tryptophan and anticodon

tryptophan has been researched along with anticodon in 19 studies

Research

Studies (19)

TimeframeStudies, this research(%)All Research%
pre-199010 (52.63)18.7374
1990's4 (21.05)18.2507
2000's4 (21.05)29.6817
2010's1 (5.26)24.3611
2020's0 (0.00)2.80

Authors

AuthorsStudies
Dahlberg, JE; Harada, F; Sawyer, RC1
Buckingham, RH1
Adachi, T; Inokuchi, H; Rogers, MJ; Söll, D1
Asahara, H; Hasegawa, T; Himeno, H; Shimizu, M; Tamura, K1
Björk, GR; Bouadloun, F; Isaksson, LA; Srichaiyo, T1
Berg, P; Folk, WR; Soll, L; Yaniv, M1
Soll, L1
Diamond, A; Dudock, B; Hatfield, D1
Beresten, SF; Kisselev, LL; Mashkova, TD; Mazo, AM; Scheinker, VS1
Ehrlich, R; Kilhoffer, MC; Lefevre, JF; Remy, P1
Donelson, JE; Martin, NC; Miller, Dl; Pham, HD; Underbrink-Lyon, K1
Buck, M; Griffiths, E1
Pak, M; Schulman, LH; Willis, IM1
Alfonzo, JD; Blanc, V; Estévez, AM; Rubio, MA; Simpson, L1
Wang, ED; Yan, XZ; Yao, YN; Zhang, QS; Zhu, G1
Ewalt, KL; Köhrer, C; Liu, J; McRee, DE; Otero, FJ; RajBhandary, UL; Schimmel, P; Skene, RJ; Swairjo, MA; Yang, XL1
Ding, J; Guo, L; Jin, Y; Shen, N; Yang, B1
Ghosh, A; Hansia, P; Vishveshwara, S1
Carter, CW; Li, L1

Other Studies

19 other study(ies) available for tryptophan and anticodon

ArticleYear
A primer ribonucleic acid for initiation of in vitro Rous sarcarcoma virus deoxyribonucleic acid synthesis.
    The Journal of biological chemistry, 1975, May-10, Volume: 250, Issue:9

    Topics: Animals; Anticodon; Avian Sarcoma Viruses; Base Sequence; Chickens; DNA, Viral; Liver; Nucleic Acid Conformation; Oligonucleotides; Ribonucleases; RNA; RNA, Transfer; RNA, Viral; Transfer RNA Aminoacylation; Tryptophan

1975
Anticodon conformation and accessibility in wild-type and suppressor tryptophan tRNA from E. coli.
    Nucleic acids research, 1976, Volume: 3, Issue:4

    Topics: Anticodon; Base Sequence; Binding Sites; Escherichia coli; Nucleic Acid Conformation; Proline; RNA, Bacterial; RNA, Transfer; Tryptophan

1976
Switching tRNA(Gln) identity from glutamine to tryptophan.
    Proceedings of the National Academy of Sciences of the United States of America, 1992, Apr-15, Volume: 89, Issue:8

    Topics: Amino Acyl-tRNA Synthetases; Anticodon; Base Sequence; beta-Galactosidase; Cloning, Molecular; Escherichia coli; Genes, Bacterial; Genes, Suppressor; Genes, Synthetic; Glutamine; Molecular Sequence Data; Mutagenesis, Site-Directed; Nucleic Acid Conformation; RNA, Transfer, Gln; Suppression, Genetic; Tetrahydrofolate Dehydrogenase; Tryptophan

1992
Identity determinants of E. coli tryptophan tRNA.
    Nucleic acids research, 1991, Dec-11, Volume: 19, Issue:23

    Topics: Anticodon; Base Sequence; Escherichia coli; Kinetics; Molecular Sequence Data; Nucleic Acid Conformation; RNA, Bacterial; RNA, Transfer, Trp; Transcription, Genetic; Tryptophan

1991
Influence of modification next to the anticodon in tRNA on codon context sensitivity of translational suppression and accuracy.
    Journal of bacteriology, 1986, Volume: 166, Issue:3

    Topics: Anticodon; Arginine; beta-Galactosidase; Codon; Escherichia coli; Mutation; Protein Biosynthesis; RNA, Messenger; RNA, Transfer; Salmonella typhimurium; Suppression, Genetic; Tryptophan

1986
A single mutational modification of a tryptophan-specific transfer RNA permits aminoacylation by glutamine and translation of the codon UAG.
    Journal of molecular biology, 1974, Jun-25, Volume: 86, Issue:2

    Topics: Anticodon; Autoradiography; Centrifugation; Chromatography, Gel; Codon; Electrophoresis, Polyacrylamide Gel; Escherichia coli; Glutamine; Mutation; Phosphorus Radioisotopes; Protein Biosynthesis; RNA, Messenger; RNA, Transfer; Transfer RNA Aminoacylation; Tryptophan

1974
Mutational alterations of tryptophan-specific transfer RNA that generate translation suppressors of the UAA, UAG and UGA nonsense codons.
    Journal of molecular biology, 1974, Jun-25, Volume: 86, Issue:2

    Topics: Alleles; Anticodon; Base Sequence; Codon; Escherichia coli; Genes, Lethal; Genetic Code; Mutation; Protein Biosynthesis; RNA, Messenger; RNA, Transfer; Suppression, Genetic; Transfer RNA Aminoacylation; Tryptophan

1974
Structure and properties of a bovine liver UGA suppressor serine tRNA with a tryptophan anticodon.
    Cell, 1981, Volume: 25, Issue:2

    Topics: Animals; Anticodon; Base Sequence; Cattle; Codon; Ribosomes; RNA, Messenger; RNA, Transfer, Amino Acyl; Suppression, Genetic; Tryptophan

1981
Role of exposed cytosine residues in aminoacylation activity of tRNATrp.
    FEBS letters, 1981, Sep-28, Volume: 132, Issue:2

    Topics: Animals; Anticodon; Base Sequence; Cattle; Cytosine; Nucleic Acid Conformation; RNA, Transfer, Amino Acyl; Structure-Activity Relationship; Sulfites; Tryptophan; Tryptophan-tRNA Ligase; Uridine

1981
Mutual adaptation of yeast tRNAPhe and phenylalanyl-tRNA synthetase: Possible role of tryptophan residues and long range interactions.
    FEBS letters, 1980, Jun-02, Volume: 114, Issue:2

    Topics: Amino Acyl-tRNA Synthetases; Anticodon; Kinetics; Magnesium; Nucleic Acid Conformation; Phenylalanine-tRNA Ligase; RNA, Transfer; RNA, Transfer, Amino Acyl; Saccharomyces cerevisiae; Tryptophan

1980
Yeast mitochondrial tRNATrp can recognize the nonsense codon UGA.
    Nature, 1980, Jun-19, Volume: 285, Issue:5766

    Topics: Anticodon; Base Sequence; Codon; DNA, Mitochondrial; Genes; Nucleic Acid Conformation; Peptide Chain Termination, Translational; RNA, Messenger; RNA, Transfer; Saccharomyces cerevisiae; Structure-Activity Relationship; Tryptophan

1980
Regulation of aromatic amino acid transport by tRNA: role of 2-methylthio-N6-(delta2-isopentenyl)-adenosine.
    Nucleic acids research, 1981, Jan-24, Volume: 9, Issue:2

    Topics: Adenosine; Anticodon; Biological Transport; Escherichia coli; Isopentenyladenosine; Kinetics; Mutation; Phenylalanine; RNA, Transfer; Sulfides; Tryptophan; Tyrosine

1981
Analysis of acceptor stem base pairing on tRNA(Trp) aminoacylation and function in vivo.
    The Journal of biological chemistry, 1994, Jan-21, Volume: 269, Issue:3

    Topics: Anticodon; Base Composition; Base Sequence; Blotting, Northern; Escherichia coli; Genetic Vectors; Molecular Sequence Data; Mutagenesis, Site-Directed; Nucleic Acid Conformation; Oligodeoxyribonucleotides; Protein Biosynthesis; RNA, Transfer, Amino Acyl; RNA, Transfer, Met; RNA, Transfer, Trp; Tetrahydrofolate Dehydrogenase; Tryptophan

1994
C to U editing of the anticodon of imported mitochondrial tRNA(Trp) allows decoding of the UGA stop codon in Leishmania tarentolae.
    The EMBO journal, 1999, Dec-15, Volume: 18, Issue:24

    Topics: Animals; Anticodon; Base Sequence; Cell Nucleus; Codon, Terminator; Cytosine; DNA, Protozoan; Leishmania; Mitochondria; Models, Molecular; Molecular Sequence Data; Nucleic Acid Conformation; Reverse Transcriptase Polymerase Chain Reaction; RNA; RNA Editing; RNA, Mitochondrial; RNA, Protozoan; RNA, Transfer, Trp; Tryptophan; Uracil

1999
Substrate-induced conformational changes in Escherichia coli arginyl-tRNA synthetase observed by 19F NMR spectroscopy.
    FEBS letters, 2003, Jul-17, Volume: 547, Issue:1-3

    Topics: Anticodon; Arginine; Arginine-tRNA Ligase; Binding Sites; Catalytic Domain; Escherichia coli; Magnetic Resonance Spectroscopy; Models, Molecular; Protein Conformation; Protein Structure, Secondary; RNA, Transfer, Arg; Substrate Specificity; Tryptophan

2003
Two conformations of a crystalline human tRNA synthetase-tRNA complex: implications for protein synthesis.
    The EMBO journal, 2006, Jun-21, Volume: 25, Issue:12

    Topics: Amino Acid Sequence; Anticodon; Crystallization; Crystallography, X-Ray; Humans; Models, Molecular; Molecular Sequence Data; Nucleic Acid Conformation; Peptide Elongation Factor 1; Protein Binding; Protein Biosynthesis; Protein Conformation; RNA, Transfer, Trp; Sequence Alignment; Tryptophan; Tryptophan-tRNA Ligase

2006
Structure of human tryptophanyl-tRNA synthetase in complex with tRNATrp reveals the molecular basis of tRNA recognition and specificity.
    Nucleic acids research, 2006, Volume: 34, Issue:11

    Topics: Amino Acid Sequence; Animals; Anticodon; Cattle; Crystallography, X-Ray; Humans; Models, Molecular; Molecular Sequence Data; Nucleic Acid Conformation; Protein Binding; Protein Structure, Tertiary; RNA, Transfer, Trp; Species Specificity; Substrate Specificity; Tryptophan; Tryptophan-tRNA Ligase

2006
Ligand dependent intra and inter subunit communication in human tryptophanyl tRNA synthetase as deduced from the dynamics of structure networks.
    Molecular bioSystems, 2009, Volume: 5, Issue:12

    Topics: Adenosine Monophosphate; Anticodon; Catalytic Domain; Cluster Analysis; Humans; Hydrogen Bonding; Ligands; Molecular Dynamics Simulation; Protein Multimerization; RNA, Transfer, Trp; Tryptophan; Tryptophan-tRNA Ligase

2009
Full implementation of the genetic code by tryptophanyl-tRNA synthetase requires intermodular coupling.
    The Journal of biological chemistry, 2013, Nov-29, Volume: 288, Issue:48

    Topics: Anticodon; Catalytic Domain; Crystallography, X-Ray; Escherichia coli; Genetic Code; Kinetics; Protein Binding; Protein Structure, Secondary; RNA, Transfer; Thermodynamics; Transfer RNA Aminoacylation; Tryptophan; Tryptophan-tRNA Ligase; Tyrosine

2013