Biochemical and biotechnological trends in chitin, chitosan, and related enzymes produced by Paenibacillus IK-5 Strain

International Journal of Biological Macromolecules - Tập 104 - Trang 1633-1640 - 2017
Hideo Kusaoke1, Shoko Shinya2, Tamo Fukamizo3, Hisashi Kimoto4
1Department of Environmental and Food Sciences, Fukui University of Technology, Fukui 910-8505, Japan
2Institue for Protein Research, Osaka University, Suita 565-0871, Japan
3Department of Advanced Bioscience, Kinki University, Nara 631-8505, Japan
4Department of Bioscience, Fukui Prefectural University, Eiheiji-cho, Yoshida-gun, Fukui 910-1195, Japan

Tài liệu tham khảo

Kimoto, 2014, Chitin hydrolysis mechanism of a bacterium genus Paenibacillus, Bull. Appl. Glycosci., 4, 113, 10.5458/bag.4.2_113 Kimoto Hisashi, 2002, Biochemical and genetic properties of Paenibaciillus glycosyl hydrolase having chitosanase activity and discoidin domain, J. Biol. Chem., 277, 14685 Kimoto, 2003, A novel chitosanase having Discoidin domain, Biosci. Ind., 61, 35 Kusaoke, 2005, Structrue, function and application of Paenibacillus glycosyl hydrolase having chitosanase activity and discoidin domain, Adv. Chitin Sci., 8, 104 Isogai. Takagi, 2007, Yeast cell-surface expression of chitosanase from Paenibacillus fukuinensis, Biosci. Biotechnol. Biochem., 71, 2845, 10.1271/bbb.70315 H. Kimoto, H. Kusaoke, Genes coding chitinase from genus Paenibacillus bacteria Japanese Patent, No. 4243266 (2017). Isogawa, 2009, Demonstration of catalytic proton acceptor of chitosanase from Paenibacillus fukuinensis by comprehensive analysis of mutant library, Appl. Microbiol. Biotechnol., 85, 95, 10.1007/s00253-009-2041-5 Kusaoke, 2013, Structural and functional properties of chitosanase and chitinases from Paenibacillus sp. IK-5, Chitin Chitosan Res., 19 Isogai, 2014, Purification of chitosan-binding amino acid residues of chitosanase from Paenibacillus fukuinensis, Biosci. Biotechnol. Biochem., 78, 1177, 10.1080/09168451.2014.917263 Shinya, 2013, The first identification of carbohydrate binding modules specific to chitosan, J. Biol. Chem., 288, 30042, 10.1074/jbc.M113.503243 Kimoto, 2010, Discoidin domain of chitosanase is required for binding to the fungal cell wall, J. Mol. Microbiol. Biotechnol., 18, 14, 10.1159/000274308 Shinya, 2016, Mechanism of chitosan recognition by CBM32 carbohydrate-binding modules from a Paenibacillus sp. IK-5 chitosanase/glucanase, Biochem. J., 473, 1085, 10.1042/BCJ20160045 Kanai, 2003, Efficient production of a chitosanase from Paenibacillus fukuinensis D-2 by Bacillus brevis mutant, Adv. Chitin Sci., 6, 247 Kusaoke, 1989, Optimum conditions for electric pulse-mediated gene transfer to Bacillus subtilis cells, Agric. Biol. Chem., 53, 2441 Ohse, 1995, Effects of DNA sizes and several other factors on transformation of Bacillus subtilis ISW1214 with plasmid DNA by electroporation, Biosci. Biotechnol. Biochem., 59, 143, 10.1271/bbb.59.1433 Ohse, 1996, A new and efficient method for gene transfer into mouse FM3A cells using metaphase chromosome by electroporation, Biosci. Biotechnol. Biochem., 60, 1879, 10.1271/bbb.60.1879 Ohse, 1997, Effects of DNA topology efficiency of Bacillus Subtilis ISW1214 by electroporation, Biosci. Biotechnol. Biochem., 61, 1019, 10.1271/bbb.61.1019 Ohse, 1999, Effect of Chitin binding on cell surfaces to gene transfer into Bacillus subtilis by electroporation, Chitin Chitosan Res., 3, 2 Kusaoke, 1999, Effect of chitosan on gene transfer into mammalian Chinese hamster ovary cells by electroporation, Chitin Chitosan Res., 3, 308 Kimoto, 1999, Application of electroporation to gene transfer into cells, Shimazu Rev., 56, 71 Kusaoke, 2005, 2, 38 Amaya, 2007, The effect of chitin- and chitosan-oligosaccharides on the growth of seaweeds, Chitin Chitosan Res., 13, 142 Kimoto, 2011, Chitin and chitosan for agricultural materials, Chitin Chitosan Res., 17, 296 Kimoto, 2016, Biochemical and biotechnological studies on chitin, chitosan, and related enzymes produced by Paenibacillus IK-5 strain