Literature DB >> 2449804

Dynamic structures and functions of transfer ribonucleic acids from extreme thermophiles.

S Yokoyama1, K Watanabe, T Miyazawa.   

Abstract

tRNA species from an extreme thermophile T. thermophilus that grows up to 85 degrees C have been found to be more thermostable than those from moderate thermophiles and mesophiles. Such thermostability of T. thermophilus tRNA species is partly due to the high contents of G.C base pairs in the stem regions. In addition, a novel modified nucleoside s2T has been found that substitutes T in position 54. The extent of 2-thiolation of T(54) has been found to depend on environmental temperatures from 50 to 80 degrees C. Two tRNA(Ile) species have been isolated from T. thermophilus HB8, tRNA(1aIle) with s2T(54) and tRNA(1bIle) with T(54), which have the identical nucleotide sequence except for position 54. However, the melting temperature of tRNA(1aIle) is higher by 3 degrees C than that of tRNA(1bIle). This clearly indicates that the 2-thiolation of T(54) contributes directly to the thermostability of T. thermophilus tRNA species. Proton NMR analyses have shown that the nucleoside s2T is "rigid" and predominantly takes the C3'-endo-gg-anti form of A-RNA, because of the steric effect of the bulky 2-thiocarbonyl groups and the 2'-hydroxyl group. Thus, the inherent rigidity of s2T in position 54 significantly enhances the stability of the tertiary structure of tRNA. In protein synthesis of T. thermophilus, s2T(54)-bearing tRNA and T(54)-bearing tRNA species are selectively utilized depending on environmental temperature. In the anticodons of major tRNA species from T. thermophilus, G or C exclusively appears in the first position, and GGN and CCN are favored over synonymous GCN or CGN. These characteristic anticodon sequences correspond to the characteristic codon usage in thermophile genes.

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Year:  1987        PMID: 2449804     DOI: 10.1016/0065-227x(87)90006-2

Source DB:  PubMed          Journal:  Adv Biophys        ISSN: 0065-227X


  28 in total

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Authors:  T Ueda; H Tohda; N Chikazumi; F Eckstein; K Watanabe
Journal:  Nucleic Acids Res       Date:  1991-02-11       Impact factor: 16.971

2.  Identification of the enzyme responsible for N1-methylation of pseudouridine 54 in archaeal tRNAs.

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3.  Transfer RNA-like structure of the human Alu family: implications of its generation mechanism and possible functions.

Authors:  N Okada
Journal:  J Mol Evol       Date:  1990-12       Impact factor: 2.395

4.  Distinct Modified Nucleosides in tRNATrp from the Hyperthermophilic Archaeon Thermococcus kodakarensis and Requirement of tRNA m2G10/m2 2G10 Methyltransferase (Archaeal Trm11) for Survival at High Temperatures.

Authors:  Akira Hirata; Takeo Suzuki; Tomoko Nagano; Daishiro Fujii; Mizuki Okamoto; Manaka Sora; Todd M Lowe; Tamotsu Kanai; Haruyuki Atomi; Tsutomu Suzuki; Hiroyuki Hori
Journal:  J Bacteriol       Date:  2019-10-04       Impact factor: 3.490

5.  Cloning and characterization of tRNA (m1A58) methyltransferase (TrmI) from Thermus thermophilus HB27, a protein required for cell growth at extreme temperatures.

Authors:  Louis Droogmans; Martine Roovers; Janusz M Bujnicki; Catherine Tricot; Thomas Hartsch; Victor Stalon; Henri Grosjean
Journal:  Nucleic Acids Res       Date:  2003-04-15       Impact factor: 16.971

6.  Posttranslational modification of cellular proteins by a ubiquitin-like protein in bacteria.

Authors:  Naoki Shigi
Journal:  J Biol Chem       Date:  2012-03-30       Impact factor: 5.157

7.  Trmt61B is a methyltransferase responsible for 1-methyladenosine at position 58 of human mitochondrial tRNAs.

Authors:  Takeshi Chujo; Tsutomu Suzuki
Journal:  RNA       Date:  2012-10-24       Impact factor: 4.942

8.  The physiology and habitat of the last universal common ancestor.

Authors:  Madeline C Weiss; Filipa L Sousa; Natalia Mrnjavac; Sinje Neukirchen; Mayo Roettger; Shijulal Nelson-Sathi; William F Martin
Journal:  Nat Microbiol       Date:  2016-07-25       Impact factor: 17.745

9.  Structure determination of two new amino acid-containing derivatives of adenosine from tRNA of thermophilic bacteria and archaea.

Authors:  D M Reddy; P F Crain; C G Edmonds; R Gupta; T Hashizume; K O Stetter; F Widdel; J A McCloskey
Journal:  Nucleic Acids Res       Date:  1992-11-11       Impact factor: 16.971

10.  Common thiolation mechanism in the biosynthesis of tRNA thiouridine and sulphur-containing cofactors.

Authors:  Naoki Shigi; Yuriko Sakaguchi; Shin-Ichi Asai; Tsutomu Suzuki; Kimitsuna Watanabe
Journal:  EMBO J       Date:  2008-11-27       Impact factor: 11.598

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