首页> 外文期刊>Renewable energy >The optimized co-cultivation system of Penicillium oxalicum 16 and Trichoderma reesei RUT-C30 achieved a high yield of hydrolase applied in second-generation bioethanol production
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The optimized co-cultivation system of Penicillium oxalicum 16 and Trichoderma reesei RUT-C30 achieved a high yield of hydrolase applied in second-generation bioethanol production

机译:草酸青霉16和里氏木霉RUT-C30的优化共培养系统实现了高水解酶产量,可用于第二代生物乙醇生产

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A low-level secretion of hydrolase and low conversion efficiency represent two major challenges in production of second-generation bioethanol. In the study, the co-cultivation system of Penicillium oxalicum 16 and Trichoderma reesei RUT-C30 optimized by response surface methodology under solid state fermentation produced 38.0 IU/gds, 352.9 IU/gds, 713.2 IU/gds, 15.7 IU/gds and 188.6 IU/gds for FPase, xylanase, amylase, cellobiohydrolase and beta-1, 4-glucosidase, respectively, which was corresponding to 4.2 fold, 2.9 fold, 2.03 fold, 1.08 fold and 1.96 fold higher than that without optimization. Moreover, unpretreated wheat bran which was hydrolyzed by the optimized co-cultivation system and fermented by Saccharomyces cerevisiae UV-20 was converted into 26.8 g/L ethanol corresponding to 98.41% of the conversion rate, and produced much more ethanol than milled rice straw. The study provided a feasible method which can enhance hydrolase yield and very efficiently produce second-generation bioethanol. (C) 2019 Elsevier Ltd. All rights reserved.
机译:水解酶的低水平分泌和低转化效率代表了第二代生物乙醇生产中的两个主要挑战。在研究中,通过响应面方法在固态发酵条件下优化的草酸青霉16和里氏木霉RUT-C30的共培养系统产生了38.0 IU / gds,352.9 IU / gds,713.2 IU / gds,15.7 IU / gds和188.6 FPase,木聚糖酶,淀粉酶,纤维二糖水解酶和β-1、4-葡萄糖苷酶的IU / gds分别比未优化的分别高4.2倍,2.9倍,2.03倍,1.08倍和1.96倍。此外,通过优化的共培养系统水解并由酿酒酵母UV-20发酵的未经预处理的麦麸被转化为26.8 g / L乙醇,相当于转化率的98.41%,并且比碾米稻草产生更多的乙醇。该研究提供了一种可行的方法,该方法可以提高水解酶的产率并非常有效地生产第二代生物乙醇。 (C)2019 Elsevier Ltd.保留所有权利。

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