Potassium functionally replaces the second lysine of the KMSKS signature sequence in human tyrosyl-tRNA synthetase.

被引:21
作者
Austin, J [1 ]
First, EA [1 ]
机构
[1] Louisiana State Univ, Hlth Sci Ctr, Dept Biochem & Mol Biol, Shreveport, LA 71130 USA
关键词
D O I
10.1074/jbc.M201923200
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
Unlike their bacterial homologues, a number of eukaryotic tyrosyl-tRNA synthetases require potassium to catalyze the aminoacylation reaction. In addition, the second lysine in the class I-specific KMSKS signature motif is absent from all known eukaryotic tyrosyl-tRNA synthetase sequences, except those of higher plants. This lysine, which is the most highly conserved residue in the class I aminoacyl-tRNA synthetase family, has been shown to interact with the pyrophosphate moiety of the ATP substrate in the Bacillus stearothermophilus tyrosyl-tRNA synthetase. Equilibrium dialysis and pre-steady-state kinetic analyses were used to determine the role that potassium plays in the tyrosine activation reaction in the human tyrosyl-tRNA synthetase and whether it can be replaced by any of the other alkali metals. Kinetic analyses indicate that potassium interacts with the pyrophosphate moiety of ATP, stabilizing the E.Tyr.ATP and E.[Tyr-ATP](double dagger) complexes by 2.3 and 4.3 kcal/mol, respectively. Potassium also appears to stabilize the asymmetric conformation of the human tyrosyl-tRNA synthetase dimer by 0.7 kcal/mol. Rubidium is the only other alkali metal that can replace potassium in catalyzing tyrosine activation, although the forward rate constant is half of that observed when potassium is present. The above results are consistent with the hypothesis that potassium functionally replaces the second lysine in the KMSKS signature sequence. Possible implications of these results with respect to the design of antibiotics that target bacterial aminoacyl-tRNA synthetases are discussed.
引用
收藏
页码:20243 / 20248
页数:6
相关论文
共 34 条
[21]   TYROSYL TRANSFER RIBONUCLEIC-ACID SYNTHETASE FROM BACILLUS-STEAROTHERMOPHILUS - PREPARATION AND PROPERTIES OF CRYSTALLIZABLE ENZYME [J].
KOCH, GLE .
BIOCHEMISTRY, 1974, 13 (11) :2307-2312
[22]  
LODISH H, 1995, MOL CELL BIOL, P640
[23]   PROBING HISTIDINE SUBSTRATE INTERACTIONS IN TYROSYL-TRANSFER RNA-SYNTHETASE USING ASPARAGINE AND GLUTAMINE REPLACEMENTS [J].
LOWE, DM ;
FERSHT, AR ;
WILKINSON, AJ ;
CARTER, P ;
WINTER, G .
BIOCHEMISTRY, 1985, 24 (19) :5106-5109
[24]  
QUIVY JP, 1988, J BIOL CHEM, V263, P15277
[25]   Genomics-based identification of targets in pathogenic bacteria for potential therapeutic and diagnostic use [J].
Raczniak, G ;
Ibba, M ;
Söll, D .
TOXICOLOGY, 2001, 160 (1-3) :181-189
[26]   THE ATTRACTIONS OF PROTEINS FOR SMALL MOLECULES AND IONS [J].
SCATCHARD, G .
ANNALS OF THE NEW YORK ACADEMY OF SCIENCES, 1949, 51 (04) :660-672
[27]   SB-219383, a novel tyrosyl tRNA synthetase inhibitor from a Micromonospora sp I.: Fermentation, isolation and properties [J].
Stefanska, AL ;
Coates, NJ ;
Mensah, LM ;
Pope, AJ ;
Ready, SJ ;
Warr, SR .
JOURNAL OF ANTIBIOTICS, 2000, 53 (04) :345-350
[28]   SB-203207 and SB-203208, two novel isoleucyl tRNA synthetase inhibitors from a Streptomyces sp I.: Fermentation, isolation and properties [J].
Stefanska, AL ;
Cassels, R ;
Ready, SJ ;
Warr, SR .
JOURNAL OF ANTIBIOTICS, 2000, 53 (04) :357-363
[29]   A potent seryl tRNA synthetase inhibitor SB-217452 isolated from a Streptomyces species [J].
Stefanska, AL ;
Fulston, M ;
Houge-Frydrych, CSV ;
Jones, JJ ;
Warr, SR .
JOURNAL OF ANTIBIOTICS, 2000, 53 (12) :1346-1353
[30]   Genetic code in evolution: switching species-specific aminoacylation with a peptide transplant [J].
Wakasugi, K ;
Quinn, CL ;
Tao, NJ ;
Schimmel, P .
EMBO JOURNAL, 1998, 17 (01) :297-305