Metal binding specificity in carbonic anhydrase is influenced by conserved hydrophobic core residues

被引:100
作者
Hunt, JA [1 ]
Ahmed, M [1 ]
Fierke, CA [1 ]
机构
[1] Duke Univ, Med Ctr, Dept Biochem, Durham, NC 27710 USA
关键词
D O I
10.1021/bi9900166
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 role of highly conserved aromatic residues surrounding the zinc binding site of human carbonic anhydrase Il (CAII) in determining the metal ion binding specificity of this enzyme has been examined by mutagenesis. Residues F93, F95, and W97 are located along a beta-strand containing two residues that coordinate zinc, H94 and H96,and these aromatic amino acids contribute to the high zinc affinity and slow zinc dissociation rate constant of CAII [Hunt, J. A., and Fierke, C. A. (1997) J. Biol. Chem. 272, 20364-20372]. Substitutions of these aromatic amino acids with smaller side chains enhance the copper affinity (up to 100-fold) while decreasing the affinity of both cobalt and zinc, thereby altering the metal binding specificity up to 10(4)-fold. Furthermore, the free energy of the stability of native CAII, determined by solvent-induced denaturation, correlates positively with increased hydrophobicity of the amino acids at positions 93, 95, and 97 as well as with cobalt and zinc affinity. Conversely, increased copper affinity correlates with decreased protein stability. Zinc specificity is therefore enhanced by formation of the native enzyme structure. These data suggest that the hydrophobic cluster in GAIT is important for orienting the histidine residues to stabilize metals bound with a distorted tetrahedral geometry and to destabilize the trigonal bipyramidal geometry of bound copper. Knowledge of the structural factors that lead to high metal ion specificity will aid in the design of metal ion biosensors and de nova catalytic sites.
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页码:9054 / 9062
页数:9
相关论文
共 49 条
[1]   ENGINEERING THE ZINC-BINDING SITE OF HUMAN CARBONIC ANHYDRASE-II - STRUCTURE OF THE HIS-94-]CYS APOENZYME IN A NEW CRYSTALLINE FORM [J].
ALEXANDER, RS ;
KIEFER, LL ;
FIERKE, CA ;
CHRISTIANSON, DW .
BIOCHEMISTRY, 1993, 32 (06) :1510-1518
[2]  
[Anonymous], 1964, SPECIAL PUBLICATION
[3]  
ARMSTRONG JM, 1966, J BIOL CHEM, V241, P5137
[4]   CHARACTERIZATION OF COBALT(II) BOVINE CARBONIC-ANHYDRASE AND OF ITS DERIVATIVES [J].
BERTINI, I ;
CANTI, G ;
LUCHINAT, C ;
SCOZZAFAVA, A .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1978, 100 (15) :4873-4877
[5]   MICRO-METHOD FOR THE MEASUREMENT OF CARBONIC-ANHYDRASE ACTIVITY IN CELLULAR HOMOGENATES [J].
BRION, LP ;
SCHWARTZ, JH ;
ZAVILOWITZ, BJ ;
SCHWARTZ, GJ .
ANALYTICAL BIOCHEMISTRY, 1988, 175 (01) :289-297
[6]   Carbonic anhydrase: Evolution of the zinc binding site by nature and by design [J].
Christianson, DW ;
Fierke, CA .
ACCOUNTS OF CHEMICAL RESEARCH, 1996, 29 (07) :331-339
[7]  
DONOVAN JW, 1969, J BIOL CHEM, V244, P1961
[8]  
EDSALL JT, 1966, BIOCHEM Z, V345, P9
[9]   SOLVATION ENERGY IN PROTEIN FOLDING AND BINDING [J].
EISENBERG, D ;
MCLACHLAN, AD .
NATURE, 1986, 319 (6050) :199-203
[10]  
FAUCHERE JL, 1983, EUR J MED CHEM, V18, P369