β-glucosidase supplementation during biomass hydrolysis: How low can we go?

被引:20
作者
Pryor, Scott W. [1 ]
Nahar, Nurun [1 ]
机构
[1] N Dakota State Univ, Dept Agr & Biosyst Engn, Fargo, ND 58108 USA
基金
美国食品与农业研究所;
关键词
beta-glucosidase; Cellobiase; Cellulase; Cellobiose; Cellulose; Biomass hydrolysis; DILUTE SULFURIC-ACID; ENZYMATIC-HYDROLYSIS; ETHANOL-PRODUCTION; CORN STOVER; PRETREATMENT TECHNOLOGIES; TECHNOECONOMIC ANALYSIS; AQUEOUS AMMONIA; CONVERSION; CELLULASE; SWITCHGRASS;
D O I
10.1016/j.biombioe.2015.06.005
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Corn stover was pretreated with dilute sulfuric acid to test the interaction effects of pH, cellulase loading and beta-glucosidase loadings on biomass hydrolysis rates. A response surface model was developed showing that beta-glucosidase supplementation had limited practical impact on hydrolysis between 0.5 and 2 CBU FPU-1. The only significant interaction in the model was between pH and beta-glucosidase loading but it also had little practical significance. Corn stover and corn cob were used to test the effects of further beta-glucosidase reduction. Significant hydrolysis improvements were seen when 0.2 CBU FPU-1 were added but very little improvement was seen for higher loadings. Residual cellobiose concentrations confirmed these findings but suggest that further reductions would have more noticeable negative effects on hydrolysis rates. Results show that b-glucosidase supplementation during biomass hydrolysis can be reduced to between 10% and 20% of typical loadings. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:298 / 302
页数:5
相关论文
共 32 条
[1]   Technoeconomic analysis of the dilute sulfuric acid and enzymatic hydrolysis process for the conversion of corn stover to ethanol [J].
Aden, Andy ;
Foust, Thomas .
CELLULOSE, 2009, 16 (04) :535-545
[2]  
Adney B., 2008, TECHNICAL REPORT
[3]   Characterization of a commercial cellulase for hydrolysis of agroindustrial substrates [J].
Balsan, Guilherme ;
Astolfi, Viviane ;
Benazzi, Tassio ;
Meireles, M. Angela A. ;
Maugeri, Francisco ;
Di Luccio, Marco ;
Dal Pra, Valeria ;
Mossi, Altemir J. ;
Treichel, Helen ;
Mazutti, Marcio A. .
BIOPROCESS AND BIOSYSTEMS ENGINEERING, 2012, 35 (07) :1229-1237
[4]   Evaluation of novel fungal cellulase preparations for ability to hydrolyze softwood substrates - evidence for the role of accessory enzymes [J].
Berlin, A ;
Gilkes, N ;
Kilburn, D ;
Bura, R ;
Markov, A ;
Skomarovsky, A ;
Okunev, O ;
Gusakov, A ;
Maximenko, V ;
Gregg, D ;
Sinitsyn, A ;
Saddler, J .
ENZYME AND MICROBIAL TECHNOLOGY, 2005, 37 (02) :175-184
[5]   Organosolv pretreatment of Sitka spruce wood: Conversion of hemicelluloses to ethyl glycosides [J].
Bouxin, Florent P. ;
Jackson, S. David ;
Jarvis, Michael C. .
BIORESOURCE TECHNOLOGY, 2014, 151 :441-444
[6]   Enzymatic hydrolysis of maize straw polysaccharides for the production of reducing sugars [J].
Chen, Ming ;
Zhao, Jing ;
Xia, Liming .
CARBOHYDRATE POLYMERS, 2008, 71 (03) :411-415
[7]   Enhanced enzymatic hydrolysis and ethanol production from cashew apple bagasse pretreated with alkaline hydrogen peroxide [J].
da Costa, Jessyca Aline ;
Marques, Jose Edvan, Jr. ;
Barros Goncalves, Luciana Rocha ;
Ponte Rocha, Maria Valderez .
BIORESOURCE TECHNOLOGY, 2015, 179 :249-259
[8]   An Economic Comparison of Different Fermentation Configurations to Convert Corn Stover to Ethanol Using Z. mobilis and Saccharomyces [J].
Dutta, Abhijit ;
Dowe, Nancy ;
Ibsen, Kelly N. ;
Schell, Daniel J. ;
Aden, Andy .
BIOTECHNOLOGY PROGRESS, 2010, 26 (01) :64-72
[9]   Process and economic analysis of pretreatment technologies [J].
Eggeman, T ;
Elander, RT .
BIORESOURCE TECHNOLOGY, 2005, 96 (18) :2019-2025
[10]   Response surface optimization of enzymatic hydrolysis of Cistus ladanifer and Cytisus striatus for bioethanol production [J].
Ferreira, Susana ;
Duarte, Ana P. ;
Ribeiro, Maria H. L. ;
Queiroz, Joao A. ;
Domingues, Fernanda C. .
BIOCHEMICAL ENGINEERING JOURNAL, 2009, 45 (03) :192-200