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嗜热和嗜碱木聚糖酶研究进展 被引量:11

Progress in the thermophilic and alkalophilic xylanases
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摘要 木聚糖酶是降解半纤维素主要成分木聚糖的关键酶,广泛应用在食品、饲料、制浆造纸、生物脱胶等行业。特别是在造纸工业中,木聚糖酶显示出巨大的应用潜力,已成为国内外研究的热点。纸浆漂白工艺中需要酶在高温碱性条件下发挥作用。目前,主要通过筛选野生型木聚糖酶资源和对现有中性中温木聚糖酶分子改造的方法获得嗜热碱木聚糖酶。文中就嗜热嗜碱木聚糖酶的筛选、嗜热嗜碱机制研究及分子改造进展进行了综述,并对其前景进行了展望。 Xylanase is the key enzyme to degrade xylan that is a major component of hemicellulose. The enzyme has potential industrial applications in the food, feed, paper and flax degumming industries. The use of xylanases becomes more and more important in the paper industry for bleaching purposes. Xylanases used in the pulp bleaching process should be stable and active at high temperature and alkaline pH. Thermophilic and alkalophilic xylanases could be obtained by screening the wild type xylanases or engineering the mesophilic and neutral enzymes. In this paper, we reviewed recent progress of screening of the thermophilic and alkalophilic xylanases, molecular mechanism of thermal and alkalineadaptation and molecular engineering. Future research prospective was also discussed.
出处 《生物工程学报》 CAS CSCD 北大核心 2014年第6期828-837,共10页 Chinese Journal of Biotechnology
基金 中国科学院重点部署项目(No.KSZD-EW-Z-015)资助~~
关键词 木聚糖酶 嗜热 嗜碱 筛选 分子改造 xylanase, thermophilic, alkalophilic, screening, molecular engineering
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参考文献49

  • 1Berrin JG,Juge N.Factors affecting xylanasefunctionality in the degradation of arabinoxylans.Biotechnol Lett,2008,30(7):1139–1150.
  • 2Biely P.Microbial xylanolytic systems.TrendsBiotechnol,1985,3:286–290.
  • 3Collins T,Gerday C,Feller G.Xylanases,xylanasefamilies and extremophilic xylanases.FEMSMicrobiol Rev,2005,29(1):3–23.
  • 4Bajpai P.Biological bleaching of chemical pulps.Crit Rev Biotechnol,2004,24(1):1–58.
  • 5Bajpai P.Application of enzymes in the pulp andpaper industry.Biotechnol Progr,1999,15(2):147–157.
  • 6Nakamura S,Wakabayashi K,Nakai R,et al.Purification and some properties of an alkalinexylanase from alkaliphilic Bacillus sp.strain41M-1.Appl Environ Microbiol,1993,59(7):2311–2316.
  • 7Gessesse A.Purification and properties of twothermostable alkaline xylanases from analkaliphilic Bacillus sp..Appl Environ Microbiol,1998,64(9):3533–3535.
  • 8Simkhada JR,Yoo HY,Choi YH,et al.Anextremely alkaline novel xylanase from a newlyisolated Streptomyces strain cultivated in corncobmedium.Appl Biochem Biotechnol,2012,168(7):2017–2027.
  • 9Simpson HD,Haufler UR,Daniel RM.Anextremely thermostable xylanase from thethermophilic eubacterium Thermotoga.Biochem J,1991,277(Pt 2):413–417.
  • 10Sriyapai T,Somyoonsap P,Matsui K,et al.Cloningof a thermostable xylanase from Actinomadura sp.S14 and its expression in Escherichia coli andPichia pastoris.J Biosci Bioeng,2011,111(5):528–536.

二级参考文献21

  • 1陈嘉川,王保民,曲音波,高培基,杨桂花,李昭成.An—76真菌木聚糖酶漂白NaOH一AQ麦草浆的研究[J].中国造纸学报,1996,11(C00):15-18. 被引量:18
  • 2杨浩萌,孟昆,罗会颖,王亚茹,袁铁铮,柏映国,姚斌,范云六.通过N端替换提高木聚糖酶的热稳定性[J].生物工程学报,2006,22(1):26-32. 被引量:13
  • 3Beg QK, Kapoor M, Mahajan L, et al. Microbial xylanases and their industrial application: a review. Appl Microbiol Biotechnol, 2001, 56: 326-338.
  • 4Stephens DE, Rumbold K, Permaul K, et al. Directed evolution of the thermostable xylanase from Thermomyces lanuginosus. JBiotechnol, 2007, 127: 348-354.
  • 5Sriprang R, Asano K, Gobsuk J, et al. Improvement of thermostability of fungal xylanase by using site-directed mutagenesis. J Biotechnol, 2006, 126: 454-462.
  • 6Georis J, Esteves FDL, Lamotte-Brasseur J, et al. An additional aromatic interaction improves the therrnostability and thermophilicity of a mesophilic family 11 xylanase: structural basis and molecular study. Protein Sei, 2000, 9: 466-475.
  • 7Sun JY, Liu MQ, Xu YL, et al. Improvement of the thermostability and catalytic activity of a mesophilic family 11 xylanase by N-terminus replacement. Protein Express Purif, 2005, 42: 122-130.
  • 8Wakarchuk WW, Sung WL, Campbell RL, et al. Thermostabilization of the Bacillus circulans xylanase by the introduction of disulfide bond. Protein Eng, 1994, 7: 1379-1386.
  • 9Jeong MY, Kim S, Yun CW, et al. Engineering a de novo internal disulfide bridge to improve the thermal stability of xylanase from Bacillus stearothermophilus No.236. J Biotechnol, 2007, 127: 300-309.
  • 10Fenel F, Leisola M, Janis J, et al. A de novo designed N-terminal disulphide bridge stabilizes the Trichoderma reesei endo-1,4-β-xylanase Ⅱ. J Biotechnol, 2004, 108: 137-143.

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