SITE-SPECIFIC MUTAGENESIS OF ESCHERICHIA-COLI ASPARAGINASE-II - NONE OF THE 3 HISTIDINE-RESIDUES IS REQUIRED FOR CATALYSIS

被引:34
作者
WEHNER, A
HARMS, E
JENNINGS, MP
BEACHAM, IR
DERST, C
BAST, P
ROHM, KH
机构
[1] UNIV MARBURG,INST PHYSIOL CHEM,W-3550 MARBURG,GERMANY
[2] PURDUE UNIV,DEPT BIOL SCI,W LAFAYETTE,IN 47907
[3] GRIFFITH UNIV,DIV SCI & TECHNOL,BRISBANE,AUSTRALIA
[4] UNIV MARBURG,CTR CHEM,W-3550 MARBURG,GERMANY
来源
EUROPEAN JOURNAL OF BIOCHEMISTRY | 1992年 / 208卷 / 02期
关键词
D O I
10.1111/j.1432-1033.1992.tb17210.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
Site-specific mutagenesis was used to replace the three histidine residues of Escherichia coli asparaginase II (EcA2) with other amino acids. The following enzyme variants were studied: [H87A]EcA2, [H87L]EcA2, [H87K]EcA2, [H183L]EcA2 and [H197L]EcA2. None of the mutations substantially affected the K(m) for L-aspartic acid beta-hydroxamate or impaired aspartate binding. The relative activities towards L-Asn, L-Gln, and I-aspartic acid beta-hydroxamate were reduced to the same extent, with residual activities exceeding 10% of the wild-type values. These data do not support a number of previous reports suggesting that histidine residues are essential for catalysis. Spectroscopic characterization of the modified enzymes allowed the unequivocal assignment of the histidine resonances in H-1-NMR spectra of asparaginase II. A histidine signal previously shown to disappear upon aspartate binding is due to His183, not to the highly conserved His87. The fact that [H183L]EcA2 has normal activity but greatly reduced stability in the presence of urea suggests that His183 is important for the stabilization of the native asparaginase tetramer. H-1-NMR and fluorescence spectroscopy indicate that His87 is located in the interior of the protein, possibly adjacent to the active site.
引用
收藏
页码:475 / 480
页数:6
相关论文
共 27 条
[1]   ON THE ROLE OF HISTIDINE AND TYROSINE RESIDUES IN ESCHERICHIA-COLI ASPARAGINASE - CHEMICAL MODIFICATION AND H-1-NUCLEAR MAGNETIC-RESONANCE STUDIES [J].
BAGERT, U ;
ROHM, KH .
BIOCHIMICA ET BIOPHYSICA ACTA, 1989, 999 (01) :36-41
[2]  
Bergmeyer HU, 1974, METHODEN ENZYMATISCH
[3]   ROLE OF A BURIED ACID GROUP IN MECHANISM OF ACTION OF CHYMOTRYPSIN [J].
BLOW, DM ;
BIRKTOFT, JJ ;
HARTLEY, BS .
NATURE, 1969, 221 (5178) :337-&
[4]   DISSECTING THE CATALYTIC TRIAD OF A SERINE PROTEASE [J].
CARTER, P ;
WELLS, JA .
NATURE, 1988, 332 (6164) :564-568
[5]   4-AGENT INDUCTION AND INTENSIVE ASPARAGINASE THERAPY FOR TREATMENT OF CHILDHOOD ACUTE LYMPHOBLASTIC-LEUKEMIA [J].
CLAVELL, LA ;
GELBER, RD ;
COHEN, HJ ;
HITCHCOCKBRYAN, S ;
CASSADY, JR ;
TARBELL, NJ ;
BLATTNER, SR ;
TANTRAVAHI, R ;
LEAVITT, P ;
SALLAN, SE .
NEW ENGLAND JOURNAL OF MEDICINE, 1986, 315 (11) :657-663
[6]  
DILELLA AG, 1983, METHOD ENZYMOL, V99, P447
[7]  
EHRMAN M, 1971, J BIOL CHEM, V246, P88
[8]   SPECTROPHOTOMETRIC METHOD FOR DETERMINING HYDROXYLAMINE REDUCTASE ACTIVITY IN HIGHER PLANTS [J].
FREAR, DS ;
BURRELL, RC .
ANALYTICAL CHEMISTRY, 1955, 27 (10) :1664-1665
[9]   A CATALYTIC ROLE FOR THREONINE-12 OF ESCHERICHIA-COLI ASPARAGINASE-II AS ESTABLISHED BY SITE-DIRECTED MUTAGENESIS [J].
HARMS, E ;
WEHNER, A ;
AUNG, HP ;
ROHM, KH .
FEBS LETTERS, 1991, 285 (01) :55-58
[10]  
Harms E, 1991, Protein Expr Purif, V2, P144, DOI 10.1016/1046-5928(91)90063-O