Ning Yan, T. Luan, M. Yin, Yaping Niu, Longhao Wu, Shuo Yang, Zailu Li, Hongxing Li, Jianzhi Zhao, X. Bao
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引用次数: 0
摘要
纤维素糖的有效转化对于从木质纤维素生物质水解物生产经济可行的生物燃料/生物化学品至关重要。在综合筛选的基础上,本研究选择酿酒酵母RC212作为异源β-葡萄糖苷酶和β-木糖苷酶基因多重整合的基础菌株。所得重组BLN26和LF1形成二元合成联合体,该共培养系统实现了四种糖(葡萄糖、木糖、纤维二糖和低聚木糖)的部分发酵。然后,我们开发了一个由LF1、BSGIBX和102SB组成的三元酿酒酵母联合体。几乎所有四种糖都在24小时内有效发酵成乙醇,基于消耗的糖,乙醇产量为0.482 g g−1。据我们所知,这项研究首次探索了通过重组酿酒酵母菌株的合成联盟转化葡萄糖、木糖、纤维二糖和低聚木糖的混合物。这种合成群落和随后改进的群落有潜力用作微生物平台,从木质纤维素水解物中生产广泛的生物化学品。
Co-Fermentation of Glucose–Xylose–Cellobiose–XOS Mixtures Using a Synthetic Consortium of Recombinant Saccharomyces cerevisiae Strains
The efficient conversion of cellulosic sugars is vital for the economically viable production of biofuels/biochemicals from lignocellulosic biomass hydrolysates. Based on comprehensive screening, Saccharomyces cerevisiae RC212 was chosen as the chassis strain for multiple integrations of heterologous β-glucosidase and β-xylosidase genes in the present study. The resulting recombinant BLN26 and LF1 form a binary synthetic consortium, and this co-culture system achieved partial fermentation of four sugars (glucose, xylose, cellobiose, and xylo-oligosaccharides). Then, we developed a ternary S. cerevisiae consortium consisting of LF1, BSGIBX, and 102SB. Almost all four sugars were efficiently fermented to ethanol within 24 h, and the ethanol yield is 0.482 g g−1 based on the consumed sugar. To our knowledge, this study represents the first exploration of the conversion of mixtures of glucose, xylose, cellobiose, and xylo-oligosaccharides by a synthetic consortium of recombinant S. cerevisiae strains. This synthetic consortium and subsequent improved ones have the potential to be used as microbial platforms to produce a wide array of biochemicals from lignocellulosic hydrolysates.
期刊介绍:
Fermentation-Basel is an international open access journal published by MDPI, focusing on fermentation-related research, including new and emerging products, processes and technologies, such as biopharmaceuticals and biotech drugs. The journal enjoys a good reputation in the academic community and provides a high-impact forum for researchers in the field of bioengineering and applied microbiology.