STRUCTURAL BASIS OF INHIBITOR AFFINITY TO VARIANTS OF HUMAN CARBONIC-ANHYDRASE-II

被引:64
作者
NAIR, SK
KREBS, JF
CHRISTIANSON, DW
FIERKE, CA
机构
[1] UNIV PENN, DEPT CHEM, PHILADELPHIA, PA 19104 USA
[2] DUKE UNIV, MED CTR, DEPT BIOCHEM, DURHAM, NC 27710 USA
关键词
D O I
10.1021/bi00012a016
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 activities and structures of certain L198 variants of human carbonic anhydrase II (CAII) have been reported recently [Krebs, J. F., Rana, F., Dluhy, R. A., and Fierke, C. A. (1993) Biochemistry 32, 4496-4505; Nair, S. K., and Christianson, D. W. (1993) Biochemistry 32, 4506-4514]. In order to understand the structural basis of enzyme-inhibitor affinity, we now report the dissociation rate and equilibrium constants for acetazolamide and dansylamide binding to 13 variants of CAII containing substituted amino acids at position 198. These data indicate that inhibitor affinity is modulated by the hydrophobicity and charge of the 198 side chain. Furthermore, we have determined crystal structures of L198R, L198E, and L198F CAIIs complexed with the transition state analog acetazolamide. The substituted benzyl side chain of L198F CAII does not occlude the substrate association pocket, and it is therefore not surprising that this substitution has minimal effects on catalytic properties and inhibitor binding. Nevertheless, the F198 side chain undergoes a significant conformational change in order to accommodate the binding of acetazolamide; the same behavior is observed for the engineered side chain of L198R CAII. In contrast, the engineered side chain of L198E GAIT does not alter its conformation upon inhibitor binding. We conclude that the mobility and hydrophobicity of residue 198 side chains affect enzyme-inhibitor (and enzyme-substrate) affinity, and these structure-function relationships are important for understanding the behavior of carbonic anhydrase isozyme III, which bears a wild-type F198 side chain. Finally, these structures provide a foundation for modulating inhibitor affinity from the perspective of the enzyme rather than the inhibitor; this approach may be of use in the design of CAII-based zinc biosensors.
引用
收藏
页码:3981 / 3989
页数:9
相关论文
共 65 条
[11]   INTERACTION AND INFLUENCE OF PHENYLALANINE-198 AND THREONINE-199 ON CATALYSIS BY HUMAN CARBONIC ANHYDRASE-III [J].
CHEN, X ;
TU, CK ;
LOGRASSO, PV ;
LAIPIS, PJ ;
SILVERMAN, DN .
BIOCHEMISTRY, 1993, 32 (31) :7861-7865
[12]  
CHRISTIANSON DW, 1991, ADV PROTEIN CHEM, V42, P281
[13]  
COLEMAN JE, 1967, J BIOL CHEM, V242, P5212
[14]   HUMAN CARBONIC ANHYDRASE . PROTEIN CONFORMATION AND METAL ION BINDING [J].
COLEMAN, JE .
BIOCHEMISTRY, 1965, 4 (12) :2644-&
[15]  
Coleman JE., 1986, ZINC ENZYMES, P49
[16]   PROTEIN, DNA, AND VIRUS CRYSTALLOGRAPHY WITH A FOCUSED IMAGING PROPORTIONAL COUNTER [J].
DURBIN, RM ;
BURNS, R ;
MOULAI, J ;
METCALF, P ;
FREYMANN, D ;
BLUM, M ;
ANDERSON, JE ;
HARRISON, SC ;
WILEY, DC .
SCIENCE, 1986, 232 (4754) :1127-1132
[17]   REFINED STRUCTURE OF BOVINE CARBONIC ANHYDRASE-III AT 2.0 ANGSTROM RESOLUTION [J].
ERIKSSON, AE ;
LILJAS, A .
PROTEINS-STRUCTURE FUNCTION AND GENETICS, 1993, 16 (01) :29-42
[18]   REFINED STRUCTURE OF HUMAN CARBONIC ANHYDRASE-II AT 2.0-A RESOLUTION [J].
ERIKSSON, AE ;
JONES, TA ;
LILJAS, A .
PROTEINS-STRUCTURE FUNCTION AND GENETICS, 1988, 4 (04) :274-282
[19]  
Eriksson E. A., 1986, ZINC ENZYMES, P317
[20]  
FAUCHERE JL, 1983, EUR J MED CHEM, V18, P369