tryptophan and quinone

tryptophan has been researched along with quinone in 16 studies

Research

Studies (16)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's5 (31.25)18.2507
2000's7 (43.75)29.6817
2010's4 (25.00)24.3611
2020's0 (0.00)2.80

Authors

AuthorsStudies
Bellows, DS; Clarke, ID; Diamandis, P; Dirks, PB; Graham, J; Jamieson, LG; Ling, EK; Sacher, AG; Tyers, M; Ward, RJ; Wildenhain, J1
Ferguson, SJ; Page, MD1
Davidson, VL; Zhu, Z1
Inoue, Y; Noguchi, T; Tang, XS1
Bibikova, M; Breton, J; Nabedryk, E; Oesterhelt, D1
Davidson, VL; Hyun, YL; Zhu, Z1
Carter, S; Evans, MC; Heathcote, P; Muhiuddin, IP; Purton, S; Rigby, SE; Stevens, DR1
Kaupp, M1
Ishikita, H; Knapp, EW1
Breton, J; Jones, MR; Nabedryk, E; Wakeham, MC1
Inaba, K; Ito, K; Takahashi, YH1
Görner, H1
Abu Tarboush, N; Davidson, VL; Jensen, LM; Wilmot, CM1
Guo, X; Li, J; Liu, Z; Sancar, A; Tan, C; Wang, L; Zhang, M; Zhong, D1
Elango, KP; Satheshkumar, A1
Gorokhov, VV; Goryachev, SN; Knox, PP; Korvatovskiy, BN; Lukashev, EP; Paschenko, VZ; Rubin, AB1

Other Studies

16 other study(ies) available for tryptophan and quinone

ArticleYear
Chemical genetics reveals a complex functional ground state of neural stem cells.
    Nature chemical biology, 2007, Volume: 3, Issue:5

    Topics: Animals; Cell Survival; Cells, Cultured; Mice; Molecular Structure; Neoplasms; Neurons; Pharmaceutical Preparations; Sensitivity and Specificity; Stem Cells

2007
Mutants of Methylobacterium extorquens and Paracoccus denitrificans deficient in c-type cytochrome biogenesis synthesise the methylamine-dehydrogenase polypeptides but cannot assemble the tryptophan-tryptophylquinone group.
    European journal of biochemistry, 1993, Dec-01, Volume: 218, Issue:2

    Topics: Benzoquinones; Choline; Cytochrome c Group; Gram-Negative Aerobic Bacteria; Indolequinones; Methylamines; Mutation; Oxidoreductases Acting on CH-NH Group Donors; Paracoccus denitrificans; Peptides; Quinones; Tryptophan

1993
Redox properties of tryptophan tryptophylquinone enzymes. Correlation with structure and reactivity.
    The Journal of biological chemistry, 1998, Jun-05, Volume: 273, Issue:23

    Topics: Benzoquinones; Binding Sites; Electrochemistry; Electron Transport; Hydrogen-Ion Concentration; Indolequinones; Models, Molecular; Molecular Structure; Oxidation-Reduction; Oxidoreductases Acting on CH-NH Group Donors; Paracoccus denitrificans; Protons; Quinones; Spectrophotometry; Structure-Activity Relationship; Tryptophan

1998
Hydrogen bonding interaction between the primary quinone acceptor QA and a histidine side chain in photosystem II as revealed by Fourier transform infrared spectroscopy.
    Biochemistry, 1999, Jan-05, Volume: 38, Issue:1

    Topics: Benzoquinones; Cyanobacteria; Histidine; Hydrogen Bonding; Imidazoles; Nitrogen Isotopes; Photosynthetic Reaction Center Complex Proteins; Spectroscopy, Fourier Transform Infrared; Tryptophan

1999
Conformational heterogeneity of the bacteriopheophytin electron acceptor HA in reaction centers from Rhodopseudomonas viridis revealed by Fourier transform infrared spectroscopy and site-directed mutagenesis.
    Biochemistry, 1999, Aug-31, Volume: 38, Issue:35

    Topics: Amino Acid Substitution; Benzoquinones; Deuterium Oxide; Electron Transport; Glutamic Acid; Glutamine; Mutagenesis, Site-Directed; Oxidation-Reduction; Phenylalanine; Pheophytins; Photochemistry; Photosynthetic Reaction Center Complex Proteins; Protein Conformation; Protons; Rhodopseudomonas; Spectroscopy, Fourier Transform Infrared; Static Electricity; Tryptophan

1999
Gated and ungated electron transfer reactions from aromatic amine dehydrogenase to azurin.
    The Journal of biological chemistry, 1999, Oct-08, Volume: 274, Issue:41

    Topics: Alcaligenes; Azurin; Benzoquinones; Dithionite; Electron Transport; Indolequinones; Kinetics; Molecular Structure; Oxidation-Reduction; Oxidoreductases Acting on CH-NH Group Donors; Quinones; Thermodynamics; Tryptophan

1999
Site-directed mutagenesis of PsaA residue W693 affects phylloquinone binding and function in the photosystem I reaction center of Chlamydomonas reinhardtii.
    Biochemistry, 2001, Feb-20, Volume: 40, Issue:7

    Topics: Amino Acid Sequence; Animals; Bacterial Proteins; Benzoquinones; Binding Sites; Blotting, Western; Chlamydomonas reinhardtii; Electron Spin Resonance Spectroscopy; Electron Transport; Free Radicals; Membrane Proteins; Molecular Sequence Data; Mutagenesis, Site-Directed; Photochemistry; Photosynthetic Reaction Center Complex Proteins; Photosystem I Protein Complex; Plant Proteins; Protons; Protozoan Proteins; Tryptophan; Vitamin K 1

2001
The function of photosystem I. Quantum chemical insight into the role of tryptophan-quinone interactions.
    Biochemistry, 2002, Mar-05, Volume: 41, Issue:9

    Topics: Benzoquinones; Electron Transport; Models, Biological; Molecular Conformation; Photosynthetic Reaction Center Complex Proteins; Photosystem I Protein Complex; Software; Tryptophan

2002
Redox potential of quinones in both electron transfer branches of photosystem I.
    The Journal of biological chemistry, 2003, Dec-26, Volume: 278, Issue:52

    Topics: Benzoquinones; Crystallography, X-Ray; Cyanobacteria; Electron Transport; Hydrogen Bonding; Kinetics; Models, Molecular; Oxidation-Reduction; Photosystem I Protein Complex; Protons; Quinones; Tryptophan

2003
Formation of a semiquinone at the QB site by A- or B-branch electron transfer in the reaction center from Rhodobacter sphaeroides.
    Biochemistry, 2004, Apr-27, Volume: 43, Issue:16

    Topics: Alanine; Anti-Bacterial Agents; Benzoquinones; Binding Sites; Electron Transport; Freezing; Light; Mutagenesis, Site-Directed; Oxidation-Reduction; Photosynthetic Reaction Center Complex Proteins; Polyenes; Rhodobacter sphaeroides; Spectroscopy, Fourier Transform Infrared; Tryptophan; Ubiquinone

2004
Reactivities of quinone-free DsbB from Escherichia coli.
    The Journal of biological chemistry, 2005, Sep-23, Volume: 280, Issue:38

    Topics: Bacterial Proteins; Benzoquinones; Cell Membrane; Chromatography, High Pressure Liquid; Cysteine; Disulfides; Dithiothreitol; Dose-Response Relationship, Drug; Escherichia coli; Kinetics; Mass Spectrometry; Membrane Proteins; Microscopy, Fluorescence; Models, Biological; Mutation; Oxidants; Oxidation-Reduction; Oxygen; Protein Folding; Protein Structure, Tertiary; Sarcosine; Time Factors; Tryptophan; Vitamin K 2

2005
Electron transfer from aromatic amino acids to triplet quinones.
    Journal of photochemistry and photobiology. B, Biology, 2007, Sep-25, Volume: 88, Issue:2-3

    Topics: Amino Acids, Aromatic; Anthraquinones; Benzoquinones; Electron Transport; Free Radicals; Halogens; Hydrogen Peroxide; Indoles; Kinetics; Methylation; Naphthoquinones; Oxidation-Reduction; Oxygen; Quinones; Spectrum Analysis; Tryptophan; Tyrosine; Ultraviolet Rays

2007
A Trp199Glu MauG variant reveals a role for Trp199 interactions with pre-methylamine dehydrogenase during tryptophan tryptophylquinone biosynthesis.
    FEBS letters, 2013, Jun-19, Volume: 587, Issue:12

    Topics: Bacterial Proteins; Benzoquinones; Electron Transport; Enzyme Precursors; Indolequinones; Iron; Models, Molecular; Mutagenesis, Site-Directed; Mutation; Oxidoreductases Acting on CH-NH Group Donors; Paracoccus denitrificans; Protein Binding; Protein Conformation; Tryptophan

2013
Dynamic determination of the functional state in photolyase and the implication for cryptochrome.
    Proceedings of the National Academy of Sciences of the United States of America, 2013, Aug-06, Volume: 110, Issue:32

    Topics: Adenine; Benzoquinones; Cryptochromes; Deoxyribodipyrimidine Photo-Lyase; Electron Transport; Energy Transfer; Escherichia coli; Escherichia coli Proteins; Flavin-Adenine Dinucleotide; Flavins; Hydroquinones; Kinetics; Models, Chemical; Models, Molecular; Molecular Conformation; Molecular Structure; Mutation; Oxidation-Reduction; Photochemical Processes; Spectrophotometry; Substrate Specificity; Time Factors; Tryptophan

2013
Spectroscopic and molecular docking studies on the charge transfer complex of bovine serum albumin with quinone in aqueous medium and its influence on the ligand binding property of the protein.
    Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy, 2014, Sep-15, Volume: 130

    Topics: Animals; Benzoquinones; Binding Sites; Cattle; Electrochemistry; Ligands; Magnetic Resonance Spectroscopy; Molecular Docking Simulation; Probability; Protein Binding; Protein Conformation; Quinones; Serum Albumin, Bovine; Spectrophotometry; Thermodynamics; Tryptophan

2014
The effect of light and temperature on the dynamic state of Rhodobacter sphaeroides reaction centers proteins determined from changes in tryptophan fluorescence lifetime and P
    Journal of photochemistry and photobiology. B, Biology, 2018, Volume: 180

    Topics: Benzoquinones; Electron Transport; Hydrogen Bonding; Kinetics; Light; Photosynthetic Reaction Center Complex Proteins; Quantum Theory; Rhodobacter sphaeroides; Spectrometry, Fluorescence; Temperature; Tryptophan

2018