UNILATERAL AMINOACYLATION SPECIFICITY BETWEEN BOVINE MITOCHONDRIA AND EUBACTERIA

被引:58
作者
KUMAZAWA, Y
HIMENO, H
MIURA, KI
WATANABE, K
机构
[1] TOKYO INST TECHNOL, DEPT BIOL SCI, MIDORI KU, YOKOHAMA, KANAGAWA 227, JAPAN
[2] INST SPACE & ASTRONAUT SCI, KANAGAWA 229, JAPAN
[3] UNIV TOKYO, FAC ENGN, DEPT IND CHEM, BUNKYO KU, TOKYO 113, JAPAN
关键词
D O I
10.1093/oxfordjournals.jbchem.a123397
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 present study shows unilateral aminoacylation specificity between bovine mitochondria and eubacteria (Escherichia coli and Thermus thermophilus) in five amino acid-specific aminoacylation systems. Mitochondrial synthetases were capable of charging eubacterial tRNA as well as mitochondrial tRNA, whereas eubacterial synthetases did not efficiently charge mitochondrial tRNA. Mitochondrial phenylalanyl-, threonyl-, arginyl-, and lysyl-tRNA synthetases were shown to charge and discriminate cognate E. coli tRNA species from noncognate ones strictly, as did the corresponding E. coli synthetases. By contrast, mitochondrial seryl-tRNA synthetase not only charged cognate E. coli serine tRNA species but also extensively misacylated noncognate E. coli tRNA species. These results suggest a certain conservation of tRNA recognition mechanisms between the mitochondrial and E. coli aminonoacyl-tRNA synthetases in that anticodon sequences are most likely to be recognized by the former four synthetases, but not sufficiently by the seryl-tRNA synthetase. The unilaterality in aminoacylation may imply that tRNA recognition mechanisms of the mitochondrial synthetases have evolved to be, to some extent, simpler than their eubacterial counterparts in response to simplifications in the species-number and the structural elements of animal mitochondrial tRNAs.
引用
收藏
页码:421 / 427
页数:7
相关论文
共 35 条
[1]   COMPLETE SEQUENCE OF BOVINE MITOCHONDRIAL-DNA - CONSERVED FEATURES OF THE MAMMALIAN MITOCHONDRIAL GENOME [J].
ANDERSON, S ;
DEBRUIJN, MHL ;
COULSON, AR ;
EPERON, IC ;
SANGER, F ;
YOUNG, IG .
JOURNAL OF MOLECULAR BIOLOGY, 1982, 156 (04) :683-717
[2]   CONFORMATIONAL ACTIVATION OF AMINOACYL-TRANSFER RNA-SYNTHETASES UPON BINDING OF TRANSFER-RNA - A FACET OF A MULTISTEP ADAPTATION PROCESS LEADING TO THE OPTIMAL BIOLOGICAL-ACTIVITY [J].
BACHA, H ;
RENAUD, M ;
LEFEVRE, JF ;
REMY, P .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1982, 127 (01) :87-95
[3]   MITOCHONDRIAL RIBOSOMES [J].
BORST, P ;
GRIVELL, LA .
FEBS LETTERS, 1971, 13 (02) :73-&
[4]   STRUCTURE OF TRANSFER-RNA MOLECULES CONTAINING LONG VARIABLE LOOP [J].
BRENNAN, T ;
SUNDARALINGAM, M .
NUCLEIC ACIDS RESEARCH, 1976, 3 (11) :3235-3251
[5]   MITOCHONDRIAL-DNA SEQUENCES OF PRIMATES - TEMPO AND MODE OF EVOLUTION [J].
BROWN, WM ;
PRAGER, EM ;
WANG, A ;
WILSON, AC .
JOURNAL OF MOLECULAR EVOLUTION, 1982, 18 (04) :225-239
[6]   INTERACTION OF BOVINE MITOCHONDRIAL RIBOSOMES WITH ESCHERICHIA-COLI INITIATION FACTOR-3(IF3) [J].
DENSLOW, ND ;
LICATA, VJ ;
GUALERZI, C ;
OBRIEN, TW .
BIOCHEMISTRY, 1988, 27 (09) :3521-3527
[7]  
EBERLY SL, 1985, J BIOL CHEM, V260, P8721
[8]   MITOCHONDRIAL PEPTIDE CHAIN ELONGATION FACTORS FROM NEUROSPORA-CRASSA [J].
GRANDI, M ;
KUNTZEL, H .
FEBS LETTERS, 1970, 10 (01) :25-&
[9]   CONFORMATION CHANGE OF TRANSFER RNAGLU IN THE COMPLEX WITH GLUTAMYL-TRANSFER RNA-SYNTHETASE IS REQUIRED FOR THE SPECIFIC BINDING OF L-GLUTAMATE [J].
HARAYOKOYAMA, M ;
YOKOYAMA, S ;
MIYAZAWA, T .
BIOCHEMISTRY, 1986, 25 (22) :7031-7036
[10]   MECHANISM OF DISCRIMINATION BETWEEN COGNATE AND NON-COGNATE TRANSFER-RNAS BY PHENYLALANYL-TRANSFER-RNA SYNTHETASE FROM YEAST [J].
KRAUSS, G ;
RIESNER, D ;
MAASS, G .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1976, 68 (01) :81-93