Production of β-glucosidase by Rhodotorula oryzicola and use of enzyme for hydrolysis of sugarcane bagasse delignified

被引:3
作者
Ribeiro, Geise Camila de Araujo [1 ]
de Assis, Sandra Aparecida [1 ]
机构
[1] State Univ Feira de Santana, Hlth Dept, Transnordestina Ave,Km 0,BR 116, BR-44036900 Feira De Santana, BA, Brazil
来源
JOURNAL OF FOOD SCIENCE AND TECHNOLOGY-MYSORE | 2023年 / 60卷 / 11期
关键词
Yeast; Hydrolase; Partial purification; Enzymatic characterization; Alkaline pretreatment; SACCHARIFICATION; PURIFICATION; CELLULASES; CELLULOSE; WASTES;
D O I
10.1007/s13197-023-05783-3
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Bioethanol is obtained by hydrolysis of sugarcane bagasse by cellulases. Commercial cellulases are expensive and have a low concentration of ss-glucosidase (EC 3.2.1.21), which decrease hydrolysis efficiency. The present work aims to produce supernatant rich in ss-glucosidase (BGL) using the yeast Rhodotorula oryzicola and apply it in the hydrolysis of delignified sugarcane bagasse. Yeast fermented in a modified YPD (Yeast Peptone Dextrose) medium with 0.5% (w/v) cellobiose and 1.0% (w/v) glucose produced BGL with a specific activity of 1.44 +/- 0.013 U/ mg. Partial purification of BGL by acetone showed a specific activity of 3.48 U/mg. The optimum pH and temperature were 6.02 and 65 degrees C, respectively. BGL partially purified ( BGLppR.oryzicola) by acetone showed tolerance to glucose, with a relative activity of 82.89 +/- 0.11%. The activity increased with the addition of iron sulfate and zinc sulfate and decreased with manganese sulfate. BGL partially purified was thermal stable, with a relative activity of 85.59% after 60 min at 90 degrees C. BGL partially purified applied in the hydrolysis of sugarcane bagasse delignified with 3% (w/w) NaOH + 6% (w/w) Na2SO3 showed a conversion rate of 72.46 +/- 1.60%. The results showed that BGL partially purified is a glucose tolerant cellulase of low-cost, promising the application of bioethanol production.
引用
收藏
页码:2761 / 2771
页数:11
相关论文
共 50 条
  • [31] Lignin enrichment and enzyme deactivation as the root cause of enzymatic hydrolysis slowdown of steam pretreated sugarcane bagasse
    Wallace, Joshua
    Brienzo, Michel
    Garcia-Aparicio, Maria P.
    Goergens, Johann F.
    NEW BIOTECHNOLOGY, 2016, 33 (03) : 361 - 371
  • [32] An Approach for Incorporating Glycerol as a Co-Substrate into Unconcentrated Sugarcane Bagasse Hydrolysate for Improved Lipid Production in Rhodotorula glutinis
    Ngamsirisomsakul, Marika
    Kongkeitkajorn, Mallika Boonmee
    Amnuaypanich, Sittipong
    Reungsang, Alissara
    FERMENTATION-BASEL, 2022, 8 (10):
  • [33] Multi-Response Optimization Using the Desirability Function of Exoglucanases, Endoglucanases and β-Glucosidases Production by Aspergillus Niger ITV-02 from Delignified Sugarcane Bagasse
    Ines Infanzon-Rodriguez, Maria
    del Moral, Sandra
    Castro-Martinez, Claudia
    Cano-Sarmiento, Cynthia
    Gomez-Rodriguez, Javier
    Guadalupe Aguilar-Uscanga, Maria
    SUGAR TECH, 2023, 25 (01) : 86 - 98
  • [34] Reducing sugars production from sugarcane bagasse wastes by hydrolysis in sub-critical water
    Zhu, Guangyong
    Xiao, Zuobing
    Zhu, Xian
    Yi, Fengping
    Wan, Xueliang
    CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY, 2013, 15 (01) : 55 - 61
  • [35] FeCl3-catalyzed ethanol pretreatment of sugarcane bagasse boosts sugar yields with low enzyme loadings and short hydrolysis time
    Zhang, Hongdan
    Zhang, Shuaishuai
    Yuan, Hongyou
    Lyu, Gaojin
    Xie, Jun
    BIORESOURCE TECHNOLOGY, 2018, 249 : 395 - 401
  • [36] Use of Blends Containing Different Proportions of Straw and Sugarcane Bagasse for the Production of Briquettes
    Masullo, Liamara S.
    Alesi, Leticia S.
    Quadros, Taruhim M. C.
    da Silva, Diego A.
    de Padua, Franciane A.
    Yamaji, Fabio M.
    REVISTA VIRTUAL DE QUIMICA, 2018, 10 (03) : 641 - 654
  • [37] Bioconversion of pretreated sugarcane bagasse using enzymatic and acid followed by enzymatic hydrolysis approaches for bioethanol production
    Patel, Harshvadan
    Chapla, Digantkumar
    Shah, Amita
    RENEWABLE ENERGY, 2017, 109 : 323 - 331
  • [38] Production of cellulases and xylanases by Humicola grisea var. thermoidea and application in sugarcane bagasse arabinoxylan hydrolysis
    Faria, Syd Pereira
    de Melo, Guilhermar Ramos
    Cintra, Lorena Cardoso
    Ramos, Luiz Pereira
    Amorim Jesuino, Rosalia Santos
    Ulhoa, Cirano Jose
    de Faria, Fabricia Paula
    INDUSTRIAL CROPS AND PRODUCTS, 2020, 158
  • [39] Thermotolerant and mesophylic fungi from sugarcane bagasse and their prospection for biomass-degrading enzyme production
    Lamanes dos Santos, Bruna Silveira
    Sousa Gomes, Arthur Filipe
    Franciscon, Emanuele Giuliane
    de Oliveira, Jean Maikon
    Baffi, Milla Alves
    BRAZILIAN JOURNAL OF MICROBIOLOGY, 2015, 46 (03) : 903 - 910
  • [40] Non-ionic surfactant formulation sequentially enhances the enzymatic hydrolysis of cellulignin from sugarcane bagasse and the production of Monascus ruber biopigments
    Sanchez-Munoz, S.
    Balbino, T. R.
    Teran-Hilares, R.
    Mier-Alba, E.
    Barbosa, F. G.
    Balagurusamy, N.
    Santos, J. C.
    da Silva, S. S.
    BIORESOURCE TECHNOLOGY, 2022, 362