tD(GUC)G2 Literature Guide Help

tD(GUC)G2 - Protein/Nucleic Acid Structure (12)

ReferenceOther Genes Addressed
Wang B, et al.  (2008) Complex Ligand-Induced Conformational Changes in tRNA(Asp) Revealed by Single-Nucleotide Resolution SHAPE Chemistry. Biochemistry 47(11):3454-61
Wittberger D, et al.  (2000) Evaluation of uranyl photocleavage as a probe to monitor ion binding and flexibility in RNAs. J Mol Biol 300(2):339-52
Auffinger P and Westhof E  (1999) Singly and bifurcated hydrogen-bonded base-pairs in tRNA anticodon hairpins and ribozymes. J Mol Biol 292(3):467-83
Auffinger P, et al.  (1999) Molecular dynamics simulations of solvated yeast tRNA(Asp). Biophys J 76(1 Pt 1):50-64
Frugier M, et al.  (1994) Identity switches between tRNAs aminoacylated by class I glutaminyl- and class II aspartyl-tRNA synthetases. Biochemistry 33(33):9912-21
Rudinger J, et al.  (1994) Minimalist aminoacylated RNAs as efficient substrates for elongation factor Tu. Biochemistry 33(19):5682-8
Leroy JL, et al.  (1985) Internal motions of transfer RNA: a study of exchanging protons by magnetic resonance. J Biomol Struct Dyn 2(5):915-39
Westhof E, et al.  (1985) Crystallographic refinement of yeast aspartic acid transfer RNA. J Mol Biol 184(1):119-45
Westhof E, et al.  (1983) Loop stereochemistry and dynamics in transfer RNA. J Biomol Struct Dyn 1(2):337-55
Roy S, et al.  (1982) Nuclear overhauser effect study of yeast aspartate transfer ribonucleic acid. Biochemistry 21(24):6081-8
Giege R, et al.  (1980) [Crystallization of the complex formed between yeast aspartyl tRNA and its specific aminoacyl tRNA synthetase]. C R Seances Acad Sci D 291(4):393-6
Robillard GT, et al.  (1976) A study of secondary and tertiary solution structure of yeast tRNA(Asp) by nuclear magnetic resonance. Assignment of G.U ring NH and hydrogen-bonded base pair proton resonances. Biochemistry 15(9):1883-8