Probing catalytic hinge bending motions in thermolysin-like proteases by glycine→alanine mutations

被引:24
作者
Veltman, OR
Eijsink, VGH
Vriend, G
de Kreij, A
Venema, G
Van den Burg, B
机构
[1] Univ Groningen, Groningen Biomol Sci & Biotechnol Inst, Dept Genet, NL-9751 NN Haren, Netherlands
[2] Agr Univ Norway, N-1432 As Nlh, Norway
[3] European Mol Biol Lab, D-69117 Heidelberg, Germany
关键词
D O I
10.1021/bi972374j
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 active site of thermolysin-like proteases (TLPs) is located at the bottom of a cleft between the N- and C-terminal domains. Crystallographic studies have shown that the active-site cleft is more closed in Ligand-binding TLPs than in Ligand-free TLPs. Accordingly, it has been proposed that TLPs undergo a hinge-bending motion during catalysis resulting in "closure" and "opening" of the active-site cleft. Two hinge regions have been proposed. One is located around a conserved glycine 78; the second involves residues 135 and 136. The importance of conserved glycine residues in these hinge regions was studied experimentally by analyzing the effects of Gly --> Ala mutations on catalytic activity. Eight such mutations were made in the TLP of Bacillus stearothermophilus (TLP-ste) and their effects on activity toward casein and various peptide substrates were determined. Only the Gly78Ala, Gly136Ala, and Gly135Ala + Gly136Ala mutants decreased catalytic activity significantly. These mutants displayed a reduction in k(cat)/K-m for 3-(2-furylacryloyl)-L-glycyl-L-leucine amide of 73%, 62%, and 96%, respectively. Comparisons of effects on k(cat)/K-m for various substrates with effects on the K-i for phosphoramidon suggested that the mutation at position 78 primarily had an effect on substrate binding, whereas the mutations at positions 135 and 136 primarily influence k(cat). The apparent importance of conserved glycine residues in proposed hinge-bending regions for TLP activity supports the idea that hinge-bending is an essential part of catalysis.
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页码:5305 / 5311
页数:7
相关论文
共 58 条
[31]   STRUCTURAL BASIS OF THE ACTION OF THERMOLYSIN AND RELATED ZINC PEPTIDASES [J].
MATTHEWS, BW .
ACCOUNTS OF CHEMICAL RESEARCH, 1988, 21 (09) :333-340
[32]   GENETIC AND STRUCTURAL-ANALYSIS OF THE PROTEIN STABILITY PROBLEM [J].
MATTHEWS, BW .
BIOCHEMISTRY, 1987, 26 (22) :6885-6888
[33]   Conformation of T4 lysozyme in solution. Hinge-bending motion and the substrate-induced conformational transition studied by site-directed spin labeling [J].
Mchaourab, HS ;
Oh, KJ ;
Fang, CJ ;
Hubbell, WL .
BIOCHEMISTRY, 1997, 36 (02) :307-316
[34]  
MEHENDEZARIAS L, 1989, J MOL BIOL, V206, P397
[35]   THERMOLYSIN - KINETIC STUDY WITH OLIGOPEPTIDES [J].
MORIHARA, K ;
TSUZUKI, H .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1970, 15 (02) :374-&
[36]   A CRITICAL-ASSESSMENT OF COMPARATIVE MOLECULAR MODELING OF TERTIARY STRUCTURES OF PROTEINS [J].
MOSIMANN, S ;
MELESHKO, R ;
JAMES, MNG .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 1995, 23 (03) :301-317
[37]   CLONING AND EXPRESSION IN BACILLUS-SUBTILIS OF THE NPR GENE FROM BACILLUS-THERMOPROTEOLYTICUS ROKKO CODING FOR THE THERMOSTABLE METALLOPROTEASE THERMOLYSIN [J].
ODONOHUE, MJ ;
ROQUES, BP ;
BEAUMONT, A .
BIOCHEMICAL JOURNAL, 1994, 300 :599-603
[38]  
SARKAR G, 1990, BIOTECHNIQUES, V8, P404
[39]   EFFECT OF ALANINE VERSUS GLYCINE IN ALPHA-HELICES ON PROTEIN STABILITY [J].
SERRANO, L ;
NEIRA, JL ;
SANCHO, J ;
FERSHT, AR .
NATURE, 1992, 356 (6368) :453-455
[40]   THE STRUCTURE OF NEUTRAL PROTEASE FROM BACILLUS-CEREUS AT 0.2-NM RESOLUTION [J].
STARK, W ;
PAUPTIT, RA ;
WILSON, KS ;
JANSONIUS, JN .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1992, 207 (02) :781-791