|本期目录/Table of Contents|

[1]吴桐,贾锐鱼,路强强,等.白腐菌在木质纤维素酶解中的研究进展[J].江苏农业科学,2021,49(5):38-45.
 Wu Tong,et al.Research progress of white rot fungi in enzymatic hydrolysis of lignocellulose[J].Jiangsu Agricultural Sciences,2021,49(5):38-45.
点击复制

白腐菌在木质纤维素酶解中的研究进展(PDF)
分享到:

《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第49卷
期数:
2021年第5期
页码:
38-45
栏目:
专论与综述
出版日期:
2021-03-05

文章信息/Info

Title:
Research progress of white rot fungi in enzymatic hydrolysis of lignocellulose
作者:
吴桐12贾锐鱼1路强强2赵叶子12陈智坤2任英英2邢国强3
1.西安科技大学地质与环境学院,陕西西安 710043; 2.陕西省科学院土壤资源与生物技术应用重点实验室/
陕西省西安植物园(陕西省植物研究所),陕西西安 710061; 3.西安市阎良区国强瓜菜专业合作社,陕西西安 710089
Author(s):
Wu Tonget al
关键词:
白腐菌木质纤维素生物酶解应用现状
Keywords:
-
分类号:
X172;S182
DOI:
-
文献标志码:
A
摘要:
木质纤维素是参与生物地球化学循环的重要组成物,生物酶解是实现其物质利用的有效途径。白腐菌(Phanerochaete chrysosporium)作为腐殖质寄生型真菌,是酶解园林生物质的模式菌种之一,已被广泛应用于生物降解领域。为更全面认识白腐菌对木质纤维素的酶解能力和研究现状,从酶活水平对白腐菌的酶解机制和适用条件进行综述,介绍该菌种在饲料生产、生物堆肥、生物预处理等方面的应用进展。构建以白腐菌为核心的酶解菌系是实现园林生物质快速降解、高效利用的有效途径。
Abstract:
-

参考文献/References:

[1]黄生林. 滨海盐碱地景观绿化植物研究[D]. 杭州:浙江大学,2013.
[2]崔旭阳,杨俊红,雷万宁,等. 生物质成型燃料制备及燃烧过程添加剂应用及研究进展[J]. 化工进展,2017,36(4):1247-1257.
[3]Brandt A,Chen L,van Dongen B E,et al. Structural changes in lignins isolated using an acidic ionic liquid water mixture[J]. Green Chemistry,2015,17(11):5019-5034.
[4]Malherbe S,Cloete T E. Lignocellulose biodegradation:fundamentals and applications[J]. Reviews in Environmental Science and Biotechnology,2002,1(2):105-114.
[5]Zhu J Y,Zhuang X S. Conceptual net energy output for biofuel production from lignocellulosic biomass through biorefining[J]. Progress in Energy and Combustion Science,2012,38(4):583-598.
[6]Kristensen J B,Felby C,Jrgensen H. Yield-determining factors in high-solids enzymatic hydrolysis of lignocellulose[J]. Biotechnology for Biofuels,2009,2(1):11.
[7]Kirk T K,Cullen D. Enzymology and molecular genetics of wood degradation by white-rot fungi[EB/OL]. [2020-05-20]. https://www.fpl.fs.fed.us/documnts/pdf1998/kirk98a.pdf.
[8]Tuomela M,Hatakka A,Raiskila S,et al. Biodegradation of radiolabelled synthetic lignin (14C-DHP) and mechanical pulp in a compost environment[J]. Applied Microbiology and Biotechnology,2001,55(4):492-499.
[9]Crawford R L. Lignin biodegradation and transformation[J]. FEMS Micro,1981,36(24):86-104.
[10]中野准三. 木质素的化学:基础与应用[J]. 高洁,译. 北京:轻工业出版社,1988.
[11]Ander P. The cellobiose-oxidizing enzymes CBQ and CbO as related to lignin and cellulose degradation—A review[J]. FEMS Microbiology Reviews,1994,13(2):297-311.
[12]David P. Pollutant degradation by white rot fungi reviews of environmental contamination[J]. Tech & Biotechnol,1994,12(4):49-72.
[13]Tien M. Properties of ligninase from Phanerochaete chrysosporium and their possible applications[J]. Critical Reviews in Microbiology,1987,15(2):141-168.
[14]Michael H. Molecular biology of lignin-degrading basidiomycete Phanerochaete chrysosporium[J]. Microbiological Reviews,1993,57(3):605-622.
[15]任大军. 白腐菌对氮杂环化合物的降解及机理研究[D]. 武汉:华中科技大学,2006:9-14.
[16]Tien M,Kirk T K. Lignin-degrading enzyme from the hymenomycete Phanerochaete chrysosporium burds[J]. Science,1983,221(4611):661-663.
[17]余洪波. 三种类型木质纤维素的白腐菌降解异质性研究[D]. 武汉:华中科技大学,2007.
[18]Collins P J,Dobson A,Field J A. Reduction of the 2,2′-azinobis (3-ethylbenzthiazoline-6-sulfonate) cation radical by physiological organic acids in the absence and presence of manganese[J]. Applied and Environmental Microbiology,1998,64(6):2026-2031.
[19]Pérez J,Muoz-Dorado J,de la Rubia T,et al. Biodegradation and biological treatments of cellulose,hemicellulose and lignin:an overview[J]. International Microbiology,2002,5(2):53-63.
[20]Wang L S,Zhang Y Z,Yang H,et al. Quantitative estimate of the effect of cellulase components during degradation of cotton fibers[J]. Carbohydrate Research,2004,339(4):819-824.
[21]陈洪洋,蔡俊,林建国,等. 木聚糖酶的研究进展[J]. 中国酿造,2016,35(11):1-6.
[22]Rouches E,Herpoel-Gimbert I,Steyer J P,et al. Improvement of anaerobic degradation by white-rot fungi pretreatment of lignocellulosic biomass:a review[J]. Renewable & Sustainable Energy Reviews,2016,59:179-198.
[23]Zhou X W,Su K Q,Zhang Y M. Applied modern biotechnology for cultivation of Ganoderma and development of their products[J]. Applied Microbiology and Biotechnology,2012,93(3):941-963.
[24]Usha K Y,Praveen K,Reddy B R. Enhanced production of ligninolytic enzymes by a mushroom Stereum ostrea[J]. Biotechnology Research International,2014:815495.
[25]Argyropoulos D S,Menachem S B. Lignin[M]. Berlin:Springer,1998.
[26]范荣桂,刘博,王权程,等. 白腐真菌固定化技术及其研究进展[J]. 广东化工,2011,38(10):65-66.
[27]Ferraz A,Guerra A,Mendona R,et al. Technological advances and mechanistic basis for fungal biopulping[J]. Enzyme and Microbial Technology,2008,43(2):178-185.
[28]Christian V,Shrivastava R,Shukla D,et al. Mediator role of veratryl alcohol in the lignin peroxidase-catalyzed oxidative decolorization of Remazol Brilliant Blue R[J]. Enzyme and microbial technology,2005,36(2/3):327-332.
[29]Wesenberg D,Kyriakides I,Agathos S N. White-rot fungi and their enzymes for the treatment of industrial dye effluents[J]. Biotechnology Advances,2003,22(1/2):161-187.
[30]Itoh H,Wada M,Honda Y,et al. Bioorganosolve pretreatments for simultaneous saccharification and fermentation of beech wood by ethanolysis and white rot fungi[J]. Journal of Biotechnology,2003,103(3):273-280.
[31]Amirta R,Tanabe T,Watanabe T,et al. Methane fermentation of Japanese cedar wood pretreated with a white rot fungus,Ceriporiopsis subvermispora[J]. Journal of Biotechnology,2006,123(1):71-77.
[32]Matera I,Gullotto A,Tilli S,et al. Crystal structure of the blue multicopper oxidase from the white-rot fungus Trametes trogii complexed with p-toluate[J]. Inorganica Chimica Acta,2008,361(14):4129-4137.
[33]李振华.木质素降解过程中纤维二糖脱氢酶和漆酶协同作用的初步研究[D]. 济南:山东大学,2009.
[34]Bak J S. Lignocellulose depolymerization occurs via an environmentally adapted metabolic cascades in the wood-rotting basidiomycete Phanerochaete chrysosporium[J]. MicrobiologyOpen,2015,4(1):151-166.
[35]Salvachúa D,Martínez A T,Tien M,et al. Differential proteomic analysis of the secretome of Irpex lacteus and other white-rot fungi during wheat straw pretreatment[J]. Biotechnology for biofuels,2013,6(1):115.
[36]Hori C,Gaskell J,Igarashi K,et al. Temporal alterations in the secretome of the selective ligninolytic fungus Ceriporiopsis subvermispora during growth on aspen wood reveal this organisms strategy for degrading lignocellulose[J]. Applied and Environmental Microbiology,2014,80(7):2062-2070.
[37]Chen S,Zhang X,Singh D,et al. Biological pretreatment of lignocellulosics:potential,progress and challenges[J]. Biofuels,2010,1(1):177-199.
[38]唐菊,段传人,黄友莹,等. 白腐菌木质素降解酶及其在木质素降解过程中的相互作用[J]. 生物技术通报,2011(10):32-36.
[39]Valásˇková V,Sˇnajdr J,Bittner B,et al. Production of lignocellulose-degrading enzymes and degradation of leaf litter by saprotrophic basidiomycetes isolated from a Quercus petraea forest[J]. Soil Biology and Biochemistry,2007,39(10):2651-2660.
[40]Jiao J,Gai Q Y,Fu Y J,et al. Application of white-rot fungi treated Fructus forsythiae shell residue as a low-cost biosorbent to enrich forsythiaside and phillygenin[J]. Chemical Engineering Science,2012,74:244-255.
[41]李阿敏,李国庆,常艳,等. 白腐菌降解木质素的研究进展(综述)[J]. 食药用菌,2015,23(2):95-101.
[42]张辉,吴华,兰洋. 白腐真菌降解油菜秸秆的效果[J]. 湖北农业科学,2011,50(12):2413-2415.
[43]韦丽敏,史兆国,张力,等. 6种白腐真菌的产酶能力及对稻草的降解效果[J]. 江苏农业科学,2013,41(3):319-322.
[44]王雨琼,周道玮. 白腐菌对玉米秸秆营养价值及抗氧化性能的影响[J]. 动物营养学报,2017,29(11):4108-4115.
[45]曾凡清,周天星,陈琳. 白腐菌对玉米秸秆木质素降解的效果[J]. 浙江农业科学,2018,59(12):2274-2276.
[46]霍春晓,李鑫,成真锐,等. 白腐菌降解甘草渣木质素及综纤维素工艺研究[J]. 黑龙江畜牧兽医:2020(2):87-90.
[47]Hassen A,Belguith K,Jedidi N,et al. Microbial characterization during composting of municipal solid waste[J]. Bioresource Technology,2001,80(3):217-225.
[48]黄丹莲,曾光明,胡天觉,等. 白腐菌应用于堆肥处理含木质素废物的研究[J]. 环境污染治理技术与设备,2005,6(2):29-32.
[49]王玲. EM菌发酵玉米秸秆条件优化及对人参黑斑病影响研究[D]. 长春:吉林农业大学,2012.
[50]Gong X,Li S,Sun X,et al. Maturation of green waste compost as affected by inoculation with the white-rot fungi Trametes versicolor and Phanerochaete chrysosporium[J]. Environmental Technology,2017,38(7):872-879.
[51]Voběrková S,Vaverková M D,Buresˇová A,et al. Effect of inoculation with white-rot fungi and fungal consortium on the composting efficiency of municipal solid waste[J]. Waste Management,2017,61:157-164.
[52]Thomsen S T,Londoo J E,Ambye-Jensen M,et al. Combination of ensiling and fungal delignification as effective wheat straw pretreatment[J]. Biotechnology for Biofuels,2016,9:16.
[53]Ding C,Wang X,Li M. Evaluation of six white-rot fungal pretreatments on corn stover for the production of cellulolytic and ligninolytic enzymes,reducing sugars,and ethanol[J]. Applied Microbiology and Biotechnology,2019,103(14):5641-5652.
[54]Liu S,Wu S,Pang C,et al. Microbial pretreatment of corn stovers by solid-state cultivation of Phanerochaete chrysosporium for biogas production[J]. Applied Biochemistry and Biotechnology,2014,172(3):1365-1376.
[55]Wu J G,Chen C Y,Zhang H Y,et al. Eco-friendly fiberboard production without binder using poplar wood shavings bio-pretreated by white rot fungi Coriolus versicolor[J]. Construction and Building Materials,2020,236:117620.
[56]Fang W,Zhang X,Zhang P,et al. Evaluation of white rot fungi pretreatment of mushroom residues for volatile fatty acid production by anaerobic fermentation:feedstock applicability and fungal function[J]. Bioresource Technology,2020,297:122447.
[57]石亚攀,池玉杰,于存. 偏肿革裥菌产漆酶活性的诱导[J]. 林业科学,2016,52(12):150-155.
[58]Nurika I. The pattern of lignocellulose degradation from cacao pod using the brown rot (Serpula lacrymans) and white rot (Schyzophylum commune) fungi[J]. Earth and Environmental Science,2019,230(1):12080.
[59]Vrsanska M,Buresova A,Damborsky P,et al. Influence of different inducers on ligninolytic enzyme activities[J]. Journal of Metallomics and Nanotechnologies,2015,3:64-70.
[60]焦有宙,高赞,李刚,等. 不同土著菌及其复合菌对玉米秸秆降解的影响[J]. 农业工程学报,2015,31(23):201-207.
[61]de Lima B M J,Jiménez D J,Cortes-Tolalpa L,et al. Soil-derived microbial consortia enriched with different plant biomass reveal distinct players acting in lignocellulose degradation[J]. Microbial Ecology,2016,71(3):616-627.
[62]路强强,赵叶子,陈智坤,等. 城市园林废弃物中纤维素高效降解微生物菌系的构建[J]. 江苏农业科学,2020,48(6):272-277.

相似文献/References:

[1]刘友勋,黄娟,闫明阳,等.活性电泳切胶法分离白腐菌(Trametes sp.B1)2种漆酶同工酶及其性质研究[J].江苏农业科学,2015,43(09):54.
 Liu Youxun,et al.Isolation of two laccase isoenzymes from Trametes sp. B1 by active gel electrophoresis and their enzymatic properties[J].Jiangsu Agricultural Sciences,2015,43(5):54.
[2]乐易林,倪黎,郭星星,等.嗜热菌乙醇代谢途径研究进展[J].江苏农业科学,2016,44(11):22.
 Le Yilin,et al.Research progress of ethanol metabolic pathway of thermophilic microorganisms[J].Jiangsu Agricultural Sciences,2016,44(5):22.
[3]何水清,艾士奇,王建豪,等.木质纤维素分解复合菌系的分解特性与细菌组成多样性分析[J].江苏农业科学,2017,45(16):241.
 He Shuiqing,et al.Decomposition characteristics and bacteria composition diversity analysis of Lignocellulose-decomposing complex strain[J].Jiangsu Agricultural Sciences,2017,45(5):241.
[4]何士成,彭太兵,孙曼钰,等.碱处理中温度对不同底物特性木质纤维素结构及酶解的影响[J].江苏农业科学,2017,45(21):292.
 He Shicheng,et al.Effects of temperature on structure and enzymatic hydrolysis of lignocellulose with different substrate properties under alkali pretreatment[J].Jiangsu Agricultural Sciences,2017,45(5):292.
[5]孙曼钰,彭太兵,何士成,等.联合生物加工木质纤维素生产生物乙醇的研究进展[J].江苏农业科学,2018,46(08):5.
 Sun Manyu,et al.Research progress on bioethanol production by consolidated bioprocessing(CBP) of lignocellulose[J].Jiangsu Agricultural Sciences,2018,46(5):5.
[6]李权,李本鹏,齐文玉,等.樟脑对彩绒革盖菌抑制响应的差异蛋白质组学分析[J].江苏农业科学,2018,46(13):44.
 Li Quan,et al.Differential proteome analysis of response of camphor inhibiting Coriolus versicolor[J].Jiangsu Agricultural Sciences,2018,46(5):44.
[7]路强强,赵叶子,陈智坤,等.城市园林废弃物中纤维素高效降解微生物菌系的构建[J].江苏农业科学,2020,48(06):272.
 Lu Qiangqiang,et al.Construction of microbial flora with efficient cellulose-degradation ability in urban garden waste[J].Jiangsu Agricultural Sciences,2020,48(5):272.
[8]贾昭炎,王成成,曹春晖,等.深度共熔溶剂预处理木质纤维素研究进展[J].江苏农业科学,2022,50(20):77.
 Jia Zhaoyan,et al.Research progress on pretreatment of lignocellulose with deep eutectic solvent[J].Jiangsu Agricultural Sciences,2022,50(5):77.

备注/Memo

备注/Memo:
收稿日期:2020-07-28
基金项目:陕西省科学院科技计划 (编号:2018K-11、2020K-08);西安市科技计划(编号:2193058YF046NS046)。
作者简介:吴桐(1994—),女,吉林松源人,硕士,主要从事植物资源化利用研究。E-mail:270276491@qq.com。
通信作者:路强强,博士,主要从事植物资源化学相关工作。E-mail:luqiang@xab.ac.cn。
更新日期/Last Update: 2021-03-05