Literature DB >> 15037773

The Neurospora crassa CYT-18 protein C-terminal RNA-binding domain helps stabilize interdomain tertiary interactions in group I introns.

Xin Chen1, Georg Mohr, Alan M Lambowitz.   

Abstract

The Neurospora crassa mitochondrial tyrosyl-tRNA synthetase (CYT-18 protein) promotes the splicing of group I introns by stabilizing the catalytically active RNA structure. To accomplish this, CYT-18 recognizes conserved structural features of group I intron RNAs using regions of the N-terminal nucleotide-binding fold, intermediate alpha-helical, and C-terminal RNA-binding domains that also function in binding tRNA(Tyr). Curiously, whereas the splicing of the N. crassa mitochondrial large subunit rRNA intron is completely dependent on CYT-18's C-terminal RNA-binding domain, all other group I introns tested thus far are spliced efficiently by a truncated protein lacking this domain. To investigate the function of the C-terminal domain, we used an Escherichia coli genetic assay to isolate mutants of the Saccharomyces cerevisiae mitochondrial large subunit rRNA and phage T4 td introns that can be spliced in vivo by the wild-type CYT-18 protein, but not by the C-terminally truncated protein. Mutations that result in dependence on CYT-18's C-terminal domain include those disrupting two long-range GNRA tetraloop/receptor interactions: L2-P8, which helps position the P1 helix containing the 5'-splice site, and L9-P5, which helps establish the correct relative orientation of the P4-P6 and P3-P9 domains of the group I intron catalytic core. Our results indicate that different structural mutations in group I intron RNAs can result in dependence on different regions of CYT-18 for RNA splicing.

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Year:  2004        PMID: 15037773      PMCID: PMC1370554          DOI: 10.1261/rna.5212604

Source DB:  PubMed          Journal:  RNA        ISSN: 1355-8382            Impact factor:   4.942


  34 in total

1.  Function of tyrosyl-tRNA synthetase in splicing group I introns: an induced-fit model for binding to the P4-P6 domain based on analysis of mutations at the junction of the P4-P6 stacked helices.

Authors:  X Chen; R R Gutell; A M Lambowitz
Journal:  J Mol Biol       Date:  2000-08-11       Impact factor: 5.469

2.  A periodic table of symmetric tandem mismatches in RNA.

Authors:  M Wu; J A McDowell; D H Turner
Journal:  Biochemistry       Date:  1995-03-14       Impact factor: 3.162

3.  A tyrosyl-tRNA synthetase suppresses structural defects in the two major helical domains of the group I intron catalytic core.

Authors:  C A Myers; G J Wallweber; R Rennard; Y Kemel; M G Caprara; G Mohr; A M Lambowitz
Journal:  J Mol Biol       Date:  1996-09-20       Impact factor: 5.469

4.  Thermodynamics of nonsymmetric tandem mismatches adjacent to G.C base pairs in RNA.

Authors:  T Xia; J A McDowell; D H Turner
Journal:  Biochemistry       Date:  1997-10-14       Impact factor: 3.162

5.  Rules for RNA recognition of GNRA tetraloops deduced by in vitro selection: comparison with in vivo evolution.

Authors:  M Costa; F Michel
Journal:  EMBO J       Date:  1997-06-02       Impact factor: 11.598

6.  Direct random mutagenesis of gene-sized DNA fragments using polymerase chain reaction.

Authors:  M Fromant; S Blanquet; P Plateau
Journal:  Anal Biochem       Date:  1995-01-01       Impact factor: 3.365

7.  The anticodon-binding domain of tyrosyl-tRNA synthetase: state of folding and origin of the crystallographic disorder.

Authors:  V Guez; S Nair; A Chaffotte; H Bedouelle
Journal:  Biochemistry       Date:  2000-02-22       Impact factor: 3.162

8.  A tyrosyl-tRNA synthetase recognizes a conserved tRNA-like structural motif in the group I intron catalytic core.

Authors:  M G Caprara; V Lehnert; A M Lambowitz; E Westhof
Journal:  Cell       Date:  1996-12-13       Impact factor: 41.582

9.  A tyrosyl-tRNA synthetase protein induces tertiary folding of the group I intron catalytic core.

Authors:  M G Caprara; G Mohr; A M Lambowitz
Journal:  J Mol Biol       Date:  1996-04-05       Impact factor: 5.469

10.  A preorganized active site in the crystal structure of the Tetrahymena ribozyme.

Authors:  B L Golden; A R Gooding; E R Podell; T R Cech
Journal:  Science       Date:  1998-10-09       Impact factor: 47.728

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  7 in total

1.  Toward predicting self-splicing and protein-facilitated splicing of group I introns.

Authors:  Quentin Vicens; Paul J Paukstelis; Eric Westhof; Alan M Lambowitz; Thomas R Cech
Journal:  RNA       Date:  2008-09-03       Impact factor: 4.942

2.  NMR Structure of the C-terminal domain of a tyrosyl-tRNA synthetase that functions in group I intron splicing.

Authors:  Paul J Paukstelis; Nandini Chari; Alan M Lambowitz; David Hoffman
Journal:  Biochemistry       Date:  2011-04-12       Impact factor: 3.162

3.  Protein-facilitated folding of group II intron ribozymes.

Authors:  Olga Fedorova; Amanda Solem; Anna Marie Pyle
Journal:  J Mol Biol       Date:  2010-02-06       Impact factor: 5.469

4.  Structural Divergence of the Group I Intron Binding Surface in Fungal Mitochondrial Tyrosyl-tRNA Synthetases That Function in RNA Splicing.

Authors:  Lilian T Lamech; Maithili Saoji; Paul J Paukstelis; Alan M Lambowitz
Journal:  J Biol Chem       Date:  2016-04-01       Impact factor: 5.157

5.  RNA chaperone activity and RNA-binding properties of the E. coli protein StpA.

Authors:  Oliver Mayer; Lukas Rajkowitsch; Christina Lorenz; Robert Konrat; Renée Schroeder
Journal:  Nucleic Acids Res       Date:  2007-01-31       Impact factor: 16.971

6.  Evolution of RNA-protein interactions: non-specific binding led to RNA splicing activity of fungal mitochondrial tyrosyl-tRNA synthetases.

Authors:  Lilian T Lamech; Anna L Mallam; Alan M Lambowitz
Journal:  PLoS Biol       Date:  2014-12-23       Impact factor: 8.029

Review 7.  Localization and RNA Binding of Mitochondrial Aminoacyl tRNA Synthetases.

Authors:  Shahar Garin; Ofri Levi; Bar Cohen; Adi Golani-Armon; Yoav S Arava
Journal:  Genes (Basel)       Date:  2020-10-12       Impact factor: 4.096

  7 in total

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