[1] 马钦元, 申雁冰, 丁盼盼, 等. 常压室温等离子诱变与微生物微滴培养选育几丁质脱乙酰基酶高产菌株[J]. 中国酿造, 2020, 39(8):170-174.
MA Q Y, SHEN Y B, DING P P, et al. Breeding of strain with high chitin deacetylase yield by atmospheric and room temperature plasma mutagenesis and microbial microdroplet-culture[J]. China Brewing, 2020, 39(8):170-174.
[2] SHIMIZU M, KANEKO Y, ISHIHARA S, et al. Novel β-1, 4-mannanase belonging to a new glycoside hydrolase family in Aspergillus nidulans[J]. The Journal of Biological Chemistry, 2015, 290(46):27914-27927.
[3] HILL J L Jr, HAMMUDI M B, MING T E. The Arabidopsis cellulose synthase complex: A proposed hexamer of CESA trimers in an equimolar stoichiometry[J]. The Plant Cell, 2014, 26(12):4834-4842.
[4] HEMSWORTH G R, JOHNSTON E M, DAVIES G J, et al. Lytic polysaccharide monooxygenases in biomass conversion[J]. Trends in Biotechnology, 2015, 33(12):747-761.
[5] SATO K, CHIBA D, YOSHIDA S, et al. Functional analysis of a novel lytic polysaccharide monooxygenase from Streptomyces griseus on cellulose and chitin[J]. International Journal of Biological Macromolecules, 2020, 164:2085-2091.
[6] SUZUKI K, SUZUKI M, TAIYOJI M, et al. Chitin binding protein (CBP21) in the culture supernatant of Serratia marcescens 2170[J]. Bioscience, Biotechnology, and Biochemistry, 1998, 62(1):128-135.
[7] AACHMANN F L, SØRLIE M, SKJÅK-BRÆK G, et al. NMR structure of a lytic polysaccharide monooxygenase provides insight into copper binding, protein dynamics, and substrate interactions[J]. Proceedings of the National Academy of Sciences of the United States of America, 2012, 109(46):18779-18784.
[8] HARRIS P V, WELNER D, MCFARLAND K C, et al. Stimulation of lignocellulosic biomass hydrolysis by proteins of glycoside hydrolase family 61: Structure and function of a large, enigmatic family[J]. Biochemistry, 2010, 49(15):3305-3316.
[9] 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(Database issue): D233-D238.
[10] GARCIA-SANTAMARINA S, PROBST C, FESTA R A, et al. A lytic polysaccharide monooxygenase-like protein functions in fungal copper import and meningitis[J]. Nature Chemical Biology, 2020, 16(3):337-344.
[11] PASPALIARI D K, LOOSE J S M, LARSEN M H, et al. Listeria monocytogenes has a functional chitinolytic system and an active lytic polysaccharide monooxygenase[J]. The FEBS Journal, 2015, 282(5):921-936.
[12] VANDHANA T M, REYRE J L, SUSHMAA D, et al. On the expansion of biological functions of lytic polysaccharide monooxygenases[J]. The New Phytologist, 2022, 233(6):2380-2396.
[13] FRANCO CAIRO J P L, CANNELLA D, OLIVEIRA L C, et al. On the roles of AA15 lytic polysaccharide monooxygenases derived from the termite Coptotermes gestroi[J]. Journal of Inorganic Biochemistry, 2021, 216:111316.
[14] SABBADIN F, URRESTI S, HENRISSAT B, et al. Secreted pectin monooxygenases drive plant infection by pathogenic oomycetes[J]. Science, 2021, 373(6556):774-779.
[15] FILIATRAULT-CHASTEL C, NAVARRO D, HAON M, et al. AA16, a new lytic polysaccharide monooxygenase family identified in fungal secretomes[J].Biotechnology for Biofuels, 2019, 12:55.
[16] BHATIA S, YADAV S K. Novel catalytic potential of a hyperthermostable mono-copper oxidase (LPMO-AOAA17) for the oxidation of lignin monomers and depolymerisation of lignin dimer in aqueous media[J]. International Journal of Biological Macromolecules, 2021, 186:563-573.
[17] QUINLAN R J, SWEENEY M D, LEGGIO L L, et al. Insights into the oxidative degradation of cellulose by a copper metalloenzyme that exploits biomass components[J]. Proceedings of the National Academy of Sciences of the United States of America, 2011, 108(37):15079-15084.
[18] FRANDSEN K E H, SIMMONS T J, DUPREE P, et al. The molecular basis of polysaccharide cleavage by lytic polysaccharide monooxygenases[J]. Nature Chemical Biology, 2016, 12(4):298-303.
[19] VAAJE-KOLSTAD G, FORSBERG Z, LOOSE J S, et al. Structural diversity of lytic polysaccharide monooxygenases[J]. Current Opinion in Structural Biology, 2017, 44:67-76.
[20] COURTADE G, AACHMANN F L. Chitin-Active Lytic Polysaccharide Monooxygenases[M].Singapore: Springer, 2019:115-129.
[21] GREGORY R C, HEMSWORTH G R, TURKENBURG J P, et al. Activity, stability and 3-D structure of the Cu(ii) form of a chitin-active lytic polysaccharide monooxygenase from Bacillus amyloliquefaciens[J]. Dalton Transactions, 2016, 45(42):16904-16912.
[22] TIAN C G, BEESON W T, IAVARONE A T, et al. Systems analysis of plant cell wall degradation by the model filamentous fungus Neurospora crassa[J]. Proceedings of the National Academy of Sciences of the United States of America, 2009, 106(52):22157-22162.
[23] BEESON W T, VU V V, SPAN E A, et al. Cellulose degradation by polysaccharide monooxygenases[J]. Annual Review of Biochemistry, 2015, 84:923-946.
[24] TAN T C, KRACHER D, GANDINI R, et al. Structural basis for cellobiose dehydrogenase action during oxidative cellulose degradation[J]. Nature Communications, 2015, 6:7542.
[25] EIBINGER M, GANNER T, BUBNER P, et al. Cellulose surface degradation by a lytic polysaccharide monooxygenase and its effect on cellulase hydrolytic efficiency[J]. The Journal of Biological Chemistry, 2014, 289(52):35929-35938.
[26] JAGADEESWARAN G, GAINEY L, MORT A J. An AA9-LPMO containing a CBM1 domain in Aspergillus nidulans is active on cellulose and cleaves cello-oligosaccharides[J]. AMB Express, 2018, 8(1):171.
[27] MEIER K K, JONES S M, KAPER T, et al. Oxygen activation by Cu LPMOs in recalcitrant carbohydrate polysaccharide conversion to monomer sugars[J]. Chemical Reviews, 2018, 118(5):2593-2635.
[28] KUUSK S, BISSARO B, KUUSK P, et al. Kinetics of H2O2-driven degradation of chitin by a bacterial lytic polysaccharide monooxygenase[J]. The Journal of Biological Chemistry, 2018, 293(2):523-531.
[29] 宋晓菲, 冯超. 裂解性多糖单加氧酶及其应用研究进展[J]. 微生物学报, 2023, 63(7):2534-2551.
SONG X F, FENG C. Lytic polysaccharide monooxygenase and its application[J]. Acta Microbiologica Sinica, 2023, 63(7):2534-2551.
[30] 杜文珍,李元敬,吴佳玲,等.丝状真菌Podospora anserina AA11 家族裂解多糖单加氧酶基因的鉴定和功能研究[J].遗传, 2023, 45(12):1128-1146.
DU W Z, LI Y J, WU J L, et al. Identification and functional study of AA11 family polysaccharide monooxygenase genes in filamentous fungus Podospora anserina[J]. Hereditas, 2023, 45(12):1128-1146.
[31] LI D, GAI Y P, MENG J L, et al. GPI-anchored protein homolog IcFBR1 functions directly in morphological development of Isaria cicadae[J]. Journal of Fungi, 2022, 8(11):1152.
[32] MUMMERY-WIDMER J L, YAMAZAKI M, STOEGER T, et al. Genome-wide analysis of Notch signalling in Drosophila by transgenic RNAi[J]. Nature, 2009, 458(7241):987-992.
[33] LI Y, LIU X Y, LIU M X, et al. Magnaporthe oryzae auxiliary activity protein MoAa91 functions as chitin-binding protein to induce appressorium formation on artificial inductive surfaces and suppress plant immunity[J]. mBio, 2020, 11(2): e03304-e03319.
[34] 孙小宝, 万嘉欣, 曹佳雯, 等. 溶解性多糖单加氧酶的研究进展[J]. 生物工程学报, 2018, 34(2):177-187.
SUN X B, WAN J X, CAO J W, et al. Progress in lytic polysaccharide monooxygenase[J]. Chinese Journal of Biotechnology, 2018, 34(2):177-187.
[35] BRESLMAYR E, HANEK M, HANRAHAN A, et al. A fast and sensitive activity assay for lytic polysaccharide monooxygenase[J]. Biotechnology for Biofuels, 2018, 11:79.
[36] BRESLMAYR E, DALY S, POGAJČIĆ A, et al. Improved spectrophotometric assay for lytic polysaccharide monooxygenase[J]. Biotechnology for Biofuels, 2019, 12:283.
[37] 毛相朝, 郭超然, 苏海鹏, 等. 裂解性多糖单加氧酶EbLPMO10A及其应用: CN116042549A[P]. 2023-05-02.
[38] 沈洁如, 王素英, 张宏宇, 等. 裂解多糖单加氧酶活性检测方法的研究进展[J]. 分析化学, 2023, 51(9):1391-1402.
SHEN J R, WANG S Y, ZHANG H Y, et al. Research progress on detection methods of lytic polysaccharide monooxygenase activities[J]. Chinese Journal of Analytical Chemistry, 2023, 51(9):1391-1402.
[39] LIMSAKUL P, PHITSUWAN P, WAEONUKUL R, et al. A novel AA10 from Paenibacillus curdlanolyticus and its synergistic action on crystalline and complex polysaccharides[J]. Applied Microbiology and Biotechnology, 2020, 104(17):7533-7550.
[40] PETROVIĆ D M, VÁRNAI A, DIMAROGONA M, et al. Comparison of three seemingly similar lytic polysaccharide monooxygenases from Neurospora crassa suggests different roles in plant biomass degradation[J]. The Journal of Biological Chemistry, 2019, 294(41):15068-15081.
[41] JAGADEESWARAN G, GAINEY L, MORT A J. An AA9-LPMO containing a CBM1 domain in Aspergillus nidulans is active on cellulose and cleaves cello-oligosaccharides[J]. AMB Express, 2018, 8(1):171.
[42] LADEVÈZE S, HAON M, VILLARES A, et al. The yeast Geotrichum candidum encodes functional lytic polysaccharide monooxygenases[J]. Biotechnology for Biofuels, 2017, 10:215.
[43] 郭俊彤. 裂解多糖单加氧酶基因的高效异源表达研究[D]. 长春: 吉林农业大学, 2023.
GUO J T. study on efficient heterologous expression of monooxygenase gene from pyrolysaccharide[D].Changchun: Jilin Agricultural University, 2023.
[44] COURTADE G, LE S B, SÆTROM G I, et al. A novel expression system for lytic polysaccharide monooxygenases[J]. Carbohydrate Research, 2017, 448:212-219.
[45] 徐倩倩. 几丁质高效降解菌株的筛选及裂解性多糖单加氧酶的应用研究[D]. 聊城: 聊城大学, 2022.
XU Q Q. Screening of chitin-degrading strains with high efficiency and study on the application of pyrolytic polysaccharide monooxygenase[D].Liaocheng: Liaocheng University, 2022.
[46] 周頔, 徐登薇, 宋锐, 等. 低聚糖类益生元对炼乳品质的影响[J]. 食品安全质量检测学报, 2022, 13(18):5887-5894.
ZHOU D, XU D W, SONG R, et al. Effects of oligosaccharide prebiotics on the quality of condensed milk[J]. Journal of Food Safety & Quality, 2022, 13(18):5887-5894.
[47] 何君, 韩育梅, 刘敏, 等. 菊粉和低聚果糖对发酵乳品质的影响[J]. 中国食品学报, 2019, 19(11):116-123.
HE J, HAN Y M, LIU M, et al. Effect of inulin and oligofructose on the quality of fermented milk[J]. Journal of Chinese Institute of Food Science and Technology, 2019, 19(11):116-123.
[48] 姜雅杰, 王畅, 席茂盛, 等. 壳寡糖复合固体饮料对Ⅱ型糖尿病小鼠肠道菌群结构的影响[J]. 食品工业科技, 2020, 41(8):301-306.
JIANG Y J, WANG C, XI M S, et al. Effect of chitooligosaccharide compound solid beverage on intestinal flora of type II diabetic mice[J]. Science and Technology of Food Industry, 2020, 41(8):301-306.
[49] MARKOWIAK P, ŚLIEWSKA K. Effects of probiotics, prebiotics, and synbiotics on human health[J]. Nutrients, 2017, 9(9):1021.
[50] 倪学勤. 畜牧养殖开启无抗新时代[J]. 畜牧产业, 2020(8):31.
NI X Q. Animal husbandry opens a new era of no resistance[J]. Animal Agriculture, 2020(8):31.
[51] 邓雪娟, 于继英, 刘晶晶, 等. 我国生物发酵饲料研究与应用进展[J]. 动物营养学报, 2019, 31(5):1981-1989.
DENG X J, YU J Y, LIU J J, et al. Research and application progress of biological fermented feed in China[J]. Chinese Journal of Animal Nutrition, 2019, 31(5):1981-1989.
[52] 敖翔, 陶璇, 豆松方, 等. 不同抗生素替代组合对川藏黑猪断奶仔猪生长性能和养分消化率的影响[J]. 养猪, 2022(3):34-36.
AO X, TAO X, DOU S F, et al. Effects of antibiotic alternatives on growth performance and nutrient digestibility in Chuanzang black weaning pigs[J]. Swine Production, 2022(3):34-36.
[53] 陈铁中. 高产非淀粉多糖酶的菌株选育及应用[D]. 太原: 山西大学, 2023.
CHEN T Z. Breeding and application of high-yielding non-starch polysaccharide enzyme strains[D]. Taiyuan: Shanxi University, 2023.
[54] 余建, 范志勇, 王丽, 等. 小麦中抗营养因子及其猪饲用价值改善方法研究进展[J]. 动物营养学报, 2023, 35(8):4777-4794.
YU J, FAN Z Y, WANG L, et al. Research progress on anti-nutritional factors in wheat and methods improving its feeding value in pigs[J]. Chinese Journal of Animal Nutrition, 2023, 35(8):4777-4794.
[55] 郑棚, 王雷,胡美荣,等.多酶级联反应合成能够促进肠道益生菌生长的纤维寡糖[J]. 生物工程学报, 2023, 39(8):3406-3420.
ZHENG P, WANG L, HU M R, et al. Synthesis of cello-oligosaccharides which promotes the growth of intestinal probiotics by multi-enzyme cascade reaction[J]. Chinese Journal of Biotechnology, 2023, 39(8):3406-3420.
[56] GUO X, AN Y J, LU F P, et al. Optimization of synergistic degradation of steam exploded corn straw by lytic polysaccharide monooxygenase R17L and cellulase[J]. Industrial Crops and Products, 2022, 182:114924.
[57] 徐倩倩, 马春桐, 姚莹莹, 等. 几丁质裂解性多糖单加氧酶的表达及应用研究[J]. 中国酿造, 2022, 41(8):97-104.
XU Q Q, MA C T, YAO Y Y, et al. Expression and application of chitinolytic polysaccharide monooxygenase[J]. China Brewing, 2022, 41(8):97-104.
[58] LI F, LIU Y X, LIU Y, et al. Heterologous expression and characterization of a novel lytic polysaccharide monooxygenase from Natrialbaceae archaeon and its application for chitin biodegradation[J]. Bioresource Technology, 2022, 354:127174.