Improvement of the thermostability and catalytic activity of a mesophilic family 11 xylanase by N-terminus replacement

被引:66
作者
Sun, JY [1 ]
Liu, MQ [1 ]
Xu, YL [1 ]
Xu, ZR [1 ]
Pan, L [1 ]
Gao, H [1 ]
机构
[1] Zhejiang Univ, Coll Anim Sci, Feed Sci Inst, Div Microbiol, Hangzhou 310029, Peoples R China
基金
中国国家自然科学基金;
关键词
xylanase; thermostability catalytic activity; N-terminus; Pichia pastoris;
D O I
10.1016/j.pep.2005.03.009
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
To improve the thermostability and catalytic activity of Aspergillus niger xylanase A (AnxA), its N-terminus was substituted with the corresponding region of Thermomonospora fusca xylanase A (TfxA), The Constructed hybrid xylanase, named ATx, was over-expressed in Pichia pastoris and secreted into the medium. After 96-h 0.25% methanol induction, the activity of the ATx in the culture supernatant reached its peak, 633 U/mg, which was 3.6 and 5.4 times as high its those or recombinant AnxA (reAnxA) and recombinant TfxA (reTfxA), respectively. Studies on enzymatic properties showed that the temperature and pH optimum of the ATx were 60 degrees C and 5.0, respectively. The ATx was more thermostable, when it was treated at 70 degrees C, pH 5.0, for 2 min, the residual activity was 72%, which was higher than that of reAnxA and similar to that of reTfxA. The ATx was very stable over a broader pH range (3.0-10.0) and much less affected by acid/base conditions. After incubation at pH 3.0, 10.0, 25 degrees C for 1 h, all the residual activities of the ATx were over 80%. These results revealed that the thermostability and catalytic activity of the AnxA were enhanced. The N-terminus of TfxA contributed to the observed thermostability of itself and the ATx, and to the high activity of the ATx. Replacement of N-terminus between mesophilic eukaryotic and thermostable prokaryotic enzymes may be it useful method for constructing the new and improved versions of biologically active enzymes. (c) 2005 Elsevier Inc. All rights reserved.
引用
收藏
页码:122 / 130
页数:9
相关论文
共 35 条
[1]   CONTROL OF OLIGOMERIC ENZYME THERMOSTABILITY BY PROTEIN ENGINEERING [J].
AHERN, TJ ;
CASAL, JI ;
PETSKO, GA ;
KLIBANOV, AM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1987, 84 (03) :675-679
[2]   INTERLABORATORY TESTING OF METHODS FOR ASSAY OF XYLANASE ACTIVITY [J].
BAILEY, MJ ;
BIELY, P ;
POUTANEN, K .
JOURNAL OF BIOTECHNOLOGY, 1992, 23 (03) :257-270
[3]   High-level production of recombinant fungal endo-β-1,4-xylanase in the methylotrophic yeast Pichia pastoris [J].
Berrin, JG ;
Williamson, G ;
Puigserver, A ;
Chaix, JC ;
McLauchlan, WR ;
Juge, N .
PROTEIN EXPRESSION AND PURIFICATION, 2000, 19 (01) :179-187
[4]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[5]  
Cereghino JL, 2000, FEMS MICROBIOL REV, V24, P45, DOI 10.1016/S0168-6445(99)00029-7
[6]  
COUGHLAN MP, 1993, BIOTECHNOL APPL BIOC, V17, P259
[7]  
Georis J, 2000, PROTEIN SCI, V9, P466
[8]   Directed evolution of a thermostable esterase [J].
Giver, L ;
Gershenson, A ;
Freskgard, PO ;
Arnold, FH .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (22) :12809-12813
[9]   Thermophilic xylanase from Thermomyces lanuginosus:: High-resolution X-ray structure and modeling studies [J].
Gruber, K ;
Klintschar, G ;
Hayn, M ;
Schlacher, A ;
Steiner, W ;
Kratky, C .
BIOCHEMISTRY, 1998, 37 (39) :13475-13485
[10]   Three-dimensional structures of thermophilic β-1,4-xylanases from Chaetomium thermophilum and Nonomuraea flexuosa -: Comparison of twelve xylanases in relation to their thermal stability [J].
Hakulinen, N ;
Turunen, O ;
Jänis, J ;
Leisola, M ;
Rouvinen, J .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 2003, 270 (07) :1399-1412