[Mini Review] Development of Enzymes for Biomass Saccharification Using <i>Trichoderma reesei</i>.
Author:
Affiliation:
1. Kao Corp. Biological Science Research
Publisher
The Japanese Society of Applied Glycoscience
Subject
General Medicine
Link
https://www.jstage.jst.go.jp/article/bag/9/4/9_249/_pdf
Reference8 articles.
1. 1) M. Saloheimo, J. Kuja-Panula, E. Ylösmäki, M. Ward, and M. Penttilä: Enzymatic properties and intracellular localization of the novel Trichoderma reesei β-glucosidase BGLII (cel1A). Applied and Environmental Microbiology, 68, 4546-4553 (2002).
2. 2) H. Nakazawa, T. Kawai, N. Ida, Y. Shida, Y. Kobayashi, H. Okada, S. Tani, J. Sumitani, T. Kawaguchi, Y. Morikawa, and W. Ogasawara: Construction of a recombinant Trichoderma reesei strain expressing Aspergillus aculeatus β-glucosidase 1 for efficient biomass conversion. Biotechnology and Bioengineering, 109, 92-99 (2012).
3. 3) H. Nakazawa, T. Kawai, N. Ida, Y. Shida, K. Shioya, Kobayashi, H. Okada, S. Tani, J. Sumitani, T. Kawaguchi, Y. Morikawa, and W. Ogasawara: A high performance Trichoderma reesei strain that reveals the importance of xylanase III in cellulosic biomass conversion. Enzyme and Microbial Technology, 82, 89-95 (2016).
4. 4) N. Shibata, M. Suetsugu, H. Kakeshita, K. Igarashi, H. Hagihara, and Y. Takimura: A novel GH10 xylanase from Penicillium sp. accelerates saccharification of alkaline-pretreated bagasse by an enzyme from recombinant Trichoderma reesei expressing Aspergillus β-glucosidase. Biotechnology for Biofuels, 10, 278 (2017).
5. 5) H. Inoue, S. Kishishita, A. Kumagai, M. Kataoka, T. Fujii, and K. Ishikawa: Contribution of a family 1 carbohydrate-binding module in thermostable glycoside hydrolase 10 xylanase from Talaromyces cellulolyticus toward synergistic enzymatic hydrolysis of lignocellulose. Biotechnology for Biofuels, 8, 77 (2015).
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