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用于高效水解甘蔗渣的不同真菌平台组成的酶混合物的设计:优化与协同作用研究

Design of an enzyme cocktail consisting of different fungal platforms for efficient hydrolysis of sugarcane bagasse: Optimization and synergism studies.

作者信息

Méndez Arias Johanna, Modesto Luiz Felipe Amarante, Polikarpov Igor, Pereira Nei

机构信息

Laboratórios de Desenvolvimento de Bioprocessos, Departamento de Engenharia Bioquímica, Escola de Química, Universidade Federal do Rio de Janeiro, Rio de Janeiro, 21949-900, Brazil.

Instituto de Física de São Carlos, Departamento de Física e Ciência Interdisciplinar, Universidade de São Paulo, São Paulo, Brazil.

出版信息

Biotechnol Prog. 2016 Sep;32(5):1222-1229. doi: 10.1002/btpr.2306. Epub 2016 Jun 19.

Abstract

Lignocellulosic materials represent a very important and promising source of renewable biomass. In order to turn them into fermentable sugars, synergism among the different enzymes that carry out bioconversion of these materials is one of the main factors that should be considered. Experimental mixture design was performed to optimize the proportion of enzymes produced by native strains of Trichoderma harzianum IOC 3844, Penicillium funiculosum ATCC 11797, and Aspergillus niger ATCC 1004, resulting in a proportion of 15, 50, and 35%, respectively. This mixture was able to hydrolyze 25 g/L of pretreated sugarcane bagasse with 91% of yield after 48 h of enzymatic reaction. Synergism along the hydrolysis process, besides the influence of lignin, hemicellulose, and solids loading, were also studied. Response surface methodology (RSM) based on Central Composite Rotatable Design was used to optimize solids and protein loadings to increase glucose release and enzymatic hydrolysis yield. The optimum solid and protein loadings established with RSM were 196 g/L and 24 mg/g cellulose, respectively, and under these conditions (94.1 ± 8) g/L of glucose were obtained, corresponding to a hydrolysis yield of 64%. © 2016 American Institute of Chemical Engineers Biotechnol. Prog., 32:1222-1229, 2016.

摘要

木质纤维素材料是可再生生物质的一种非常重要且有前景的来源。为了将它们转化为可发酵糖,参与这些材料生物转化的不同酶之间的协同作用是应考虑的主要因素之一。进行了实验混合物设计,以优化哈茨木霉IOC 3844、绳状青霉ATCC 11797和黑曲霉ATCC 1004的天然菌株所产生的酶的比例,结果分别为15%、50%和35%。这种混合物在酶促反应48小时后能够水解25 g/L预处理甘蔗渣,产率达91%。还研究了水解过程中的协同作用,以及木质素、半纤维素和固体负载量的影响。基于中心复合旋转设计的响应面法(RSM)用于优化固体和蛋白质负载量,以提高葡萄糖释放量和酶促水解产率。用RSM确定的最佳固体和蛋白质负载量分别为196 g/L和24 mg/g纤维素,在这些条件下获得了(94.1±8)g/L葡萄糖,对应水解产率为64%。©2016美国化学工程师学会生物技术进展,32:1222 - 1229,2016。

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