| Stuart JW, et al. (2003) Naturally-occurring modification restricts the anticodon domain conformational space of tRNA(Phe). J Mol Biol 334(5):901-18
|
|
| Mucha P, et al. (2001) Anticodon domain methylated nucleosides of yeast tRNA(Phe) are significant recognition determinants in the binding of a phage display selected peptide. Biochemistry 40(47):14191-9
|
|
| Yu Q and Morrow CD (2001) Identification of critical elements in the tRNA acceptor stem and T(Psi)C loop necessary for human immunodeficiency virus type 1 infectivity. J Virol 75(10):4902-6
|
|
| Ashraf SS, et al. (1999) Single atom modification (O-->S) of tRNA confers ribosome binding. RNA 5(2):188-94
|
|
| Khvorova A, et al. (1999) Pyrophosphate mediates the effect of certain tRNA mutations on aminoacylation of yeast tRNA(Phe). Nucleic Acids Res 27(22):4451-6
|
|
| 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
|
|
| Liu J, et al. (1997) Exon structure requirements for yeast tRNA ligase. Sci China C Life Sci 40(6):665-9
|
|
| Dix DB, et al. (1986) Effect of replacing uridine 33 in yeast tRNAPhe on the reaction with ribosomes. J Biol Chem 261(22):10112-8
|
|
| Krzyzosiak WJ and Ciesiolka J (1983) Long-range conformational transition in yeast tRNAPhe, induced by the Y-base removal and detected by chloroacetaldehyde modification. Nucleic Acids Res 11(19):6913-21
|
|
| Bruce AG and Uhlenbeck OC (1982) Specific interaction of anticodon loop residues with yeast phenylalanyl-tRNA synthetase. Biochemistry 21(17):3921-6
|
|
| 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
|
|