CRYSTALLOGRAPHIC AND FLUORESCENCE STUDIES OF THE INTERACTION OF HALOALKANE DEHALOGENASE WITH HALIDE-IONS - STUDIES WITH HALIDE COMPOUNDS REVEAL A HALIDE BINDING-SITE IN THE ACTIVE-SITE

被引:76
作者
VERSCHUEREN, KHG
KINGMA, J
ROZEBOOM, HJ
KALK, KH
JANSSEN, DB
DIJKSTRA, BW
机构
[1] UNIV GRONINGEN,DEPT CHEM,BIOPHYS CHEM LAB,NIJENBORGH 4,9747 AG GRONINGEN,NETHERLANDS
[2] UNIV GRONINGEN,DEPT CHEM,BIOCHEM LAB,9747 AG GRONINGEN,NETHERLANDS
关键词
D O I
10.1021/bi00086a008
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
Haloalkane dehalogenase from Xanthobacter autotrophicus GJ10 catalyzes the conversion of 1,2-dichloroethane to 2-chloroethanol and chloride without use of oxygen or cofactors. The active site is situated in an internal cavity, which is accesible from the solvent, even in the crystal. Crystal structures of the dehalogenase enzyme complexed with iodoacetamide, chloroacetamide, iodide, and chloride at pH 6.2 and 8.2 revealed a halide binding site between the ring NH's of two tryptophan residues, Trp-125 and Trp-175, located in the active site. The halide ion lies on the intersection of the planes of the rings of the tryptophans. The binding of iodide and chloride to haloalkane dehalogenase caused a strong decrease in protein fluorescence. The decrease could be fitted to a modified form of the Stern-Volmer equation, indicating the presence of fluorophors of different accessibilities. Halide binding was much stronger at pH 6.0 than at pH 8.2. Assuming ligand binding to Trp-125 and Trp-175 as the sole cause of fluorescence quenching, dissociation constants at pH 6.0 with chloride and iodide were calculated to be 0.49 +/- 0.04 and 0.074 +/- 0.007 mM, respectively. Detailed structural investigation showed that the halide binding site probably stabilizes the halide product as well as the negatively charged transition state occurring during the formation of the covalent intermediate.
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页码:9031 / 9037
页数:7
相关论文
共 26 条
[1]   DETERMINATION OF TRACE AMOUNTS OF CHLORINE IN NAPHTHA [J].
BERGMANN, JG ;
SANIK, J .
ANALYTICAL CHEMISTRY, 1957, 29 (02) :241-243
[2]   PROTEIN DATA BANK - COMPUTER-BASED ARCHIVAL FILE FOR MACROMOLECULAR STRUCTURES [J].
BERNSTEIN, FC ;
KOETZLE, TF ;
WILLIAMS, GJB ;
MEYER, EF ;
BRICE, MD ;
RODGERS, JR ;
KENNARD, O ;
SHIMANOUCHI, T ;
TASUMI, M .
JOURNAL OF MOLECULAR BIOLOGY, 1977, 112 (03) :535-542
[3]   AMINO-AROMATIC INTERACTIONS IN PROTEINS [J].
BURLEY, SK ;
PETSKO, GA .
FEBS LETTERS, 1986, 203 (02) :139-143
[4]   EXPOSURE OF TRYPTOPHANYL RESIDUES IN PROTEINS - QUANTITATIVE-DETERMINATION BY FLUORESCENCE QUENCHING STUDIES [J].
EFTINK, MR ;
GHIRON, CA .
BIOCHEMISTRY, 1976, 15 (03) :672-680
[5]  
EFTINK MR, 1991, METHOD BIOCHEM ANAL, V35, P199
[6]   CRYSTAL-STRUCTURE OF HALOALKANE DEHALOGENASE - AN ENZYME TO DETOXIFY HALOGENATED ALKANES [J].
FRANKEN, SM ;
ROZEBOOM, HJ ;
KALK, KH ;
DIJKSTRA, BW .
EMBO JOURNAL, 1991, 10 (06) :1297-1302
[7]   CLONING OF 1,2-DICHLOROETHANE DEGRADATION GENES OF XANTHOBACTER-AUTOTROPHICUS GJ10 AND EXPRESSION AND SEQUENCING OF THE DHLA GENE [J].
JANSSEN, DB ;
PRIES, F ;
VANDERPLOEG, J ;
KAZEMIER, B ;
TERPSTRA, P ;
WITHOLT, B .
JOURNAL OF BACTERIOLOGY, 1989, 171 (12) :6791-6799
[8]   GRAPHICS MODEL-BUILDING AND REFINEMENT SYSTEM FOR MACROMOLECULES [J].
JONES, TA .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 1978, 11 (AUG) :268-272
[9]   IMPROVED METHODS FOR BUILDING PROTEIN MODELS IN ELECTRON-DENSITY MAPS AND THE LOCATION OF ERRORS IN THESE MODELS [J].
JONES, TA ;
ZOU, JY ;
COWAN, SW ;
KJELDGAARD, M .
ACTA CRYSTALLOGRAPHICA SECTION A, 1991, 47 :110-119
[10]   PURIFICATION AND CHARACTERIZATION OF HYDROLYTIC HALOALKANE DEHALOGENASE FROM XANTHOBACTER-AUTOTROPHICUS GJ10 [J].
KEUNING, S ;
JANSSEN, DB ;
WITHOLT, B .
JOURNAL OF BACTERIOLOGY, 1985, 163 (02) :635-639