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Recycling of Chrysoporthe cubensis enzymes to overcome the adsorption in lignin and to improve sugarcane bagasse saccharification
被引:2
|作者:
Martins, Marcele Pandelo
[1
]
de Souza Ladeira Azar, Rafaela Ines
[1
]
Maitan-Alfenas, Gabriela Piccolo
[1
]
Guimara, Valeria Monteze
[1
]
机构:
[1] Univ Fed Vicosa, Dept Biochem & Mol Biol, BIOAGRO, BR-36570000 Vicosa, MG, Brazil
来源:
BIOMASS & BIOENERGY
|
2020年
/
143卷
关键词:
Chrysoporthe cubensis;
Biomass hydrolysis;
Protein adsorption;
Enzymatic recycling;
ENZYMATIC-HYDROLYSIS;
LIGNOCELLULOSIC BIOMASS;
CELLULASE ADSORPTION;
TRICHODERMA-REESEI;
ETHANOL-PRODUCTION;
XYLANASE;
TEMPERATURE;
INHIBITION;
SUBSTRATE;
PROTEINS;
D O I:
10.1016/j.biombioe.2020.105854
中图分类号:
S2 [农业工程];
学科分类号:
0828 ;
摘要:
Biomass enzymatic hydrolysis efficiency shows some limitations, such as the non-specific adsorption of enzymes in lignin. We evaluated the adsorption of proteins and enzymes from Chrysoporthe cubensis into alkaline and acid pretreated sugarcane bagasse, containing 8.1 and 33.8% of lignin, respectively. The data from Langmuir isotherm showed that at 4 degrees C, proteins were more adsorbed by acid-treated bagasse, 10.5 mg g(-1), while higher adsorption affinity, 2.0 mL mg(-1), was determined from alkali-treated bagasse. Similarly, under hydrolytic conditions (50 degrees C), higher amounts of proteins were adsorbed into acid-treated bagasse, confirming the predominant effect of lignin on protein adsorption. Enzymatic recycling rounds during alkali-treated bagasse saccharification showed that the addition of fresh substrate and enzymes promoted the higher release of glucose and xylose, 40.3 and 38.3 g L-1, respectively. However, the addition of only fresh substrates showed to be efficient for C. cubensis enzymes recovery and substrate hydrolysis, which reduces enzyme consumption and costs.
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页数:8
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