selenocysteine and molybdenum

selenocysteine has been researched along with molybdenum in 13 studies

Research

Studies (13)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's4 (30.77)18.2507
2000's5 (38.46)29.6817
2010's2 (15.38)24.3611
2020's2 (15.38)2.80

Authors

AuthorsStudies
Axley, MJ; Gladyshev, VN; Khangulov, SV; Stadtman, TC1
Boyington, JC; Gladyshev, VN; Khangulov, SV; Stadtman, TC; Sun, PD1
Thauer, RK; Vaupel, M; Vorholt, JA1
Dobbek, H; Gremer, L; Huber, R; Meyer, O1
Bittner, F; Heidenreich, T; Mendel, RR; Wollers, S1
Grochala, W; Sokołowski, A1
Carmona, M; Díaz, E1
Boll, M; Erxleben, A; Heintz, D; Peters, F; Reski, R; Sarnighausen, E; Van Dorsselaer, A; Wischgoll, S1
Haft, DH; Self, WT1
De Gioia, L; Papaleo, E; Russo, N; Tiberti, M; Zampella, G1
Haumann, M; Hille, R; Leimkühler, S; Niks, D; Rajagopalan, KV; Reschke, S; Sigfridsson, KG; Wilson, H1
Abohamza, E; Berry, T; Moustafa, AA1
Basu, P; Stolz, JF; Wells, M1

Reviews

2 review(s) available for selenocysteine and molybdenum

ArticleYear
A disease-modifying treatment for Alzheimer's disease: focus on the trans-sulfuration pathway.
    Reviews in the neurosciences, 2020, Apr-28, Volume: 31, Issue:3

    Topics: Alzheimer Disease; Animals; Homocysteine; Humans; Molybdenum; Neuroprotective Agents; Selenocysteine

2020
The physiology and evolution of microbial selenium metabolism.
    Metallomics : integrated biometal science, 2021, 05-31, Volume: 13, Issue:6

    Topics: Archaea; Bacteria; Evolution, Molecular; Mixed Function Oxygenases; Molybdenum; RNA, Transfer; Selenium; Selenocysteine

2021

Other Studies

11 other study(ies) available for selenocysteine and molybdenum

ArticleYear
Coordination of selenium to molybdenum in formate dehydrogenase H from Escherichia coli.
    Proceedings of the National Academy of Sciences of the United States of America, 1994, Aug-02, Volume: 91, Issue:16

    Topics: Amino Acid Sequence; Conserved Sequence; Cysteine; Electron Spin Resonance Spectroscopy; Escherichia coli; Formate Dehydrogenases; Hydrogenase; Isotope Labeling; Ligands; Metalloproteins; Molecular Sequence Data; Molybdenum; Multienzyme Complexes; Selenium; Selenocysteine; Sequence Homology, Amino Acid; Serine

1994
Crystal structure of formate dehydrogenase H: catalysis involving Mo, molybdopterin, selenocysteine, and an Fe4S4 cluster.
    Science (New York, N.Y.), 1997, Feb-28, Volume: 275, Issue:5304

    Topics: Binding Sites; Carbon Dioxide; Catalysis; Crystallography, X-Ray; Electron Transport; Escherichia coli; Ferrous Compounds; Formate Dehydrogenases; Formates; Guanine Nucleotides; Hydrogen Bonding; Hydrogenase; Ligands; Models, Molecular; Molecular Sequence Data; Molybdenum; Multienzyme Complexes; Nitrites; Oxidation-Reduction; Protein Conformation; Protein Structure, Secondary; Protein Structure, Tertiary; Protons; Pterins; Selenocysteine

1997
A selenium-dependent and a selenium-independent formylmethanofuran dehydrogenase and their transcriptional regulation in the hyperthermophilic Methanopyrus kandleri.
    Molecular microbiology, 1997, Volume: 23, Issue:5

    Topics: Aldehyde Oxidoreductases; Amino Acid Sequence; Base Sequence; Blotting, Northern; Cell Extracts; Chromosome Mapping; Cloning, Molecular; Cysteine; DNA Primers; DNA, Bacterial; Euryarchaeota; Gene Expression Regulation, Bacterial; Gene Expression Regulation, Enzymologic; Isoenzymes; Molecular Sequence Data; Molybdenum; Selenium; Selenocysteine; Sequence Alignment; Sodium Selenite; Transcription, Genetic; Tungsten; Tungsten Compounds

1997
Crystal structure and mechanism of CO dehydrogenase, a molybdo iron-sulfur flavoprotein containing S-selanylcysteine.
    Proceedings of the National Academy of Sciences of the United States of America, 1999, Aug-03, Volume: 96, Issue:16

    Topics: Aldehyde Oxidoreductases; Amino Acid Sequence; Animals; Binding Sites; Crystallography, X-Ray; Desulfovibrio; Dimerization; Iron-Sulfur Proteins; Ligands; Macromolecular Substances; Models, Molecular; Molecular Sequence Data; Molybdenum; Multienzyme Complexes; Protein Structure, Secondary; Selenocysteine; Sequence Alignment; Sequence Homology, Amino Acid; Xanthine Oxidase

1999
Characterization of the NifS-like domain of ABA3 from Arabidopsis thaliana provides insight into the mechanism of molybdenum cofactor sulfuration.
    The Journal of biological chemistry, 2005, Feb-11, Volume: 280, Issue:6

    Topics: Aldehyde Oxidase; Arabidopsis; Arabidopsis Proteins; Bacterial Proteins; Binding Sites; Catalysis; Coenzymes; Cysteine; Cytosol; Fluorescent Dyes; Genetic Vectors; Iron-Sulfur Proteins; Kinetics; Lyases; Lysine; Metalloproteins; Molybdenum; Molybdenum Cofactors; Mutagenesis, Site-Directed; Naphthalenesulfonates; Pichia; Plant Proteins; Protein Binding; Protein Structure, Tertiary; Pteridines; Pyridoxal Phosphate; Selenocysteine; Spectrophotometry; Substrate Specificity; Sulfides; Sulfurtransferases; Xanthine Dehydrogenase

2005
Towards a tunable molecular memory that fits into a (10 A)3 cube.
    Journal of molecular modeling, 2005, Volume: 11, Issue:4-5

    Topics: Models, Molecular; Molybdenum; Oxidation-Reduction; Selenocysteine; Thermodynamics

2005
Iron-reducing bacteria unravel novel strategies for the anaerobic catabolism of aromatic compounds.
    Molecular microbiology, 2005, Volume: 58, Issue:5

    Topics: Acyl Coenzyme A; Anaerobiosis; Benzoates; Geobacter; Iron; Molybdenum; Multigene Family; Oxidation-Reduction; Oxidoreductases; Proteome; Reverse Transcriptase Polymerase Chain Reaction; Selenocysteine

2005
Gene clusters involved in anaerobic benzoate degradation of Geobacter metallireducens.
    Molecular microbiology, 2005, Volume: 58, Issue:5

    Topics: Acyl Coenzyme A; Amino Acid Sequence; Anaerobiosis; Benzoates; Biodegradation, Environmental; Coenzyme A Ligases; Geobacter; Molecular Sequence Data; Molybdenum; Multigene Family; Selenocysteine

2005
Orphan SelD proteins and selenium-dependent molybdenum hydroxylases.
    Biology direct, 2008, Feb-20, Volume: 3

    Topics: Archaea; Bacteria; Enterococcus faecalis; Haloarcula marismortui; Mixed Function Oxygenases; Molybdenum; Selenium; Selenocysteine

2008
Evidence for the formation of a Mo-H intermediate in the catalytic cycle of formate dehydrogenase.
    Inorganic chemistry, 2012, Aug-06, Volume: 51, Issue:15

    Topics: Bacterial Proteins; Binding Sites; Biocatalysis; Crystallography, X-Ray; Escherichia coli; Formate Dehydrogenases; Formates; Kinetics; Metalloproteins; Models, Molecular; Molybdenum; Protons; Quantum Theory; Selenocysteine; Static Electricity; Thermodynamics

2012
Effect of exchange of the cysteine molybdenum ligand with selenocysteine on the structure and function of the active site in human sulfite oxidase.
    Biochemistry, 2013, Nov-19, Volume: 52, Issue:46

    Topics: Catalytic Domain; Coenzymes; Cysteine; Electron Spin Resonance Spectroscopy; Humans; Hydrogen-Ion Concentration; Kinetics; Ligands; Metalloproteins; Molybdenum; Molybdenum Cofactors; Oxidoreductases Acting on Sulfur Group Donors; Pteridines; Selenocysteine; X-Ray Absorption Spectroscopy

2013