[1]张浩东,赵清梅,薛佳祺,等. 丝状真菌的转录调控启动子及其功能研究进展[J]. 农业科学研究,2021,42(4):56-64,9.
[2]Dean R,van Kan J A L,Pretorius Z A,et al. The Top 10 fungal pathogens in molecular plant pathology[J]. Molecular Plant Pathology,2012,13(4):414-430.
[3]Cantarel B L,Coutinho P M,Rancurel C,et al. The carbohydrate-active enzymes database (CAZy):an expert resource for glycogenomics[J]. Nucleic Acids Research,2009,37(Suppl1):D233-D238.
[4]陈泉冰,曹伟洁,李春,等. GH79家族糖苷水解酶分子进化关系和蛋白结构研究[J]. 生物技术通报,2023,39(1):104-114.
[5]原野,胡彦波,周义发. 糖苷水解酶:生物转化制备活性糖苷与苷元的有效工具[J]. 微生物学报,2017,57(8):1219-1234.
[6]陆璐,陶雅军,罗学娅,等. 糖苷水解酶32家族结构与功能的研究进展[J]. 中国酿造,2019,38(8):14-19.
[7]Chen W,Jiang X,Yang Q. Glycoside hydrolase family 18 chitinases:the known and the unknown[J]. Biotechnology Advances,2020,43:107553.
[8]周林芳,江波,张涛,等. 糖苷水解酶第3家族β-葡萄糖苷酶的研究进展[J]. 食品工业科技,2017,38(14):330-335.
[9]刘国芳,任沛东,叶文新,等. 十字花科黑腐病菌中转录因子HpaR1与Clp调控一个糖苷水解酶基因表达的分析[J]. 遗传,2021,43(9):910-920.
[10]Jrgensen H,Vibe-Pedersen J,Larsen J,et al. Liquefaction of lignocellulose at high-solids concentrations[J]. Biotechnology & Bioengineering,2010,96(5):862-870.
[11]Shanmugam S,Krishnaswamy S,Chandrababu R,et al. Optimal immobilization of Trichoderma asperellum laccase on polymer coated Fe3O4-SiO2 nanoparticles for enhanced biohydrogen production from delignified lignocellulosic biomass[J]. Fuel,2020,273:117777.
[12]Vasella A,Davies G J,Bhm M. Glycosidase mechanisms[J]. Current Opinion in Chemical Biology,2002,6(5):619-629.
[13]Henrissat B. A classification of glycosyl hydrolases based on amino acid sequence similarities[J]. Biochemical Journal,1991,280(2):309-316.
[14]Davies G,Henrissat B. Structures and mechanisms of glycosyl hydrolases[J]. Structure,1995,3(9):853-859.
[15]Gebler J,Gilkes N R,Claeyssens M,et al. Stereoselective hydrolysis catalyzed by related beta-1,4-glucanases and beta-1,4-xylanases[J]. The Journal of Biological Chemistry,1992,267(18):12559-12561.
[16]Henrissat B,Callebaut I,Fabrega S,et al. Conserved catalytic machinery and the prediction of a common fold for several families of glycosyl hydrolases[J]. Proceedings of the National Academy of Sciences,1995,92(15):7090-7094.
[17]White A,Rose D R. Mechanism of catalysis by retaining β-glycosyl hydrolases[J]. Current opinion in structural biology,1997,7(5):645-651.
[18]Withers S. Mechanisms of glycosyl transferases and hydrolases[J]. Carbohydrate Polymers,2001,44(4):325-337.
[19]Rudd P M,Wormald M R,Dwek R A. Glycosylation and the immune system[J]. Journal of Protein Chemistry,1998,17(6):519.
[20]Kytidou K,Artola M,Overkleeft H S,et al. Plant glycosides and glycosidases:a treasure-trove for therapeutics[J]. Frontiers in Plant Science,2020,11:357.
[21]李聪,王允. 棘孢木霉糖苷水解酶3基因家族的生物信息学及表达模式分析[J]. 微生物学通报,2023,50(1):1-12.
[22]周庆新,戴炳业,陈蕾蕾,等. 瑞氏木霉中β-葡萄糖苷酶基因功能研究进展[J]. 中国农业科技导报,2014,16(2):74-78.
[23]Sharma A,Tewari R,Rana S S,et al. Cellulases:classification,methods of determination and industrial applications[J]. Applied Biochemistry and Biotechnology,2016,179:1346-1380.
[24]Kim E S,Lee H J,Bang W G,et al. Functional characterization of a bacterial expansin from Bacillus subtilis for enhanced enzymatic hydrolysis of cellulose[J]. Biotechnology and Bioengineering,2010,102(5):1342-1353.
[25]Cantarel B L,Coutinho P M,Rancurel C,et al. The carbohydrate-active ENZYMES database (CAZy):an expert resource for glycogenomics[J]. Nucleic Acids Research,2008,37(1):D233-D238.
[26]Crennell S J,Hreggvidsson G O,Karlsson E N. The structure of Rhodothermus marinus Cel12A,a highly thermostable family 12 endoglucanase,at 1.8 resolution[J]. Journal of Molecular Biology,2002,320(4):883-897.
[27]韩长志,许僖. 植物病原丝状真菌分泌蛋白及CAZymes的研究进展[J]. 南京林业大学学报(自然科学版),2017,41(5):152-160.
[28]Larrucea S,Butta N,Arias-Salgado E G,et al. Expression of podocalyxin enhances the adherence,migration,and intercellular communication of cells[J]. Experimental Cell Research,2008,314(10):2004-2015.
[29]Okuyama M. Function and structure studies of GH family 31 and 97 α-glycosidases[J]. Bioscience,Biotechnology and Biochemistry,2011,75(12):2269-2277.
[30]Burnaugh A M,Frantz L J,King S J. Growth of Streptococcus pneumoniae on human glycoconjugates is dependent upon the sequential activity of bacterial exoglycosidases[J]. Journal of Bacteriology,2008,190(1):221-230.
[31]杨利艳,郭晓娣,张玉荣,等. 外源乙烯利对禾谷炭疽菌生物学特性的影响及转BtACO基因植物的抗病性评价[J]. 中国农业大学学报,2022,27(3):33-40.
[32]Sharon A,Fuchs Y,Anderson J D. The elicitation of ethylene biosynthesis by a Trichoderma xylanase is not related to the cell wall degradation activity of the enzyme[J]. Plant Physiology,1993,102(4):1325-1329.
[33]陈龙,洪永河,吴晓贤,等. 稻瘟病菌NUDIX水解酶家族的生物信息学及表达特性研究[J]. 分子植物育种,2016,14(5):1075-1081.
[34]周洁,郑祥梓,兰斓,等. 稻瘟病菌假定的糖基水解酶62家族初步研究[J]. 中国农业科学,2009,42(8):2754-2762.
[35]Torres M F,Ghaffari N,Buiate E a S,et al. A Colletotrichum graminicola mutant deficient in the establishment of biotrophy reveals early transcriptional events in the maize anthracnose disease interaction[J]. BMC Genomics,2016,17(1):202.
[36]韩长志,任文来. 禾谷炭疽菌GPCR蛋白生物信息学分析[J]. 西南林业大学学报,2016,36(4):82-87.
[37]刘涵,孟成真,刘玉青,等. 禾谷炭疽菌CgRab5A的亚细胞定位研究[J]. 安徽农学通报,2019,25(22):99-102.
[38]覃悦,韩长志. 禾谷炭疽菌内吞相关蛋白找寻及其生物信息学[J]. 科学技术与工程,2021,21(13):5287-5295.
[39]祝一鸣,刘艳潇,何九卿,等. 希金斯炭疽菌效应子基因ChEP085的功能研究[J]. 华北农学报,2022,37(2):192-200.
[40]陈光建,覃悦,韩长志. 希金斯炭疽菌中NPFxD基序蛋白找寻及其生物信息学分析[J]. 江苏农业科学,2022,50(5):35-40.
[41]Robb M,Hobbs J K,Woodiga S A,et al. Molecular characterization of N-glycan degradation and transport in Streptococcus pneumoniae and its contribution to virulence[J]. PLoS Pathogens,2017,13(1):e1006090.
[42]Addala M S,Gudipati M. Purification and characterization of a novel α-D-glucosidase from Lactobacillus fermentum with unique substrate specificity towards resistant starch[J]. Journal of General & Applied Microbiology,2017,63(6):355-361.
[43]Masuda Y,Okuyama M,Iizuka T,et al. Purification and characterization of a chloride ion-dependent α-glucosidase from the midgut gland of Japanese scallop (Patinopecten yessoensis)[J]. Bioscience,Biotechnology,and Biochemistry,2016,80(3):479-485.
[44]Okuyama M,Tanimoto Y,Ito T,et al. Purification and characterization of the hyper-glycosylated extracellular α-glucosidase from Schizosaccharomyces pombe[J]. Enzyme & Microbial Technology,2005,37(5):472-480.
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Zhang Lingxiu,et al.Optimization of oil producing process of a strain of filamentous fungi producing cellulase[J].Jiangsu Agricultural Sciences,2014,42(8):316.
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