Thermotolerance Mechanism of Fungal GH6 Cellobiohydrolase. Part I. Characterization of Thermotolerant Mutant from the Basidiomycete <i>Phanerochaete chrysosporium</i>
Author:
Affiliation:
1. Department of Biomaterial Sciences, Graduate School of Agricultural and Life Sciences, The University of Tokyo
Publisher
The Japanese Society of Applied Glycoscience
Link
https://www.jstage.jst.go.jp/article/jag/71/2/71_jag.JAG-2023_0017/_pdf
Reference41 articles.
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3. [3] Abuja PM, Schmuck M, Pilz I, Tomme P, Claeyssens M, Esterbauer H. Structural and functional domains of cellobiohydrolase I from Trichoderma reesei. Eur Biophys J. 1988; 15: 339-42.
4. [4] Medve J, Ståhlberg J, Tjerneld F. Adsorption and synergism of cellobiohydrolase I and II of Trichoderma reesei during hydrolysis of microcrystalline cellulose. Biotechnol Bioeng. 1994; 44: 1064-73.
5. [5] Igarashi K, Uchihashi T, Koivula A, Wada M, Kimura S, Okamoto T, et al. Traffic jams reduce hydrolytic efficiency of cellulase on cellulose surface. Science. 2011; 333: 1279-82.
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1. Thermotolerance Mechanism of Fungal GH6 Cellobiohydrolase. Part II. Structural Analysis of Thermotolerant Mutant from the Basidiomycete <i>Phanerochaete chrysosporium</i>;Journal of Applied Glycoscience;2024-05-20
2. Polysaccharides from a Fermented Beverage Induce Nitric Oxide and Cytokines in Murine Macrophage Cell Line;Journal of Applied Glycoscience;2024-05-20
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