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Phenotypic selection of a wild Saccharomyces cerevisiae strain for simultaneous saccharification and co-fermentation of AFEX? pretreated corn stover

机译:野生酿酒酵母菌株的表型选择,以同时糖化和共同发酵AFEX?预处理玉米秸秆

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Background Simultaneous saccharification and co-fermentation (SSCF) process involves enzymatic hydrolysis of pretreated lignocellulosic biomass and fermentation of glucose and xylose in one bioreactor. The optimal temperatures for enzymatic hydrolysis are higher than the standard fermentation temperature of ethanologenic Saccharomyces cerevisiae. Moreover, degradation products resulting from biomass pretreatment impair fermentation of sugars, especially xylose, and can synergize with high temperature stress. One approach to resolve both concerns is to utilize a strain background with innate tolerance to both elevated temperatures and degradation products. Results In this study, we screened a panel of 108 wild and domesticated Saccharomyces cerevisiae strains isolated from a wide range of environmental niches. One wild strain was selected based on its growth tolerance to simultaneous elevated temperature and AFEX? (Ammonia Fiber Expansion) degradation products. After engineering the strain with two copies of the Scheffersomyces stipitis xylose reductase, xylitol dehydrogenase and xylulokinase genes, we compared the ability of this engineered strain to the benchmark 424A(LNH-ST) strain in ethanol production and xylose fermentation in standard lab medium and AFEX pretreated corn stover (ACS) hydrolysates, as well as in SSCF of ACS at different temperatures. In SSCF of 9% (w/w) glucan loading ACS at 35°C, the engineered strain showed higher cell viabilities and produced a similar amount of ethanol (51.3 g/L) compared to the benchmark 424A(LNH-ST) strain. Conclusion These results validate our approach in the selection of wild Saccharomyces cerevisiae strains with thermo-tolerance and degradation products tolerance properties for lignocellulosic biofuel production. The wild and domesticated yeast strains phenotyped in this work are publically available for others to use as genetic backgrounds for fermentation of their pretreated biomass at elevated temperatures.
机译:背景技术同时糖化和共同发酵(SSCF)过程涉及在一个生物反应器中酶水解预处理的木质纤维素生物质以及葡萄糖和木糖的发酵。酶促水解的最佳温度高于产乙醇的酿酒酵母的标准发酵温度。此外,由生物质预处理产生的降解产物会损害糖,特别是木糖的发酵,并能与高温胁迫协同作用。解决这两个问题的一种方法是利用对高温和降解产物具有固有耐受性的应变背景。结果在这项研究中,我们筛选了从广泛的环境生态位中分离出来的108株野生和驯化的酿酒酵母菌株。根据其对同时升高的温度和AFEX?的生长耐受性选择了一种野生菌株。 (氨纤维膨胀)降解产物。用两份Scheffersomyces stipitis stipitis木糖还原酶,木糖醇脱氢酶和木酮糖激酶基因进行工程改造后,我们将该工程菌株与基准424A(LNH-ST)菌株在标准实验室培养基和AFEX中进行乙醇生产和木糖发酵的能力进行了比较预处理的玉米秸秆(ACS)水解产物,以及在不同温度下在ACS的SSCF中水解。在35°C的9%(w / w)葡聚糖负载ACS的SSCF中,与基准424A(LNH-ST)菌株相比,工程菌株显示出更高的细胞活力并产生了相似量的乙醇(51.3 g / L)。结论这些结果验证了我们选择具有耐热性和降解产物耐受性的酿酒酵母菌株以生产木质纤维素生物燃料的方法。在这项工作中被表型化的野生和驯化酵母菌株可公开获得,以供他人用作在高温下对其预处理的生物质进行发酵的遗传背景。

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