生物反应器固态发酵豆粕生产生物质降解复合酶的研究。

Q2 Biochemistry, Genetics and Molecular Biology
Enzyme Research Pub Date : 2012-01-01 Epub Date: 2012-12-29 DOI:10.1155/2012/248983
Gabriela L Vitcosque, Rafael F Fonseca, Ursula Fabiola Rodríguez-Zúñiga, Victor Bertucci Neto, Sonia Couri, Cristiane S Farinas
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引用次数: 42

摘要

生物质降解酶是影响生物质转化为生物燃料的生化途径的经济可行性的最昂贵的投入之一。本研究评估了操作条件对黑曲霉生产生物质降解多酶的影响。该菌采用豆粕固态发酵(SSF)培养,采用配备在线自动监测和控制系统的仪器化实验室规模生物反应器培养。采用统计设计方法评估了空气流速、入口空气相对湿度和初始底物含水量对多酶(FPase、内切葡聚糖酶和木聚糖酶)生产的影响。在初始底物含水量为84%、进口空气湿度为70%、流速为24 mL/min的条件下,FPase (0.55 IU/g)、内切葡聚糖酶(35.1 IU/g)和木聚糖酶(47.7 IU/g)的产量最高。然后使用酶复合物水解木质纤维素生物质,在50 g/L预处理甘蔗渣糖化36小时后释放4.4 g/L葡萄糖。这些结果证明了在SSF下产生的酶的潜在应用,从而有助于产生必要的技术进步,以提高生物质作为可再生能源的使用效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Production of Biomass-Degrading Multienzyme Complexes under Solid-State Fermentation of Soybean Meal Using a Bioreactor.

Production of Biomass-Degrading Multienzyme Complexes under Solid-State Fermentation of Soybean Meal Using a Bioreactor.

Production of Biomass-Degrading Multienzyme Complexes under Solid-State Fermentation of Soybean Meal Using a Bioreactor.

Production of Biomass-Degrading Multienzyme Complexes under Solid-State Fermentation of Soybean Meal Using a Bioreactor.

Biomass-degrading enzymes are one of the most costly inputs affecting the economic viability of the biochemical route for biomass conversion into biofuels. This work evaluates the effects of operational conditions on biomass-degrading multienzyme production by a selected strain of Aspergillus niger. The fungus was cultivated under solid-state fermentation (SSF) of soybean meal, using an instrumented lab-scale bioreactor equipped with an on-line automated monitoring and control system. The effects of air flow rate, inlet air relative humidity, and initial substrate moisture content on multienzyme (FPase, endoglucanase, and xylanase) production were evaluated using a statistical design methodology. Highest production of FPase (0.55 IU/g), endoglucanase (35.1 IU/g), and xylanase (47.7 IU/g) was achieved using an initial substrate moisture content of 84%, an inlet air humidity of 70%, and a flow rate of 24 mL/min. The enzymatic complex was then used to hydrolyze a lignocellulosic biomass, releasing 4.4 g/L of glucose after 36 hours of saccharification of 50 g/L pretreated sugar cane bagasse. These results demonstrate the potential application of enzymes produced under SSF, thus contributing to generate the necessary technological advances to increase the efficiency of the use of biomass as a renewable energy source.

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来源期刊
Enzyme Research
Enzyme Research Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
4.60
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