Literature DB >> 32041795

Archaeosine Modification of Archaeal tRNA: Role in Structural Stabilization.

Ben Turner1, Brett W Burkhart2, Katrin Weidenbach3, Robert Ross4, Patrick A Limbach4, Ruth A Schmitz3, Valérie de Crécy-Lagard5, Kenneth M Stedman6, Thomas J Santangelo2, Dirk Iwata-Reuyl7.   

Abstract

Archaeosine (G+) is a structurally complex modified nucleoside found quasi-universally in the tRNA of Archaea and located at position 15 in the dihydrouridine loop, a site not modified in any tRNA outside the Archaea G+ is characterized by an unusual 7-deazaguanosine core structure with a formamidine group at the 7-position. The location of G+ at position 15, coupled with its novel molecular structure, led to a hypothesis that G+ stabilizes tRNA tertiary structure through several distinct mechanisms. To test whether G+ contributes to tRNA stability and define the biological role of G+, we investigated the consequences of introducing targeted mutations that disrupt the biosynthesis of G+ into the genome of the hyperthermophilic archaeon Thermococcus kodakarensis and the mesophilic archaeon Methanosarcina mazei, resulting in modification of the tRNA with the G+ precursor 7-cyano-7-deazaguansine (preQ0) (deletion of arcS) or no modification at position 15 (deletion of tgtA). Assays of tRNA stability from in vitro-prepared and enzymatically modified tRNA transcripts, as well as tRNA isolated from the T. kodakarensis mutant strains, demonstrate that G+ at position 15 imparts stability to tRNAs that varies depending on the overall modification state of the tRNA and the concentration of magnesium chloride and that when absent results in profound deficiencies in the thermophily of T. kodakarensis IMPORTANCE Archaeosine is ubiquitous in archaeal tRNA, where it is located at position 15. Based on its molecular structure, it was proposed to stabilize tRNA, and we show that loss of archaeosine in Thermococcus kodakarensis results in a strong temperature-sensitive phenotype, while there is no detectable phenotype when it is lost in Methanosarcina mazei Measurements of tRNA stability show that archaeosine stabilizes the tRNA structure but that this effect is much greater when it is present in otherwise unmodified tRNA transcripts than in the context of fully modified tRNA, suggesting that it may be especially important during the early stages of tRNA processing and maturation in thermophiles. Our results demonstrate how small changes in the stability of structural RNAs can be manifested in significant biological-fitness changes.
Copyright © 2020 American Society for Microbiology.

Entities:  

Keywords:  Methanosarcinazzm321990; Thermococcuszzm321990; archaeosine; tRNA modification

Mesh:

Substances:

Year:  2020        PMID: 32041795      PMCID: PMC7099136          DOI: 10.1128/JB.00748-19

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  57 in total

1.  Conformation in solution of yeast tRNA(Asp) transcripts deprived of modified nucleotides.

Authors:  V Perret; A Garcia; J Puglisi; H Grosjean; J P Ebel; C Florentz; R Giegé
Journal:  Biochimie       Date:  1990-10       Impact factor: 4.079

2.  From cyclohydrolase to oxidoreductase: discovery of nitrile reductase activity in a common fold.

Authors:  Steven G Van Lanen; John S Reader; Manal A Swairjo; Valérie de Crécy-Lagard; Bobby Lee; Dirk Iwata-Reuyl
Journal:  Proc Natl Acad Sci U S A       Date:  2005-03-14       Impact factor: 11.205

3.  Hypermodification of tRNA in Thermophilic archaea. Cloning, overexpression, and characterization of tRNA-guanine transglycosylase from Methanococcus jannaschii.

Authors:  Y Bai; D T Fox; J A Lacy; S G Van Lanen; D Iwata-Reuyl
Journal:  J Biol Chem       Date:  2000-09-15       Impact factor: 5.157

4.  vacC, a virulence-associated chromosomal locus of Shigella flexneri, is homologous to tgt, a gene encoding tRNA-guanine transglycosylase (Tgt) of Escherichia coli K-12.

Authors:  J M Durand; N Okada; T Tobe; M Watarai; I Fukuda; T Suzuki; N Nakata; K Komatsu; M Yoshikawa; C Sasakawa
Journal:  J Bacteriol       Date:  1994-08       Impact factor: 3.490

5.  Zinc-independent folate biosynthesis: genetic, biochemical, and structural investigations reveal new metal dependence for GTP cyclohydrolase IB.

Authors:  Banumathi Sankaran; Shilah A Bonnett; Kinjal Shah; Scott Gabriel; Robert Reddy; Paul Schimmel; Dmitry A Rodionov; Valérie de Crécy-Lagard; John D Helmann; Dirk Iwata-Reuyl; Manal A Swairjo
Journal:  J Bacteriol       Date:  2009-09-18       Impact factor: 3.490

6.  The role of posttranscriptional modification in stabilization of transfer RNA from hyperthermophiles.

Authors:  J A Kowalak; J J Dalluge; J A McCloskey; K O Stetter
Journal:  Biochemistry       Date:  1994-06-28       Impact factor: 3.162

7.  Correlation between the stability of tRNA tertiary structure and the catalytic efficiency of a tRNA-modifying enzyme, archaeal tRNA-guanine transglycosylase.

Authors:  Yuichiro Nomura; Satoshi Ohno; Kazuya Nishikawa; Takashi Yokogawa
Journal:  Genes Cells       Date:  2015-12-10       Impact factor: 1.891

Review 8.  tRNA Modifications: Impact on Structure and Thermal Adaptation.

Authors:  Christian Lorenz; Christina E Lünse; Mario Mörl
Journal:  Biomolecules       Date:  2017-04-04

9.  Random mutagenesis of a hyperthermophilic archaeon identified tRNA modifications associated with cellular hyperthermotolerance.

Authors:  Izumi Orita; Ryohei Futatsuishi; Kyoko Adachi; Takayuki Ohira; Akira Kaneko; Keiichi Minowa; Miho Suzuki; Takeshi Tamura; Satoshi Nakamura; Tadayuki Imanaka; Tsutomu Suzuki; Toshiaki Fukui
Journal:  Nucleic Acids Res       Date:  2019-02-28       Impact factor: 16.971

10.  Global translational impacts of the loss of the tRNA modification t6A in yeast.

Authors:  Patrick C Thiaville; Rachel Legendre; Diego Rojas-Benítez; Agnès Baudin-Baillieu; Isabelle Hatin; Guilhem Chalancon; Alvaro Glavic; Olivier Namy; Valérie de Crécy-Lagard
Journal:  Microb Cell       Date:  2016-01-01
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  3 in total

1.  Reversible RNA phosphorylation stabilizes tRNA for cellular thermotolerance.

Authors:  Takayuki Ohira; Keiichi Minowa; Kei Sugiyama; Seisuke Yamashita; Yuriko Sakaguchi; Kenjyo Miyauchi; Ryo Noguchi; Akira Kaneko; Izumi Orita; Toshiaki Fukui; Kozo Tomita; Tsutomu Suzuki
Journal:  Nature       Date:  2022-04-27       Impact factor: 69.504

2.  RaFAH: Host prediction for viruses of Bacteria and Archaea based on protein content.

Authors:  Felipe Hernandes Coutinho; Asier Zaragoza-Solas; Mario López-Pérez; Jakub Barylski; Andrzej Zielezinski; Bas E Dutilh; Robert Edwards; Francisco Rodriguez-Valera
Journal:  Patterns (N Y)       Date:  2021-06-15

Review 3.  Extracurricular Functions of tRNA Modifications in Microorganisms.

Authors:  Ashley M Edwards; Maame A Addo; Patricia C Dos Santos
Journal:  Genes (Basel)       Date:  2020-08-07       Impact factor: 4.096

  3 in total

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