THE 3-D STRUCTURE OF A ZINC METALLO-BETA-LACTAMASE FROM BACILLUS-CEREUS REVEALS A NEW-TYPE OF PROTEIN FOLD

被引:398
作者
CARFI, A
PARES, S
DUEE, E
GALLENI, M
DUEZ, C
FRERE, JM
DIDEBERG, O
机构
[1] CEA, INST BIOL STRUCT JEAN PIERRE EBEL, CRISTALLOG MACROMOLEC LAB, CNRS, F-38027 GRENOBLE 1, FRANCE
[2] UNIV LIEGE, INST CHIM B6, CTR INGN PROT, B-4000 LIEGE 1, BELGIUM
关键词
ANTIBIOTIC; BETA-LACTAMASE; METALLOENZYME; PENICILLIN RESISTANCE; X-RAY STRUCTURE;
D O I
10.1002/j.1460-2075.1995.tb00174.x
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 3-D structure of Bacillus cereus (569/H/9) beta-lactamase (EC 3.5.2.6), which catalyses the hydrolysis of nearly all beta-lactams, has been solved at 2.5 Angstrom resolution by the multiple isomorphous replacement method, with density modification and phase combination, from crystals of the native protein and of a specially designed mutant (T97C). The current model includes 212 of the 227 amino acid residues, the zinc ion and 10 water molecules. The protein is folded into a beta beta sandwich with helices on each external face. To our knowledge, this fold has never been observed. An approximate internal molecular symmetry is found, with a 2-fold axis passing roughly through the zinc ion and suggesting a possible gene duplication. The active site is located at one edge of the beta beta sandwich and near the N-terminal end of a helix. The zinc ion is coordinated by three histidine residues (86, 88 and 149) and a water molecule. A sequence comparison of the relevant metallo-beta-lactamases, based on this protein structure, highlights a few well-conserved amino acid residues. The structure shows that most of these residues are in the active site. Among these, aspartic acid 90 and histidine 210 participate in a proposed catalytic mechanism for beta-lactam hydrolysis.
引用
收藏
页码:4914 / 4921
页数:8
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