Engineering of multiple arginines into the Ser/Thr surface of Trichoderma reesei endo-1,4-beta-xylanase II increases the thermotolerance and shifts the pH optimum towards alkaline pH.
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Matti Leisola | Ossi Turunen | O. Turunen | M. Leisola | F. Fenel | Mika Vuorio | Fred Fenel | Mika Vuorio
[1] A. Fedorov,et al. Molecular and crystal structures of monoclinic porcine pepsin refined at 1.8 A resolution. , 1990, Journal of molecular biology.
[2] K. Ito,et al. Crystallographic and mutational analyses of an extremely acidophilic and acid-stable xylanase: biased distribution of acidic residues and importance of Asp37 for catalysis at low pH. , 1998, Protein engineering.
[3] J. Rouvinen,et al. Structural and functional properties of low molecular weight endo-1,4-β -xylanases , 1997 .
[4] P Argos,et al. Protein thermal stability, hydrogen bonds, and ion pairs. , 1997, Journal of molecular biology.
[5] J. Frère,et al. An additional aromatic interaction improves the thermostability and thermophilicity of a mesophilic family 11 xylanase: Structural basis and molecular study , 2008, Protein science : a publication of the Protein Society.
[6] O. Turunen,et al. A combination of weakly stabilizing mutations with a disulfide bridge in the alpha-helix region of Trichoderma reesei endo-1,4-beta-xylanase II increases the thermal stability through synergism. , 2001, Journal of biotechnology.
[7] P Argos,et al. Thermal stability and protein structure. , 1979, Biochemistry.
[8] Z. Dauter,et al. Catalysis and specificity in enzymatic glycoside hydrolysis: a 2,5B conformation for the glycosyl-enzyme intermediate revealed by the structure of the Bacillus agaradhaerens family 11 xylanase. , 1999, Chemistry & biology.
[9] Liisa Viikari,et al. Xylanases in bleaching: From an idea to the industry , 1994 .
[10] Pauline M. Doran,et al. Bioprocess Engineering Principles , 1995 .
[11] B. Dijkstra,et al. Three-dimensional structure of Endo-1,4-beta-xylanase I from Aspergillus niger: molecular basis for its low pH optimum. , 1996, Journal of molecular biology.
[12] J. Rouvinen,et al. Structural comparison of two major endo-1,4-xylanases from Trichoderma reesei. , 1995, Biochemistry.
[13] T. Yamane,et al. High-resolution crystal structure of M-protease: phylogeny aided analysis of the high-alkaline adaptation mechanism. , 1997, Protein engineering.
[14] J. Janin,et al. Arginine residues as stabilizing elements in proteins. , 1993, Biochemistry.
[15] Robert L. Campbell,et al. Thermostabilization of the Bacillus circulansxylanase by the introduction of disulfide bonds , 1994 .
[16] A S Lee,et al. A structural role for arginine in proteins: Multiple hydrogen bonds to backbone carbonyl oxygens , 1994, Protein science : a publication of the Protein Society.
[17] B. Cunningham,et al. Improvement in the alkaline stability of subtilisin using an efficient random mutagenesis and screening procedure. , 1987, Protein engineering.
[18] O. Turunen,et al. Thermostability of endo-1,4-beta-xylanase II from Trichoderma reesei studied by electrospray ionization Fourier-transform ion cyclotron resonance MS, hydrogen/deuterium-exchange reactions and dynamic light scattering. , 2001, The Biochemical journal.
[19] R. Prade. Xylanases: from biology to biotechnology. , 1996, Biotechnology & genetic engineering reviews.
[20] P. Biely,et al. Soluble chromogenic substrates for the assay of endo-1,4-β-xylanases and endo-1,4-β-glucanases , 1985 .
[21] P. Suominen,et al. Cloning, sequencing and enhanced expression of the Trichoderma reesei endoxylanase II (pI 9) gene xln2 , 1993, Molecular and General Genetics MGG.
[22] K. Poutanen,et al. Interlaboratory testing of methods for assay of xylanase activity , 1992 .
[23] T. Yomo,et al. Stabilization of xylanase by random mutagenesis , 1993, FEBS letters.
[24] Kaisa Poutanen,et al. Two major xylanases of Trichoderma reesei , 1992 .
[25] N. Guex,et al. SWISS‐MODEL and the Swiss‐Pdb Viewer: An environment for comparative protein modeling , 1997, Electrophoresis.