The presence of codon-anticodon pairs in the acceptor stem of tRNAs

被引:85
作者
Rodin, S
Rodin, A
Ohno, S
机构
[1] RUSSIAN ACAD SCI,INST CYTOL & GENET,SIBERIAN BRANCH,NOVOSIBIRSK 630090,RUSSIA
[2] UNIV TEXAS,CTR HUMAN GENET,HOUSTON,TX 77225
[3] UNIV TEXAS,SPH,CTR HUMAN GENET,HOUSTON,TX 77225
关键词
RNA world; double-stranded code; complementary tRNAs; aminoacyl-tRNA synthetases;
D O I
10.1073/pnas.93.10.4537
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
A total of 1268 available (excluding mitochondrial) tRNA sequences was used to reconstruct the common consensus image of their acceptor domains. Its structure appeared as a 11-bp-long double-stranded palindrome with complementary triplets in the center, each flanked by the 3'-ACCD and NGGU-5' motifs on each strand (D, base determinator). The palindrome readily extends up to the modern tRNA-like cloverleaf passing through an intermediate hairpin having in the center the single-stranded triplet, in supplement to its double-stranded precursor. The latter might represent an original anticodon-codon pair mapped at 1-2-3 positions of the present-day tRNA accepters, This conclusion is supported by the striking correlation: in pairs of consensus tRNAs with complementary anticodons, their bases at the 2nd position of the acceptor stem were also complementary. Accordingly, inverse complementarity was also evident at the 71st position of the acceptor stem, With a single exception (tRNA(Phe)-tRNA(Glu) pair), the parallelism is especially impressive for the pairs of tRNAs recognized by aminoacyl-tRNA synthetases (aaRS) from the opposite classes. The above complementarity still doubly presented at the key central position of real single-stranded anticodons and their hypothetical double-stranded precursors is consistent with our previous data pointing to the double-strand use of ancient RNAs in the origin of the main actors in translation-tRNAs with complementary anticodons and the two classes of aaRS.
引用
收藏
页码:4537 / 4542
页数:6
相关论文
共 38 条
[1]  
BENNER SA, 1993, RNA WORLD, P27
[2]   TRANSFER-RNA RIBOSOMAL-RNA SEQUENCE HOMOLOGIES - EVIDENCE FOR AN ANCIENT MODULAR FORMAT SHARED BY TRANSFER-RNAS AND RIBOSOMAL-RNAS [J].
BLOCH, DP ;
MCARTHUR, B ;
MIRROP, S .
BIOSYSTEMS, 1985, 17 (03) :209-225
[3]   ORIGIN OF GENETIC CODE [J].
CRICK, FHC .
JOURNAL OF MOLECULAR BIOLOGY, 1968, 38 (03) :367-&
[4]   TRANSFER-RNAS - THE 2ND GENETIC-CODE [J].
DEDUVE, C .
NATURE, 1988, 333 (6169) :117-118
[5]   THE PHYLOGENY OF TRANSFER-RNAS SEEMS TO CONFIRM THE PREDICTIONS OF THE COEVOLUTION THEORY OF THE ORIGIN OF THE GENETIC-CODE [J].
DIGIULIO, M .
ORIGINS OF LIFE AND EVOLUTION OF THE BIOSPHERE, 1995, 25 (06) :549-564
[6]   PARTITION OF TRANSFER-RNA SYNTHETASES INTO 2 CLASSES BASED ON MUTUALLY EXCLUSIVE SETS OF SEQUENCE MOTIFS [J].
ERIANI, G ;
DELARUE, M ;
POCH, O ;
GANGLOFF, J ;
MORAS, D .
NATURE, 1990, 347 (6289) :203-206
[7]  
ERIANI G, 1995, J MOL EVOL, V40, P499
[8]  
GUO G, 1992, GENE DEV, V6, P1357
[9]  
HARTMAN H, 1995, J MOL EVOL, V40, P541
[10]   ORIGIN OF GENETIC CODE - TESTABLE HYPOTHESIS BASED ON TRANSFER-RNA STRUCTURE, SEQUENCE, AND KINETIC PROOFREADING [J].
HOPFIELD, JJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1978, 75 (09) :4334-4338