Specific characterization of substrate and inhibitor binding sites of a glycosyl hydrolase family 11 xylanase from Aspergillus niger

被引:66
|
作者
Tahir, TA
Berrin, JG
Flatman, R
Roussel, A
Roepstorff, P
Williamson, G
Juge, N
机构
[1] IFR, Norwich NR4 7UA, Norfolk, England
[2] Fac Sci & Tech St Jerome, Inst Mediterraneen Rech Nutr, UMR 1111, INRA, F-13397 Marseille 20, France
[3] CNRS, AFMB, UMR 6098, F-13402 Marseille 20, France
[4] Univ So Denmark, Dept Biochem & Mol Biol, DK-5230 Odense M, Denmark
关键词
D O I
10.1074/jbc.M205657200
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
The importance of aromatic and charged residues at the surface of the active site of a family 11 xylanase from Aspergillus niger was evaluated using site-directed mutagenesis. Ten mutant proteins were heterologously produced in Pichia pastoris, and their biochemical properties and kinetic parameters were determined. The specific activity of the Y6A, Y10A, Y89A, Y164A, and W172A mutant enzymes was drastically reduced. The low specific activities of Y6A and Y89A were entirely accounted for by a change in k(cat) and K-m, respectively, whereas the lower values of Y10A, Y164A and W172A were due to a combination of increased K. and decreased k(cat), Tyr(6), Tyr(10), Tyr(89), Tyr(164), and Trp(172) are proposed as substrate-binding residues, a finding consistent with structural sequence alignments of family 11 xylanases and with the three-dimensional structure of the A niger xylanase in complex with the modeled xylobiose. All other variants, D113A, D113N, N117A, E118A, and E118Q, retained full wild-type activity. Only N117A lost its sensitivity to xylanase inhibitor protein I (XIP-1), a protein inhibitor isolated from wheat, and this mutation did not affect the fold of the xylanase as revealed by circular dichroism. The N117A variant showed kinetics, pH stability, hydrolysis products pattern, substrate specificity, and structural properties identical to that of the wild-type xylanase. The loss of inhibition, as measured in activity assays, was due to abolition of the interaction between XIP-1 and the mutant enzyme, as demonstrated by surface plasmon resonance and electrophoretic titration. A close inspection of the three-dimensional structure of A. niger xylanase suggests that the binding site of XIP-1 is located at the conserved "thumb" hairpin loop of family 11 xylanases.
引用
收藏
页码:44035 / 44043
页数:9
相关论文
共 50 条
  • [41] Identification and Characterization of a Xyloglucan-Specific Family 74 Glycosyl Hydrolase from Streptomyces coelicolor A3(2)
    Enkhbaatar, Bolormaa
    Temuujin, Uyangaa
    Lim, Ju-Hyeon
    Chi, Won-Jae
    Chang, Yong-Keun
    Hong, Soon-Kwang
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2012, 78 (02) : 607 - 611
  • [42] Purification and characterization of novel bifunctional xylanase, XynIII, isolated from Aspergillus niger A-25
    Chen, Hong-Ge
    Yan, Xin
    Liu, Xin-Yu
    Wang, Ming-Dao
    Huang, Hui-Min
    Jia, Xin-Cheng
    Wang, Jin-An
    JOURNAL OF MICROBIOLOGY AND BIOTECHNOLOGY, 2006, 16 (07) : 1132 - 1138
  • [43] Truncated derivatives of a multidomain thermophilic glycosyl hydrolase family 10 xylanase from Thermotoga maritima reveal structure related activity profiles and substrate hydrolysis patterns
    Verjans, Priscilla
    Dornez, Emmie
    Segers, Martien
    Van Campenhout, Steven
    Bernaerts, Kristel
    Belien, Tim
    Delcour, Jan A.
    Courtin, Christophe M.
    JOURNAL OF BIOTECHNOLOGY, 2010, 145 (02) : 160 - 167
  • [44] Molecular cloning and biochemical characterization of an α-amylase family from Aspergillus niger
    Wang, Junying
    Li, Yu
    Lu, Fuping
    ELECTRONIC JOURNAL OF BIOTECHNOLOGY, 2018, 32 : 55 - 62
  • [45] Beauveria bassiana Xylanase: Characterization and Wastepaper Deinking Potential of a Novel Glycosyl Hydrolase from an Endophytic Fungal Entomopathogen
    Amobonye, Ayodeji
    Bhagwat, Prashant
    Singh, Suren
    Pillai, Santhosh
    JOURNAL OF FUNGI, 2021, 7 (08)
  • [46] Toward understanding of carbohydrate binding and substrate specificity of a glycosyl hydrolase 18 family (GH-18) chitinase from Trichoderma harzianum
    Lienemann, Michael
    Boer, Harry
    Paananen, Arja
    Cottaz, Sylvain
    Koivula, Anu
    GLYCOBIOLOGY, 2009, 19 (10) : 1116 - 1126
  • [47] Characterization of a family 45 glycosyl hydrolase from Fibrobacter succinogenes S85
    Park, Jae Seon
    Russell, James B.
    Wilson, David B.
    ANAEROBE, 2007, 13 (02) : 83 - 88
  • [48] A Glycosyl Hydrolase 30 Family Xylanase from the Rumen Metagenome and Its Effects on In Vitro Ruminal Fermentation of Wheat Straw
    Tang, Longzhang
    Lei, Xiaowen
    Ouyang, Kehui
    Wang, Lei
    Qiu, Qinghua
    Li, Yanjiao
    Zang, Yitian
    Liu, Chanjuan
    Zhao, Xianghui
    ANIMALS, 2024, 14 (01):
  • [49] Characterization of a Thermostable Family 1 Glycosyl Hydrolase Enzyme from Putranjiva roxburghii Seeds
    Patel, Girijesh Kumar
    Kar, Bibekananda
    Sharma, Ashwani Kumar
    APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2012, 166 (03) : 523 - 535
  • [50] Characterization and expression of glycosyl hydrolase of family 12 from Phytophthora sojae in Nicotiana benthamiana
    Costanzo, S.
    Hammond, R. W.
    Deahl, K. L.
    Jones, R. W.
    PHYTOPATHOLOGY, 2006, 96 (06) : S26 - S26