Aminoacylation of synthetic DNAs corresponding to Escherichia coli phenylalanine and lysine tRNAs.
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Summary
The aminoacylation of synthetic tDNAs demonstrates that the ribose backbone of a tRNA is not absolutely required for tRNA aminoacylated, and is notabsolutely required for ribouridine or its derivatives.
- Type
- article
- Published
- 1988-07-01
- Cited by
- 38
- References
- 37
- OpenAlex
- https://openalex.org/W1969475313
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:23003622
Keywords
Aminoacylation, Transfer RNA, Escherichia coli, Lysine, Amino acid
References
- Role of ribothymidine in mammalian tRNAPhe.
- Identification of transfer RNA suppressors in Escherichia coli. III. Ochre suppressors of lysine tRNA.
- Initial position of aminoacylation of individual Escherichia coli, yeast, and calf liver transfer RNAs.
- Position of aminoacylation of individual Escherichia coli and yeast tRNAs.
- Necessary protection of the O6-position of guanine during the solid phase synthesis of oligonucleotides by the phosphoramidite approach
- Guanine modification during chemical DNA synthesis.
- Molecular cloning and sequencing of pheU, a gene for Escherichia coli tRNAPhe
- Polymer support oligonucleotide synthesis XVIII: use of beta-cyanoethyl-N,N-dialkylamino-/N-morpholino phosphoramidite of deoxynucleosides for the synthesis of DNA fragments simplifying deprotection and isolation of the final product.
- Localization of the structural change induced in tRNA fMET (Escherichia coli) by acidic pH.
- Cytoplasmic Z-RNA.
- Hydrolytic action of aminoacyl-tRNA synthetases from baker's yeast. "Chemical proofreading" of Thr-tRNA Val by valyl-tRNA synthetase studied with modified tRNA Val and amino acid analogues.
- Crystallographic refinement of yeast phenylalanine transfer RNA at 2-5A resolution.
- Proton nuclear magnetic resonance study of the effect of pH on tRNA structure.
- Equilibrium measurements of cognate and noncognate interactions between aminoacyl transfer RNA synthetases and transfer RNA.
- The anatomy of A-, B-, and Z-DNA.
- Molecular consequences of specific intron mutations on yeast mRNA splicing in vivo and in vitro.
- Studies on human tRNA. I. The rapid, large scale isolation and partial fractionation of placenta and liver tRNA
- Specificity of codon recognition by Escherichia coli tRNALeu isoaccepting species determined by protein synthesis in vitro directed by phage RNA.
- Why do organic solvents enhance mistakes in aminoacyl tRNA synthesis?
- Site of aminoacylation of tRNAs from Escherichia coli with respect to the 2'- or 3'-hydroxyl group of the terminal adenosine.
Cited by
- Polynucleotide recognition and degradation by bleomycin.
- Identification of two novel arginine binding DNAs.
- Phosphorothioate modification of RNA for stereochemical and interference analyses.
- The conformation of single-stranded nucleic acids tDNA versus tRNA.
- Macromolecular Mimicry of Nucleic Acid and Protein
- A nucleotide that enhances the charging of RNA minihelix sequence variants with alanine.
- Aminoacyl‐tRNA synthetases and DNA replication Molecular mimicry between RNAII and tRNALys
- Conformation in solution of yeast tRNA(Asp) transcripts deprived of modified nucleotides.
- Glycosidic bond cleavage of 5-fluoro-2'-deoxyuridine and 5-fluorouridine by amino acyl-tRNA synthetases.
- RNA degradation by bleomycin, a naturally occurring bioconjugate.
- A magnesium-induced conformational transition in the loop of a DNA analog of the yeast tRNA(Phe) anticodon is dependent on RNA-like modifications of the bases of the stem.
- The Escherichia coli tRNA-Guanine Transglycosylase Can Recognize and Modify DNA*
- tRNA structure and aminoacylation efficiency.
- Incorporation of 2′-Modified Nucleotides into tRNA to Test Importance for Charging
- Minimum ribonucleotide requirement for catalysis by the RNA hammerhead domain.
- A DNA metalloenzyme with DNA ligase activity
- Control and function of lysyl‐tRNA synthetases: diversity and co‐ordination
- Amino acid-anticodon binding specificity: rationale for a new class of therapeutic agent.
- A possible mechanism of peptide bond formation on ribosome without mediation of peptidyl transferase.
- Exploring the aminoacylation function of transfer RNA by macromolecular engineering approaches. Involvement of conformational features in the charging process of yeast tRNA(Asp).
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