Characterization of a New Glucose-Tolerant GH1 β-Glycosidase from Aspergillus fumigatus with Transglycosylation Activity

被引:4
|
作者
Pereira, Lucas Matheus Soares [1 ]
Bernardi, Aline Vianna [1 ]
Gerolamo, Luis Eduardo [1 ]
Pedersoli, Wellington Ramos [2 ]
Carraro, Claudia Batista [2 ]
Silva, Roberto do Nascimento [2 ]
Uyemura, Sergio Akira [3 ]
Dinamarco, Taisa Magnani [1 ]
机构
[1] Univ Sao Paulo, Fac Philosophy Sci & Literature Ribeirao Preto, Dept Chem, BR-14040901 Ribeirao Preto, SP, Brazil
[2] Univ Sao Paulo, Ribeirao Preto Med Sch, Dept Biochem & Immunol, BR-14049900 Ribeirao Preto, SP, Brazil
[3] Univ Sao Paulo, Sch Pharmaceut Sci Ribeirao Preto, Dept Clin Toxicol & Bromatol Anal, BR-14040903 Ribeirao Preto, SP, Brazil
关键词
beta-glycosidase; glucose stimulation; transglycosylation activity; enzymatic hydrolysis; TRICHODERMA-REESEI; BIOCHEMICAL-CHARACTERIZATION; ENZYMATIC-HYDROLYSIS; MICROBIAL METAGENOME; PURIFICATION; GLUCOSIDASES; ENZYMES; CLONING; SACCHARIFICATION; LIGNOCELLULOSE;
D O I
10.3390/ijms24054489
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Concern over environmental impacts has spurred many efforts to replace fossil fuels with biofuels such as ethanol. However, for this to be possible, it is necessary to invest in other production technologies, such as second generation (2G) ethanol, in order to raise the levels of this product and meet the growing demand. Currently, this type of production is not yet economically feasible, due to the high costs of the enzyme cocktails used in saccharification stage of lignocellulosic biomass. In order to optimize these cocktails, the search for enzymes with superior activities has been the goal of several research groups. For this end, we have characterized the new (3-glycosidase AfBgl1.3 from A. fumigatus after expression and purification in Pichia pastoris X-33. Structural analysis by circular dichroism revealed that increasing temperature destructured the enzyme; the apparent T-m value was 48.5 degrees C. The percentages of alpha-helix (36.3%) and (3-sheet (12.4%) secondary structures at 25 degrees C were predicted. Biochemical characterization suggested that the optimal conditions for AfBgl1.3 were pH 6.0 and temperature of 40 degrees C. At 30 and 40 degrees C, the enzyme was stable and retained about 90% and 50% of its activity, respectively, after pre-incubation for 24 h. In addition, the enzyme was highly stable at pH between 5 and 8, retaining over 65% of its activity after pre-incubation for 48 h. AfBgl1.3 co-stimulation with 50-250 mM glucose enhanced its specific activity by 1.4-fold and revealed its high tolerance to glucose (IC50 = 2042 mM). The enzyme was active toward the substrates salicin (495.0 +/- 49.0 U mg(-1)), pNPG (340.5 +/- 18.6 U mg(-1)), cellobiose (89.3 +/- 5.1 U mg(-1)), and lactose (45.1 +/- 0.5 U mg-1), so it had broad specificity. The V-max values were 656.0 +/- 17.5, 706.5 +/- 23.8, and 132.6 +/- 7.1 U mg-1 toward p-nitrophenyl-(3-D-glucopyranoside (pNPG), D-(-)-salicin, and cellobiose, respectively. AfBgl1.3 displayed transglycosylation activity, forming cellotriose from cellobiose. The addition of AfBgl1.3 as a supplement at 0.9 FPU/g of cocktail Celluclast (R) 1.5L increased carboxymethyl cellulose (CMC) conversion to reducing sugars (g L-1) by about 26% after 12 h. Moreover, AfBgl1.3 acted synergistically with other Aspergillus fumigatus cellulases already characterized by our research group-CMC and sugarcane delignified bagasse were degraded, releasing more reducing sugars compared to the control. These results are important in the search for new cellulases and in the optimization of enzyme cocktails for saccharification.
引用
收藏
页数:23
相关论文
共 50 条
  • [1] A Recombinant Thermophilic and Glucose-Tolerant GH1 β-Glucosidase Derived from Hehua Hot Spring
    Zhu, Qian
    Huang, Yuying
    Yang, Zhengfeng
    Wu, Xingci
    Zhu, Qianru
    Zheng, Hongzhao
    Zhu, Dan
    Lv, Zhihua
    Yin, Yirui
    MOLECULES, 2024, 29 (05):
  • [2] Characterization, thermostable mechanism, and molecular docking of a novel glucose-tolerant β-glucosidase/β-galactosidase from the GH1 family isolated from Rehai hot spring
    Huang, Yu-Ying
    Zhu, Dan
    Yang, Li-Quan
    Ortuzar, Maite
    Yang, Zheng-Feng
    Lv, Zhi-Hua
    Xie, Kai-Qing
    Jiang, Hong-Chen
    Li, Wen-Jun
    Yin, Yi-Rui
    FRONTIERS IN MICROBIOLOGY, 2025, 16
  • [3] Characterization of a thermophilic and glucose-tolerant GH1 β-glucosidase from hot springs and its prospective application in corn stover degradation
    Huang, Yu-Ying
    Lv, Zhi-Hua
    Zheng, Hong-Zhao
    Zhu, Qian
    Liu, Meng-Ting
    Sang, Peng
    Wang, Fei
    Zhu, Dan
    Xian, Wen-Dong
    Yin, Yi-Rui
    FRONTIERS IN MICROBIOLOGY, 2023, 14
  • [4] A novel cold-adapted and glucose-tolerant GH1 β-glucosidase from Exiguobacterium antarcticum B7
    Crespim, Elaine
    Zanphorlin, Leticia M.
    de Souza, Flavio H. M.
    Diogo, Jose A.
    Gazolla, Alex C.
    Machado, Carla B.
    Figueiredo, Fernanda
    Sousa, Amanda S.
    Nobrega, Felipe
    Pellizari, Vivian H.
    Murakami, Mario T.
    Ruller, Roberto
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2016, 82 : 375 - 380
  • [5] A highly glucose-tolerant GH1 β-glucosidase with greater conversion rate of soybean isoflavones in monogastric animals
    Cao, Huifang
    Zhang, Yueqi
    Shi, Pengjun
    Ma, Rui
    Yang, Hong
    Xia, Wei
    Cui, Ying
    Luo, Huiying
    Bai, Yingguo
    Yao, Bin
    JOURNAL OF INDUSTRIAL MICROBIOLOGY & BIOTECHNOLOGY, 2018, 45 (06) : 369 - 378
  • [6] Heterologous production and biochemical characterization of a new highly glucose tolerant GH1 β-glucosidase from Anoxybacillus thermarum
    de Almeida, Paula Zaghetto
    de Oliveira, Tassio Brito
    de Lucas, Rosymar Coutinho
    Santos Salgado, Jose Carlos
    Perez, Malena Martinez
    Galan, Beatriz
    Garcia, Jose Luis
    Teixeira de Moraes Polizeli, Maria de Lourdes
    PROCESS BIOCHEMISTRY, 2020, 99 : 1 - 8
  • [7] Characterization of a novel thermostable glucose-tolerant GH1 β-glucosidase from the hyperthermophile Ignisphaera aggregans and its application in the efficient production of baohuoside I from icariin and total epimedium flavonoids
    Xie, Jingcong
    Xu, Hao
    Jiang, Jianchun
    Zhang, Ning
    Yang, Jing
    Zhao, Jian
    Wei, Min
    BIOORGANIC CHEMISTRY, 2020, 104
  • [8] Rational design of a GH1 β-glycosidase to prevent self-condensation during the transglycosylation reaction
    Tran, Vinh
    Hoffmann, Lionel
    Rabiller, Claude
    Tellier, Charles
    Dion, Michel
    PROTEIN ENGINEERING DESIGN & SELECTION, 2010, 23 (01) : 43 - 49
  • [9] A Novel Glucose-Tolerant GH1 β-Glucosidase and Improvement of Its Glucose updates Tolerance Using Site-Directed Mutation
    Sun, Jingjing
    Wang, Wei
    Ying, Yu
    Hao, Jianhua
    APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2020, 192 (03) : 999 - 1015
  • [10] Expression and characterization of a glucose-tolerant β-1,4-glucosidase with wide substrate specificity from Cytophaga hutchinsonii
    Zhang, Cong
    Wang, Xifeng
    Zhang, Weican
    Zhao, Yue
    Lu, Xuemei
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2017, 101 (05) : 1919 - 1926