Improvement of Trichoderma reesei xylanase II thermal stability by serine to threonine surface mutations

被引:29
作者
Ayadi, Dorra Zouari [1 ]
Sayari, Aida Hmida [1 ]
Ben Hlima, Hajer [1 ]
Ben Mabrouk, Sameh [1 ]
Mezghani, Monia [1 ]
Bejar, Samir [1 ]
机构
[1] Univ Sfax, CBS, LMB, Sfax 3018, Tunisia
关键词
Xylanase; Thermostability; Ser/Thr substitutions; SITE-DIRECTED MUTAGENESIS; AMINO-ACID-SEQUENCE; FAMILY-11; XYLANASE; ANGSTROM RESOLUTION; ALKALI STABILITY; PROTEIN SURFACE; THERMOSTABILITY; EVOLUTION; GENE; ENZYMES;
D O I
10.1016/j.ijbiomac.2014.08.014
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Three simple mutants, S80T, S146T, and S149T, and a double mutant, S80T S149T, were constructed and expressed in Escherichia coli to replace Serine on the surface of the Trichoderma reesei xylanase protein with Threonine residues. While the Wild-type (WT) xylanase showed a half-life time (t(1/2)) of 20 min at 55 degrees C, the double mutant was more thermostable exhibiting a tip value of 37 min, followed by the S80T and S149T mutants whose t(1/2) values were 25 and 23 min, respectively. At 55 degrees C, the S146T mutant showed a decrease in thermostability with a t(1/2) value of 3 min. While the WT enzyme retained only 32% of residual activity after incubation for 5 min at 60 degrees C, the S80T, S149T, and the S80T S149T mutant enzymes retained 45%, 41%, and 60%, respectively. Molecular modeling attributed the increase in the thermostability of the S80T and S149T mutants to a new hydrogen bond formation and a packing effect, respectively. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:163 / 170
页数:8
相关论文
共 52 条
  • [1] Gapped BLAST and PSI-BLAST: a new generation of protein database search programs
    Altschul, SF
    Madden, TL
    Schaffer, AA
    Zhang, JH
    Zhang, Z
    Miller, W
    Lipman, DJ
    [J]. NUCLEIC ACIDS RESEARCH, 1997, 25 (17) : 3389 - 3402
  • [2] Cloning and expression of a novel, moderately thermostable xylanase-encoding gene (Cfl xyn11A) from Cellulomonas flavigena
    Amaya-Delgado, Lorena
    Mejia-Castillo, Teresa
    Santiago-Hernandez, Alejandro
    Vega-Estrada, Jesus
    Amelia, Farres-G. -S.
    Xoconostle-Cazares, Beatriz
    Ruiz-Medrano, Roberto
    del Carmen Montes-Horcasitas, Maria
    Eugenia Hidalgo-Lara, Maria
    [J]. BIORESOURCE TECHNOLOGY, 2010, 101 (14) : 5539 - 5545
  • [3] THERMAL-STABILITY AND PROTEIN-STRUCTURE
    ARGOS, P
    ROSSMANN, MG
    GRAU, UM
    ZUBER, H
    FRANK, G
    TRATSCHIN, JD
    [J]. BIOCHEMISTRY, 1979, 18 (25) : 5698 - 5703
  • [4] INTERLABORATORY TESTING OF METHODS FOR ASSAY OF XYLANASE ACTIVITY
    BAILEY, MJ
    BIELY, P
    POUTANEN, K
    [J]. JOURNAL OF BIOTECHNOLOGY, 1992, 23 (03) : 257 - 270
  • [5] Banerjee N, 2012, INDIAN J BIOCHEM BIO, V49, P182
  • [6] Microbial xylanases and their industrial applications: a review
    Beg, QK
    Kapoor, M
    Mahajan, L
    Hoondal, GS
    [J]. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2001, 56 (3-4) : 326 - 338
  • [7] Computational design-based molecular engineering of the glycosyl hydrolase family 11 B. subtilis XynA endoxylanase improves its acid stability
    Belien, Tim
    Joye, Iris J.
    Delcour, Jan A.
    Courtin, Christophe M.
    [J]. PROTEIN ENGINEERING DESIGN & SELECTION, 2009, 22 (10) : 587 - 596
  • [8] Enhancement of the thermostability of the maltogenic amylase MAUS149 by Gly312Ala and Lys436Arg substitutions
    Ben Mabrouk, Sameh
    Aghajari, Nushin
    Ben Ali, Mamdouh
    Ben Messaoud, Ezzedine
    Juy, Michel
    Haser, Richard
    Bejar, Samir
    [J]. BIORESOURCE TECHNOLOGY, 2011, 102 (02) : 1740 - 1746
  • [9] CLONING AND SEQUENCING OF THE α-AMYLASE GENE FROM BACILLUS SUBTILIS US116 STRAIN ENCODING AN ENZYME CLOSELY IDENTICAL TO THAT FROM BACILLUS AMYLOLIQUEFACIENS BUT DISTINCT IN THERMAL STABILITY
    Ben Messaoud, Ezzedine
    Ben Mabrouk, Sameh
    Jemli, Sonia
    Bejar, Samr
    [J]. JOURNAL OF FOOD BIOCHEMISTRY, 2010, 34 (02) : 263 - 282
  • [10] BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3