的能力,并表达了天然木聚糖酶。通过同时进行糖化和发酵的温度变化,最终获得了2.06微克/升的丁醇和0.54微克/升的异丙醇,这代表了直接由半纤维素生产的最高丁醇。结论新分离的梭状芽胞杆菌属共生产异丙醇和丁醇。 NJP7菌株将增加丁醇发酵的经济价值。此外,通过原位萃取获得较高的异丙醇-丁醇产量,也将大大提高发酵生产丁醇-异丙醇的经济可行性。同时,它通过分泌天然的热稳定木聚糖酶直接从多糖半纤维素生产丁醇-异丙醇,显示出利用木质纤维素废物生产生物燃料的巨大潜力。

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