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纤维素酶及纤维素酶多酶复合体的研究进展 被引量:3

Research Progress about Cellulose and Cellulosome
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摘要 木质纤维素是地球存量最大的可再生资源,但是由于其难以降解,造成以木质纤维素为主要成分的农作物的副产品不能有效的利用。利用纤维素酶是高效降解木质纤维素的最具潜力的策略。论文从木质纤维素的利用现状、纤维素酶和纤维素酶多酶复合体的研究进展等方面进行综述。 Cellulose as the main structural and component of plant cell wall is the most abundant renew- able resource in nature. However, cellulose utilization is extremely difficult because of the chemical and physical complexity of plant cell wails. Cellulase is an efficient approach for degradation of cellulose. Re- cently, Cellulases assembly (cellulosome) has promoted the exploitation of enzyme synergism. Thereby, recent research status in degradation of cellulose including cellulase and cellulosome were reviewed in this paper.
出处 《家畜生态学报》 北大核心 2013年第5期1-5,共5页 Journal of Domestic Animal Ecology
基金 国家自然科学基金(31072060) 转基因生物新品种培育科技重大专项(2008ZX08008-002-04) 现代农业产业技术体系建设专项资金资助(CARS-40-13)
关键词 粗纤维 木质纤维素 纤维素酶 纤维素酶多酶复合体 协同作用 cellulose lignocellulose cellulase cellulosome synergy
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参考文献38

  • 1Montagne L, Pluske J R, Hampson D J. A review of interac-tions between dietary fibre and the intestinal mucosa, and theirconsequences on digestive health in young non-ruminant ani-mals[J]. Anim Feed Sci Technol, 2003,108:95-117.
  • 2Singhania R R,Sukumaran R K,Patel A K. Advancement andcomparative profiles in the production technologies using solidstate and submerged fermentation for microbial cellulases[J],Enzyme Microb Technol, 2010’ 46 : 541-549.
  • 3Bhat M K. Cellulases and related enzymes in biotechnology[J]. Biotechnol Adv,2000,18:355-383.
  • 4闻志强,姜薇,林东强,林建平,岑沛霖.产纤维素体菌厌氧降解纤维素制乙醇的研究进展[J].微生物学通报,2010,37(5):732-737. 被引量:5
  • 5Morals S,Barak Y, Caspi J,et al_ Cellulase-xylanase synergyin designer cellulosomes for enhanced degradation of a complexcellulosic substrate[J]. mBio,2010,1 :e00285-10.
  • 6Bayer E A* Lamed R, White B A,et al. From cellulosomesto cellulosomics[J], The Chemical Record, 2008, 8(6) : 364-377.
  • 7Morag E, Halevy I,Bayer E A,et al. Isolation and proper-ties of a major cellobiohydrolase from the cellulosome of Clos-tridium thermocellum [J]. J Bacteriol* 1991,173:4 155-4162.
  • 8Elkins J G,Raman B,Keller M. Engineered microbial sys-tems for enhanced conversion of lignocellulosic biomass [ J].Curr Opin Biotechnol, 2010, 21 : 1-6.
  • 9Ding S Y, Rincon M T,Lamed R,et al. Cellulosomal scaffol-din like proteins from Ruminococcus flavefaciens[J]. J Bacteri-ol, 2001,183:1 945-1 953.
  • 10Fierobe H P,Mingardon F,Mechaly A , et al. Action of de-signer cellulosomes on homogeneous versus complex sub-strates controlled incorporation of three distinct enzymes intoa defined trifunctional scaffoldin [J]. J Biol Chem? 2005,280:16 325-16 334.

二级参考文献31

  • 1Ohmiya K, Sakka K, Kimura T, et al. Application of microbial genes to recalcitrant biomass utilization and environmental conservation. J Biosci Bioeng, 2003, 95(6): 549-561.
  • 2Fierobe HP, Bayer EA, Tardif C, et al. Degradation of cellulose substrates by cellulosome chimeras. Substrate targeting versus proximity of enzyme components. J Biol Chem, 2002, 277(51): 49621-49630.
  • 3Fierobe HP, Mingardon F, Mechaly A, et al. Action of designer cellulosomes on homogeneous versus complex substrates: controlled incorporation of three distinct enzymes into a defined trifunctional scaffoldin. JBiol Chem, 2005, 280(16): 16325-16334.
  • 4Cha J, Matsuoka S, Chan H, et al. Effect of multiple copies of cohesins on cellulase and hemicellulase activities of Clostridium cellulovorans mini-cellulosomes. J Microbiol Biotechnol, 2007, 17(11): 1782-1788.
  • 5Heyman A, Barak Y, Caspi J, et al. Multiple display of catalytic modules on a protein scaffold: nano-fabrication of enzyme particles. J Biotechnol, 2007, 131(4): 433-439.
  • 6Murashima K, Chen CL, Kosugi A, et al. Heterologous production of Clostridium eellulovorans engB, using protease-deficient Bacillus subtilis, and preparation of active recombinant cellulosomes. J Bacteriol, 2002, 184(1): 76-81.
  • 7Cho HY, Yukawa H, Inui M, et al. Production of minicellulosomes from Clostridium cellulovorans in Bacillus subtilis WB800. Appl Environ Microbiol, 2004, "/0(9): 5704-5707.
  • 8Nolling J, Breton G, Omelchenko MV, et al. Genome sequence and comparative analysis of the solvent-producing bacterium Clostridium aeetobutylieum. J Bacteriol, 2001, 183(16): 4823-4838.
  • 9Sabathe F, Belaich A, Soucaille P. Characterization of the cellulolytic complex (eellulosome) of Clostridium acetobutylicum. FEMS Microbiol Lett, 2002, 217(1): 15-22.
  • 10Perret S, Casalot L, Fierobe HP, et al. Production of heterologous and chimeric scaffoldins by Clostridium acetobutylicum ATCC 824. J Bacteriol, 2004, 186(1): 253-257.

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