tF(GAA)Q Literature Guide Help

tF(GAA)Q - RNA Levels and Processing (16)

ReferenceOther Genes Addressed
Guy MP, et al.  (2012) Yeast Trm7 interacts with distinct proteins for critical modifications of the tRNAPhe anticodon loop. RNA 18(10):1921-33
Staschke KA, et al.  (2010) Integration of general amino acid control and target of rapamycin (TOR) regulatory pathways in nitrogen assimilation in yeast. J Biol Chem 285(22):16893-911
Hayrapetyan A, et al.  (2009) Effect of a quaternary pentamine on RNA stabilization and enzymatic methylation. Biol Chem 390(9):851-61
Nakayama H, et al.  (2009) Ariadne: a database search engine for identification and chemical analysis of RNA using tandem mass spectrometry data. Nucleic Acids Res 37(6):e47
Wang X, et al.  (2009) Mutation in MTO1 involved in tRNA modification impairs mitochondrial RNA metabolism in the yeast Saccharomyces cerevisiae. Mitochondrion 9(3):180-5
Jenek M and Kierzek E  (2008) Isoenergetic microarray mapping - the advantages of this method in studying the structure of Saccharomyces cerevisiae tRNAPhe. Nucleic Acids Symp Ser (Oxf) (52):219-20
Meskauskas A and Dinman JD  (2008) Ribosomal protein L3 functions as a 'rocker switch' to aid in coordinating of large subunit-associated functions in eukaryotes and Archaea. Nucleic Acids Res 36(19):6175-86
Thompson DM, et al.  (2008) tRNA cleavage is a conserved response to oxidative stress in eukaryotes. RNA 14(10):2095-103
Nobles KN, et al.  (2002) Highly conserved modified nucleosides influence Mg2+-dependent tRNA folding. Nucleic Acids Res 30(21):4751-60
Frugier M, et al.  (1998) Sequences outside recognition sets are not neutral for tRNA aminoacylation. Evidence for nonpermissive combinations of nucleotides in the acceptor stem of yeast tRNAPhe. J Biol Chem 273(19):11605-10
Chow CS, et al.  (1992) Recognition of tertiary structure in tRNAs by Rh(phen)2phi3+, a new reagent for RNA structure-function mapping. Biochemistry 31(4):972-82
Surratt CK, et al.  (1990) Construction and processing of transfer RNA precursor models. J Biol Chem 265(36):22506-12
Mueller DM and Getz GS  (1986) Steady state analysis of mitochondrial RNA after growth of yeast Saccharomyces cerevisiae under catabolite repression and derepression. J Biol Chem 261(25):11816-22
Wettstein-Edwards J, et al.  (1986) In vitro transcription and promoter strength analysis of five mitochondrial tRNA promoters in yeast. J Biol Chem 261(6):2905-11
Nishikawa K and Hecht SM  (1982) A structurally modified yeast tRNAPhe with six nucleotides in the anticodon loop lacks significant phenylalanine acceptance. J Biol Chem 257(18):10536-9
Von Der Haar F and Gaertner E  (1975) Phenylalanyl-tRNA synthetase from baker's yeast: role of 3'-terminal adenosine of tRNA-Phe in enzyme-substrate interaction studied with 3'-modified tRNA-Phe species. Proc Natl Acad Sci U S A 72(4):1378-82