Quantitative analysis of the effect of salt concentration on enzymatic catalysis

被引:80
作者
Park, C
Raines, RT
机构
[1] Univ Wisconsin, Dept Biochem, Madison, WI 53706 USA
[2] Univ Wisconsin, Dept Chem, Madison, WI 53706 USA
关键词
D O I
10.1021/ja0164834
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Like pH, salt concentration can have a dramatic effect on enzymatic catalysis. Here, a general equation is derived for the quantitative analysis of salt-rate profiles: k(cat)/K-M = (k(cat)/K-M)(MAX)/[1 + ([Na+]/K-Na(+))(n')], where (k(cat)/K-M)(MAX) is the physical limit of k(cat)/K-M, K-Na(+) is the salt concentration at which k(cat)/K-M = (k(cat)/K-M)(MAX)/2, and -n' is the slope of the linear region in a plot of log(k(cat)/K-M) versus log [Na+]. The value of n' is of special utility, as it reflects the contribution of Coulombic interactions to the uniform binding of the bound states. This equation was used to analyze salt effects on catalysis by ribonuclease A (RNase A), which is a cationic enzyme that catalyzes the cleavage of an anionic substrate, RNA, with k(cat)/K-M values that can exceed 10(9) M-1 s(-1). Lys7, Arg10, and Lys66 comprise enzymic subsites that are remote from the active site. Replacing Lys7. Arg10, and Lys66 with alanine decreases the charge on the enzyme as well as the value of n'. Likewise, decreasing the number of phosphoryl groups in the substrate decreases the value of n. Replacing Lys41, a key active-site residue, with arginine creates a catalyst that is limited by the chemical conversion of substrate to product. This change increases the value of n', as expected for a catalyst that is more sensitive to changes in the binding of the chemical transition state. Hence, the quantitative analysis of salt-rate profiles can provide valuable insight into the role of Coulombic interactions in enzymatic catalysis.
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页码:11472 / 11479
页数:8
相关论文
共 74 条
[1]   THE APPLICATION OF THE MARCUS RELATION TO REACTIONS IN SOLUTION [J].
ALBERY, WJ .
ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 1980, 31 :227-263
[2]   EVOLUTION OF ENZYME FUNCTION AND DEVELOPMENT OF CATALYTIC EFFICIENCY [J].
ALBERY, WJ ;
KNOWLES, JR .
BIOCHEMISTRY, 1976, 15 (25) :5631-5640
[3]   How Hofmeister ion interactions affect protein stability [J].
Baldwin, RL .
BIOPHYSICAL JOURNAL, 1996, 71 (04) :2056-2063
[4]  
BOIX E, 1994, J BIOL CHEM, V269, P2529
[5]  
BRFNSTED JN, 1928, CHEM REV, V5, P231
[6]   A SOUND BASIS FOR PH-DEPENDENT KINETIC-STUDIES ON ENZYMES [J].
BROCKLEHURST, K .
PROTEIN ENGINEERING, 1994, 7 (03) :291-299
[7]   EVOLUTIONARY OPTIMIZATION OF THE CATALYTIC EFFECTIVENESS OF AN ENZYME [J].
BURBAUM, JJ ;
RAINES, RT ;
ALBERY, WJ ;
KNOWLES, JR .
BIOCHEMISTRY, 1989, 28 (24) :9293-9305
[8]   Protein charge ladders, capillary electrophoresis, and the role of electrostatics in biomolecular recognition [J].
Carbeck, JD ;
Colton, IJ ;
Gao, JM ;
Whitesides, GM .
ACCOUNTS OF CHEMICAL RESEARCH, 1998, 31 (06) :343-350
[9]  
CLELAND WW, 1982, METHOD ENZYMOL, V87, P390
[10]   PARTITION ANALYSIS AND CONCEPT OF NET RATE CONSTANTS AS TOOLS IN ENZYME-KINETICS [J].
CLELAND, WW .
BIOCHEMISTRY, 1975, 14 (14) :3220-3224