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Construction of an improved Aspergillus niger platform for enhanced glucoamylase secretion.构建改良黑曲霉平台以增强糖化酶分泌。
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Ionic Liquid Pretreatment of Lignocellulosic Biomass for Enhanced Enzymatic Delignification.离子液体预处理木质纤维素生物质以增强酶法脱木质素
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Response surface methodology optimization for sorption of malachite green dye on sugarcane bagasse biochar and evaluating the residual dye for phyto and cytogenotoxicity.响应面法优化甘蔗渣生物炭对孔雀石绿染料的吸附并评估残留染料的植物毒性和细胞遗传毒性
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High level expression and characterization of tannase tan7 using Aspergillus niger SH-2 with low-background endogenous secretory proteins as the host.以背景分泌蛋白含量低的黑曲霉SH-2为宿主,对单宁酶Tan7进行高水平表达及特性研究。
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利用离子液体预处理甘蔗渣混合发酵生产生物乙醇。

Mixed fermentation of to produce bioethanol with ionic-liquid-pretreated bagasse.

作者信息

Wu Zaiqiang

机构信息

Center for Molecular Metabolism, School of Environmental and Biological Engineering, Nanjing University of Science and Technology, Nanjing, 210094 China.

出版信息

3 Biotech. 2019 Feb;9(2):41. doi: 10.1007/s13205-019-1570-6. Epub 2019 Jan 11.

DOI:10.1007/s13205-019-1570-6
PMID:30675451
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6328811/
Abstract

In this study, bagasse was pretreated with ionic liquid (IL) 1-butyl-3-methylimidazolium chloride ([Bmim]Cl) and 1% NaOH solution for initial activation of bagasse. A mixed fermentation of treated bagasse by r and showed the optimal conditions with the addition of 12 h later at a 1:1 proportion to . To further improve the ethanol production and obtain optimal fermentation conditions, a Plackett-Burman design was applied to screen the significant formulation and process variables. The optimal ethanol fermentation conditions with IL pretreated bagasse were determined using response surface methodology by Box-Behnken design. Three variables "initial pH, (NH)SO, fermentation time" were regarded as significant factors in the optimization study. The resulting optimum fermentation conditions for bioethanol was identified as: initial pH of 5.89, (NH)SO concentration of 0.40 g/50 mL, and fermentation time of 3.60 days. The verification experimental ethanol concentration was 8.14 g/L, which agreed with the predicted value. An enhancement of approximately 153.58% compared with initial fermentation conditions in ethanol production was found using optimized conditions. It demonstrated that optimization methodology had a positive effect on the improvement of ethanol production. Under the optimal fermentation medium and conditions, the ethanol production with IL-pretreated bagasse and untreated bagasse was 8.14 g/L and 5.03 g/L, respectively, which exhibited 62% increase, compared to initial conditions with production of 3.21 g/L and 2.67 g/L, respectively, which displayed 20% increase. Both under optimal and original fermentation conditions, compared to the fermentation medium with untreated bagasse, all the results indicated that IL-pretreated bagasse resulted in higher ethanol production than untreated bagasse, demonstrating that IL-pretreated bagasse successfully increased the ethanol production in the mixed fermentation by and .

摘要

在本研究中,蔗渣先用离子液体(IL)1-丁基-3-甲基咪唑氯盐([Bmim]Cl)和1%的NaOH溶液进行预处理,以对蔗渣进行初步活化。经r和 处理的蔗渣进行混合发酵,结果表明,在12小时后以1:1的比例添加 时为最佳条件。为进一步提高乙醇产量并获得最佳发酵条件,采用Plackett-Burman设计筛选重要的配方和工艺变量。通过Box-Behnken设计,采用响应面法确定了IL预处理蔗渣的最佳乙醇发酵条件。在优化研究中,将“初始pH值、(NH)SO、发酵时间”三个变量视为显著因素。生物乙醇的最佳发酵条件确定为:初始pH值为5.89,(NH)SO浓度为0.40 g/50 mL,发酵时间为3.60天。验证实验的乙醇浓度为8.14 g/L,与预测值相符。与初始发酵条件相比,优化条件下乙醇产量提高了约153.58%。结果表明,优化方法对提高乙醇产量有积极作用。在最佳发酵培养基和条件下,IL预处理蔗渣和未处理蔗渣的乙醇产量分别为8.14 g/L和5.03 g/L,与初始条件下分别为3.21 g/L和2.67 g/L相比,产量分别提高了62%和20%。在最佳和原始发酵条件下,与未处理蔗渣的发酵培养基相比,所有结果均表明,IL预处理蔗渣的乙醇产量高于未处理蔗渣,这表明IL预处理蔗渣成功提高了r和 混合发酵中的乙醇产量。