arginine and pyridoxal phosphate

arginine has been researched along with pyridoxal phosphate in 95 studies

Research

Studies (95)

TimeframeStudies, this research(%)All Research%
pre-199045 (47.37)18.7374
1990's20 (21.05)18.2507
2000's14 (14.74)29.6817
2010's12 (12.63)24.3611
2020's4 (4.21)2.80

Authors

AuthorsStudies
Barnes, JC; Bradley, P; Day, NC; Fourches, D; Reed, JZ; Tropsha, A1
Roberts, J; Rosenfeld, HJ1
Hemmilä, IA; Mäntsälä, PI1
Christie, EA; Farley, JR; Segel, IH; Seubert, PA1
Kazarinoff, MN; Snell, EE2
Chirikjian, JG; Lee, YH1
Bellini, T; Dallocchio, F; Rippa, M; Signorini, M1
McCurry, SD; Paech, C; Pierce, J; Tolbert, NE1
Chatagner, F; Pierre, Y1
Nakagawa, H; Ogura, N; Sato, T; Sato, Y; Shiraishi, N1
Cooperman, BS; Mitchell, LL1
Dekker, EE; Mukherjee, JJ1
Esaki, N; Futaki, S; Manning, JM; Nishimura, K; Soda, K; Tanizawa, K; Yoshimura, T1
Cuchillo, CM; Parés, X; Richardson, RM1
Boyen, A; Crabeel, M; Glansdorff, N; Heimberg, H1
Ahmed, SA; Kawasaki, H; Miles, EW; Morita, H; Nagata, S1
Kojiro, CL; Lewis, SD; Marceau, M; Shafer, JA1
Balasundaram, D; Tyagi, AK1
Bauer, SC; Bild, GS; Borgmeyer, JR; Huynh, QK; Kishore, GM1
Müller, RE; Traish, AM1
Inoue, Y; Kagamiyama, H; Kuramitsu, S; Morino, Y; Tanase, S1
Modak, MJ; Pandey, VN1
Kaminski, M; McDonagh, J1
Fischer, EH; Sabo, DL1
Kremzner, LT; Sturman, JA1
Archard, LC; Williamson, JD1
Groman, E; Huang, YZ; Snell, EE; Watanabe, T1
Morris, DR; Wu, WH2
Soda, K1
Blethen, SL; Boeker, EA; Snell, EE1
Boeker, EA; Snell, EE1
Forsyth, GW; Jones, EE; Theil, EC; Vogel, HJ1
Boeker, EA; Fischer, EH; Snell, EE1
Snell, EE1
Angelino, N; Korytnyk, W; Lachmann, B1
Ames, BN; FerroLuzzi-Ames, G; Shifrin, S1
Morino, Y; Snell, EE1
Ogata, K; Yorifuji, T1
Misono, H; Soda, K; Yorifuji, T1
Ogata, K; Soda, K; Yorifuji, T1
Osumi, T; Soda, K1
Ikawa, M1
Buc, H; Vandenbunder, B1
Fong, WF; Ng, SF; Yao, KM1
Kolattukudy, PE; Poulose, AJ; Rogers, L1
Gracy, RW; Lu, HS; Talent, JM1
Misono, H; Soda, K; Tanizawa, K; Toyama, S; Yasuda, M1
Tunnicliff, G1
Hori, K; Kanda, M; Kurotsu, T; Saito, Y; Takechi, M1
Grishin, NV; Kinch, LN; Osterman, AL; Phillips, MA1
Bazaes, S; Cardemil, E; Goldie, H; Jabalquinto, AM; Silva, R1
Christen, P; Hohenester, E; Jansonius, JN; Karpeisky, MY; Khomutov, AR; Khomutov, RM; Marković-Housley, Z; Sandmeier, E; Schirmer, T1
Brooks, HB; Osterman, AL; Phillips, MA; Rizo, J1
Contestabile, R; Grimm, B; Hennig, M; Jansonius, JN; John, RA1
Cardemil, E; Chávez, R; Krautwurst, H1
Brünger, AT; Shah, SA; Shen, BW1
Preiss, J; Sheng, J1
Hao, S; Lu, J; Zhang, H; Zhang, J1
Morollo, AA; Petsko, GA; Ringe, D1
Sun, S; Toney, MD1
Ostrovtsova, SA1
Picone, R; Stoughton, DM; Vann, WF; Zapata, G1
Hayashi, H; Hirotsu, K; Kagamiyama, H; Miyahara, I; Mizuguchi, H; Okada, K1
di Salvo, ML; Ko, TP; Musayev, FN; Raboni, S; Safo, MK; Schirch, V1
BONAVITA, V; SCARDI, V1
ALBRECHT, AM; VOGEL, HJ1
Connolly, SA; Francklyn, CS; Musier-Forsyth, K; Rosen, AE1
Nishio, I; Tsuda, K1
Griessler, R; Nidetzky, B; Psik, B; Schwarz, A1
Chen, HY; Lima, S; Phillips, RS; Shim, D; Sundararaju, B; Tavakoli, K1
Creuzenet, C; Obhi, RK1
Fujitani, Y; Ishihara, K; Ito, K; Nakajima, N; Oikawa, T; Sugimoto, M1
Antson, AA; Demidkina, TV; Kulikova, VV; Matković-Calogović, D; Milić, D; Sinitzina, NI1
Capitani, G; Christen, P; Giannattasio, S; Marra, E; Vacca, RA1
Ko, TP; Lee, CY; Wang, NC1
Arakawa, N; Eggeling, L; Freudl, R; Lausberg, F; Matsui, D; Oikawa, T; Osumi, S; Stäbler, N1
Kuzuyama, T; Miyagawa, T; Nishiyama, M; Ouchi, T; Tomita, T1
Hegg, CC; Jia, C1
Ambili, M; Jala, VR; Prakash, V; Rao, NA; Savithri, HS1
Bröcker, MJ; Hammond, G; Itoh, Y; Sekine, S; Söll, D; Suetsugu, S; Yokoyama, S1
Busnardo, C; Correa, FM; Cruz, JC; Ferreira-Junior, NC; Machado, BH; Resstel, LB1
Brody, LC; Brosnan, JT; Brosnan, ME; Deac, OM; Fan, R; Gibney, ER; Laird, E; Midttun, Ø; Mills, JL; Molloy, AM; Shane, B; Ueland, PM; Wang, Y1
Blankenfeldt, W; Nowicki, C; Wen, J1
Han, L; Moran, GR; Schwabacher, AW; Silvaggi, NR1
Alkhalaf, LM; Du, YL; Eltis, LD; He, HY; Kuatsjah, E; Ryan, KS; Singh, R1
Stone, E; Yan, W; Zhang, YJ1
Bharath, SR; Deka, G; Murthy, MRN; Savithri, HS1
Du, YL; Eltis, LD; Hedges, JB; Kuatsjah, E; Ryan, KS1
Boussery, K; De Spiegeleer, B; Peeters, E; Remon, JP; Van Tongelen, I; Vanhoorne, V; Vervaet, C; Wynendaele, E1
Bouchereau, J; Schiff, M1
Bellezza, I; Borri Voltattorni, C; Cellini, B; Desbats, MA; Montioli, R; Salviati, L1
Aarsand, AK; Aguilera, P; Brunet, M; Deulofeu, R; García-Villoria, J; Gómez-Gómez, À; Pozo, OJ; Sandberg, S; To-Figueras, J; Wijngaard, R1
Melkonian, TR; Silvaggi, NR; Vuksanovic, N1

Reviews

5 review(s) available for arginine and pyridoxal phosphate

ArticleYear
The role of lysyl, arginyl, and sulfhydryl residues in estrogen receptor activation, 4S to 5S dimerization, and conversion of receptor from a state with low affinity into a state with higher affinity for estrogen.
    Annals of the New York Academy of Sciences, 1986, Volume: 464

    Topics: Alkylation; Animals; Arginine; Cell Nucleus; Cyclohexanones; Dose-Response Relationship, Drug; Hydroxymercuribenzoates; Kinetics; Lysine; Mersalyl; Molecular Weight; Polymers; Protein Conformation; Pyridoxal Phosphate; Receptors, Estrogen; Structure-Activity Relationship; Sulfhydryl Compounds

1986
[Amino acid racemases (author's transl)].
    Seikagaku. The Journal of Japanese Biochemical Society, 1974, Volume: 46, Issue:5

    Topics: Adenosine Triphosphate; Alanine; Amino Acid Isomerases; Arginine; Chemical Phenomena; Chemistry; Coenzymes; Flavin-Adenine Dinucleotide; Glutamine; Hydrogen-Ion Concentration; Hydroxyproline; Magnetic Resonance Spectroscopy; Molecular Weight; Phenylalanine; Pyridoxal Phosphate; Spectrophotometry

1974
Analogs of pyridoxal or pyridoxal phosphate: relation of structure to binding with apoenzymes and to catalytic activity.
    Vitamins and hormones, 1970, Volume: 28

    Topics: Apoproteins; Arginine; Aspartic Acid; Carboxy-Lyases; Catalysis; Chemical Phenomena; Chemistry; Coenzymes; Hydrolases; L-Serine Dehydratase; Models, Biological; Organophosphorus Compounds; Phosphorylases; Picolines; Protein Binding; Protein Conformation; Pyridines; Pyridoxal; Pyridoxal Phosphate; Pyridoxamine; Pyridoxine; Pyruvates; Structure-Activity Relationship; Transaminases; Tryptophan

1970
Inherited Disorders of Lysine Metabolism: A Review.
    The Journal of nutrition, 2020, 10-01, Volume: 150, Issue:Suppl 1

    Topics: 2-Aminoadipic Acid; Aldehyde Dehydrogenase; Amino Acid Metabolism, Inborn Errors; Arginine; Brain; Brain Diseases, Metabolic; Brain Diseases, Metabolic, Inborn; Carnitine; Epilepsy; Glutarates; Glutaryl-CoA Dehydrogenase; Humans; Lysine; Metabolic Diseases; Pyridoxal Phosphate; Pyridoxine

2020
Deficit of human ornithine aminotransferase in gyrate atrophy: Molecular, cellular, and clinical aspects.
    Biochimica et biophysica acta. Proteins and proteomics, 2021, Volume: 1869, Issue:1

    Topics: Arginine; Choroid; Chromosomes, Human, Pair 10; Coenzymes; Diet; Gene Expression; Gyrate Atrophy; Humans; Models, Molecular; Mutation; Ornithine; Ornithine-Oxo-Acid Transaminase; Protein Multimerization; Protein Structure, Secondary; Pyridoxal Phosphate; Retina; Vitamin B 6

2021

Other Studies

90 other study(ies) available for arginine and pyridoxal phosphate

ArticleYear
Cheminformatics analysis of assertions mined from literature that describe drug-induced liver injury in different species.
    Chemical research in toxicology, 2010, Volume: 23, Issue:1

    Topics: Animals; Chemical and Drug Induced Liver Injury; Cluster Analysis; Databases, Factual; Humans; MEDLINE; Mice; Models, Chemical; Molecular Conformation; Quantitative Structure-Activity Relationship

2010
Arginine decarboxylase from a Pseudomonas species.
    Journal of bacteriology, 1976, Volume: 125, Issue:2

    Topics: Aminooxyacetic Acid; Ammonium Sulfate; Arginine; Carboxy-Lyases; Cell-Free System; Chemical Fractionation; Chloromercuribenzoates; Chromatography, Gel; Edetic Acid; Hydrogen-Ion Concentration; Magnesium; Polyamines; Pseudomonas; Pyridoxal Phosphate; Stereoisomerism

1976
Inactivation of glutamate dehydrogenase and glutamate synthase from Bacillus megaterium by phenylglyoxal, butane-2,3-dione and pyridoxal 5'-phosphate.
    The Biochemical journal, 1978, Jul-01, Volume: 173, Issue:1

    Topics: Aldehydes; Arginine; Bacillus megaterium; Binding Sites; Butanones; Diacetyl; Glutamate Dehydrogenase; Glutamate Synthase; Glyoxal; Kinetics; NADP; Pyridoxal Phosphate; Transaminases

1978
Adenosine triphosphate sulfurylase from Penicillium chrysogenum. Evidence for essential arginine, histidine, and tyrosine residues.
    The Journal of biological chemistry, 1979, May-10, Volume: 254, Issue:9

    Topics: Arginine; Binding Sites; Dithionitrobenzoic Acid; Histidine; Kinetics; Nucleotidyltransferases; Penicillium; Penicillium chrysogenum; Pyridoxal; Pyridoxal Phosphate; Sulfate Adenylyltransferase; Tyrosine

1979
Essential arginine residues in tryptophanase from Escherichia coli.
    The Journal of biological chemistry, 1977, Nov-10, Volume: 252, Issue:21

    Topics: Arginine; Binding Sites; Escherichia coli; Kinetics; Lyases; Pyridoxal Phosphate; Spectrophotometry; Spectrophotometry, Ultraviolet; Substrate Specificity; Tryptophanase

1977
Sequence-specific endonuclease Bgl I. Modification of lysine and arginine residues of the homogeneous enzyme.
    The Journal of biological chemistry, 1979, Aug-10, Volume: 254, Issue:15

    Topics: Arginine; Bacillus; Deoxyribonucleases; Diacetyl; Endonucleases; Kinetics; Lysine; Magnesium; Molecular Weight; Pyridoxal Phosphate

1979
The active site of 6-phosphogluconate dehydrogenase. A phosphate binding site and its surroundings.
    Archives of biochemistry and biophysics, 1978, Volume: 189, Issue:2

    Topics: Arginine; Arsenates; Binding Sites; Candida; Diacetyl; Dithionitrobenzoic Acid; Histidine; Lysine; Phosphates; Phosphogluconate Dehydrogenase; Pyridoxal Phosphate; Sulfhydryl Compounds

1978
Active site of ribulose 1,5-bisphosphate carboxylase/oxygenase.
    Basic life sciences, 1978, Volume: 11

    Topics: Arginine; Bicarbonates; Binding Sites; Carboxy-Lyases; Kinetics; Lysine; Magnesium; Pyridoxal Phosphate; Ribulose-Bisphosphate Carboxylase

1978
D-Serine dehydratase from Escherichia coli. Essential arginine residue at the pyridoxal 5'-phosphate binding site.
    The Journal of biological chemistry, 1976, Oct-25, Volume: 251, Issue:20

    Topics: Apoenzymes; Arginine; Binding Sites; Diacetyl; Escherichia coli; Kinetics; L-Serine Dehydratase; Protein Binding; Pyridoxal Phosphate

1976
Functional arginine in the active center of rat liver cystathionase.
    FEBS letters, 1977, Sep-15, Volume: 81, Issue:2

    Topics: Animals; Arginine; Binding Sites; Binding, Competitive; Cystathionine gamma-Lyase; Cysteine; Diacetyl; Homoserine; Liver; Lyases; Pyridoxal Phosphate; Rats

1977
Arginine and lysine residues as NADH-binding sites in NADH-nitrate reductase from spinach.
    Phytochemistry, 1992, Volume: 31, Issue:7

    Topics: Amino Acid Sequence; Arginine; Binding Sites; Diacetyl; Humans; Lysine; Molecular Sequence Data; NAD; NADH, NADPH Oxidoreductases; Nitrate Reductase (NADH); Nitrate Reductases; Phenylglyoxal; Plants; Pyridoxal Phosphate; Sequence Homology, Nucleic Acid

1992
Active site studies of human immunodeficiency virus reverse transcriptase.
    Biochemistry, 1992, Aug-25, Volume: 31, Issue:33

    Topics: Amino Acid Sequence; Arginine; Binding Sites; Chromatography, High Pressure Liquid; Ethylmaleimide; HIV; HIV Reverse Transcriptase; HIV-1; Kinetics; Molecular Sequence Data; Peptide Fragments; Phenylglyoxal; Pyridoxal Phosphate; Recombinant Proteins; Reverse Transcriptase Inhibitors; Ribonuclease H; RNA-Directed DNA Polymerase; Sequence Homology, Nucleic Acid; Trypsin

1992
Inactivation of Escherichia coli 2-amino-3-ketobutyrate CoA ligase by phenylglyoxal and identification of an active-site arginine peptide.
    Archives of biochemistry and biophysics, 1992, Nov-15, Volume: 299, Issue:1

    Topics: Acetyltransferases; Amino Acids; Apoenzymes; Arginine; Binding Sites; Escherichia coli; Kinetics; Peptide Mapping; Phenylglyoxal; Pyridoxal Phosphate

1992
Effect of substitution of a lysyl residue that binds pyridoxal phosphate in thermostable D-amino acid aminotransferase by arginine and alanine.
    Biochemistry, 1991, Apr-23, Volume: 30, Issue:16

    Topics: Alanine; Alanine Transaminase; Arginine; Base Sequence; Cloning, Molecular; D-Alanine Transaminase; Enzyme Stability; Escherichia coli; Kinetics; Lysine; Molecular Sequence Data; Mutagenesis, Site-Directed; Oligonucleotide Probes; Plasmids; Pyridoxal Phosphate; Recombinant Proteins; Restriction Mapping; Spectrophotometry; Thermodynamics

1991
Chemical modification by pyridoxal 5'-phosphate and cyclohexane-1,2-dione indicates that Lys-7 and Arg-10 are involved in the p2 phosphate-binding subsite of bovine pancreatic ribonuclease A.
    The Biochemical journal, 1990, May-01, Volume: 267, Issue:3

    Topics: Animals; Arginine; Binding Sites; Cattle; Cyclohexanes; Cyclohexanones; Lysine; Phosphates; Pyridoxal Phosphate; Ribonuclease, Pancreatic

1990
Escherichia coli and Saccharomyces cerevisiae acetylornithine aminotransferase: evolutionary relationship with ornithine aminotransferase.
    Gene, 1990, May-31, Volume: 90, Issue:1

    Topics: Amino Acid Sequence; Arginine; Base Sequence; Biological Evolution; Escherichia coli; Genes, Bacterial; Genes, Fungal; Molecular Sequence Data; Pyridoxal Phosphate; Saccharomyces cerevisiae; Substrate Specificity; Transaminases

1990
The beta subunit of tryptophan synthase. Clarification of the roles of histidine 86, lysine 87, arginine 148, cysteine 170, and cysteine 230.
    The Journal of biological chemistry, 1989, Apr-15, Volume: 264, Issue:11

    Topics: Arginine; Binding Sites; Cloning, Molecular; Cysteine; DNA Mutational Analysis; Histidine; Lysine; Pyridoxal Phosphate; Recombinant Proteins; Salmonella typhimurium; Spectrum Analysis; Tryptophan Synthase

1989
Contribution of a conserved arginine near the active site of Escherichia coli D-serine dehydratase to cofactor affinity and catalytic activity.
    The Journal of biological chemistry, 1989, Feb-15, Volume: 264, Issue:5

    Topics: Amino Acid Sequence; Arginine; Base Sequence; Binding Sites; DNA, Recombinant; Escherichia coli; Kinetics; L-Serine Dehydratase; Molecular Sequence Data; Mutation; Plasmids; Protein Binding; Pyridoxal Phosphate

1989
Modulation of arginine decarboxylase activity from Mycobacterium smegmatis. Evidence for pyridoxal-5'-phosphate-mediated conformational changes in the enzyme.
    European journal of biochemistry, 1989, Aug-01, Volume: 183, Issue:2

    Topics: Apoenzymes; Arginine; Carboxy-Lyases; Chromatography, Gel; Dialysis; Electrophoresis, Polyacrylamide Gel; Escherichia coli; Hydrogen-Ion Concentration; Kinetics; Molecular Weight; Mycobacterium; Protein Conformation; Protein Denaturation; Pyridoxal Phosphate; Spectrophotometry

1989
Site-directed mutagenesis of Petunia hybrida 5-enolpyruvylshikimate-3-phosphate synthase: Lys-23 is essential for substrate binding.
    The Journal of biological chemistry, 1988, Aug-25, Volume: 263, Issue:24

    Topics: 3-Phosphoshikimate 1-Carboxyvinyltransferase; Alanine; Alkyl and Aryl Transferases; Arginine; Binding Sites; Binding, Competitive; Glutamates; Glutamic Acid; Glycine; Glyphosate; Herbicides; Lysine; Mutation; Phosphoenolpyruvate; Plants; Pyridoxal Phosphate; Shikimic Acid; Transferases

1988
Substitution of an arginyl residue for the active site lysyl residue (Lys258) of aspartate aminotransferase.
    Biochemical and biophysical research communications, 1987, Jul-31, Volume: 146, Issue:2

    Topics: Amino Acid Sequence; Arginine; Aspartate Aminotransferases; Binding Sites; Circular Dichroism; Escherichia coli; Lysine; Mutation; Pyridoxal Phosphate; Spectrophotometry; Structure-Activity Relationship

1987
Affinity labeling of Escherichia coli DNA polymerase I by 5'-fluorosulfonylbenzoyladenosine. Identification of the domain essential for polymerization and Arg-682 as the site of reactivity.
    The Journal of biological chemistry, 1988, May-05, Volume: 263, Issue:13

    Topics: Adenosine; Affinity Labels; Arginine; Binding Sites; DNA Polymerase I; Escherichia coli; Nucleotides; Pyridoxal Phosphate

1988
Inhibited thrombins. Interactions with fibrinogen and fibrin.
    The Biochemical journal, 1987, Mar-15, Volume: 242, Issue:3

    Topics: Amino Acid Chloromethyl Ketones; Arginine; Binding Sites; Chromatography, Affinity; Dansyl Compounds; Dipeptides; Fibrin; Fibrinogen; Fluorescent Dyes; Hirudins; Phenylmethylsulfonyl Fluoride; Protein Binding; Pyridoxal Phosphate; Thrombin

1987
Chemical properties of Escherichia coli lysine decarboxylase including a segment of its pyridoxal 5'-phosphate binding site.
    Biochemistry, 1974, Feb-12, Volume: 13, Issue:4

    Topics: Amino Acid Sequence; Amino Acids; Arginine; Binding Sites; Carboxy-Lyases; Chymotrypsin; Cross Reactions; Enzyme Activation; Enzyme Induction; Escherichia coli; Freeze Drying; Glutamates; Immunodiffusion; Lysine; Peptide Fragments; Protein Binding; Protein Denaturation; Pyridoxal Phosphate; Sulfhydryl Compounds; Thermolysin

1974
Polyamine biosynthesis and vitamin B6 deficiency. Evidence for pyridoxal phosphate as coenzyme for S-adenosylmethionine decarboxylase.
    Biochimica et biophysica acta, 1974, Nov-04, Volume: 372, Issue:1

    Topics: Animals; Arginine; Brain; Carbon Radioisotopes; Carboxy-Lyases; Chromatography, Ion Exchange; Enzyme Activation; Liver; Male; Organ Specificity; Ornithine; Polyamines; Putrescine; Pyridoxal Phosphate; Rats; S-Adenosylmethionine; Spermidine; Spermine; Ultracentrifugation; Vitamin B 6 Deficiency

1974
Inhibition of vaccinia virus replication by canavanine and canaline.
    The Journal of general virology, 1974, Volume: 24, Issue:3

    Topics: Amino Acids; Arginine; Canavanine; Carbon Radioisotopes; Depression, Chemical; DNA, Neoplasm; HeLa Cells; Humans; Neoplasm Proteins; Ornithine; Pyridoxal Phosphate; RNA, Neoplasm; Stereoisomerism; Thymidine; Tritium; Uridine; Vaccinia virus; Virus Replication

1974
Coenzymatic activity of pyridoxal 5'-sulfate and related analogues of pyridoxal 5'-phosphate.
    Proceedings of the National Academy of Sciences of the United States of America, 1972, Volume: 69, Issue:11

    Topics: Apoproteins; Arginine; Carboxy-Lyases; Coenzymes; Kinetics; L-Serine Dehydratase; Picolines; Pyridoxal; Pyridoxal Phosphate; Pyridoxine; Spectrum Analysis; Sulfates; Tryptophanase

1972
Biosynthetic arginine decarboxylase from Escherichia coli. Purification and properties.
    The Journal of biological chemistry, 1973, Mar-10, Volume: 248, Issue:5

    Topics: Amino Acids; Ammonium Sulfate; Arginine; Carboxy-Lyases; Chemical Precipitation; Chromatography; Chromatography, Ion Exchange; Electrophoresis, Disc; Enzyme Activation; Escherichia coli; Feedback; Hydrogen-Ion Concentration; Hydroxyapatites; Kinetics; Macromolecular Substances; Magnesium; Molecular Weight; Protein Binding; Putrescine; Pyridoxal Phosphate; Sodium Dodecyl Sulfate; Spermidine; Ultracentrifugation

1973
Biosynthetic arginine decarboxylase from Escherichia coli. Subunit interactions and the role of magnesium ion.
    The Journal of biological chemistry, 1973, Mar-10, Volume: 248, Issue:5

    Topics: Arginine; Carboxy-Lyases; Chromatography, Gel; Enzyme Activation; Escherichia coli; Hydrogen-Ion Concentration; Macromolecular Substances; Magnesium; Molecular Weight; Protein Binding; Putrescine; Pyridoxal Phosphate; Schiff Bases; Spectrophotometry; Ultracentrifugation

1973
Argenine decarboxylase from Escherichia coli. I. Purification and specificity for substrates and coenzyme.
    The Journal of biological chemistry, 1968, Apr-25, Volume: 243, Issue:8

    Topics: Arginine; Binding Sites; Canavanine; Carboxy-Lyases; Chemical Precipitation; Chromatography, Ion Exchange; Crystallization; Cysteine; Dialysis; Electrophoresis, Disc; Escherichia coli; Guanidines; Hydrogen-Ion Concentration; Kinetics; Lysine; Protein Binding; Pyridoxal Phosphate; Spectrum Analysis; Temperature; Ultracentrifugation; Ultraviolet Rays

1968
Arginine decarboxylase from Escherichia coli. II. Dissociation and reassociation of subunits.
    The Journal of biological chemistry, 1968, Apr-25, Volume: 243, Issue:8

    Topics: Arginine; Aspartic Acid; Binding Sites; Carboxy-Lyases; Chemical Phenomena; Chemistry, Physical; Dialysis; Escherichia coli; Glutamates; Guanidines; Hot Temperature; Hydrogen-Ion Concentration; Molecular Weight; Pyridoxal Phosphate; Ultracentrifugation

1968
Isolation and characterization of arginine-inducible acetylornithine delta-transaminase from Escherichia coli.
    The Journal of biological chemistry, 1970, Oct-25, Volume: 245, Issue:20

    Topics: Animals; Arginine; Copper; Cystine; Electrophoresis, Disc; Enzyme Induction; Enzyme Repression; Escherichia coli; Glutamates; Hydrogen-Ion Concentration; Immunoelectrophoresis; Ketoglutaric Acids; Mercury; Molecular Weight; Ornithine; Pyridoxal Phosphate; Rabbits; Transaminases; Ultracentrifugation

1970
Arginine decarboxylase from Escherichia coli. IV. Structure of the pyridoxal phosphate binding site.
    The Journal of biological chemistry, 1971, Nov-25, Volume: 246, Issue:22

    Topics: Alkaline Phosphatase; Amino Acid Sequence; Amino Acids; Arginine; Autoanalysis; Binding Sites; Borohydrides; Carbon Isotopes; Carboxy-Lyases; Catalysis; Chemical Phenomena; Chemistry; Chromatography, Ion Exchange; Chymotrypsin; Dansyl Compounds; Escherichia coli; Fluorescence; Glutamates; Histidine; Lysine; Methods; Oxidation-Reduction; Peptides; Pyridoxal Phosphate; Schiff Bases; Thiocyanates; Trypsin

1971
Phosphorylated analogs of vitamin B 6 modified in the 5' position and on the phosphate group: synthesis and interaction with pyridoxine phosphate oxidase and certain apoenzymes.
    Biochemistry, 1972, Feb-29, Volume: 11, Issue:5

    Topics: Alcohol Oxidoreductases; Animals; Arginine; Aspartate Aminotransferases; Binding Sites; Carboxy-Lyases; Chemical Phenomena; Chemistry; Chromatography, Gel; Chromatography, Ion Exchange; Glutamates; Hydro-Lyases; L-Serine Dehydratase; Liver; Magnetic Resonance Spectroscopy; Phosphoric Acids; Phosphorylases; Pyridoxal Phosphate; Pyridoxine; Rabbits; Spectrophotometry; Structure-Activity Relationship; Tryptophan; Ultraviolet Rays

1972
Effect of the alpha-hydrazino analogue of histidine on histidine transport and arginine biosynthesis.
    The Journal of biological chemistry, 1966, Jul-25, Volume: 241, Issue:14

    Topics: Arginine; Biological Transport; Escherichia coli; Histidine; Hydrazines; Molecular Biology; Mutation; Pyridoxal Phosphate; Salmonella typhimurium; Spectrophotometry; Transaminases

1966
Coenzymatic activity of homologues of pyridoxal phosphate.
    Proceedings of the National Academy of Sciences of the United States of America, 1967, Volume: 57, Issue:6

    Topics: Arginine; Aspartate Aminotransferases; Carboxy-Lyases; Chemical Phenomena; Chemistry; Coenzymes; Escherichia coli; Hydro-Lyases; Hydrogen-Ion Concentration; Kinetics; L-Serine Dehydratase; Lyases; Pyridoxal Phosphate; Spectrum Analysis

1967
Arginine racemase of Pseudomonas graveolens. I. Purification, crystallization, and properties.
    The Journal of biological chemistry, 1971, Aug-25, Volume: 246, Issue:16

    Topics: Alcohols; Amides; Aminobutyrates; Arginine; Boron Compounds; Catalysis; Chemical Precipitation; Chromatography, DEAE-Cellulose; Chromatography, Gel; Chromatography, Ion Exchange; Citrulline; Crystallization; Drug Stability; Ethionine; Glutamates; Hot Temperature; Hydrogen-Ion Concentration; Hydroxylamines; Isomerases; Kinetics; Light; Lysine; Molecular Weight; Ornithine; Oxidation-Reduction; Penicillamine; Phenylhydrazines; Protein Binding; Pseudomonas; Pyridoxal Phosphate; Quaternary Ammonium Compounds; Rotation; Spectrophotometry; Sulfates; Ultracentrifugation

1971
Arginine racemase of Pseudomonas graveolens. II. Racemization and transamination of ornithine catalyzed by arginine racemase.
    The Journal of biological chemistry, 1971, Aug-25, Volume: 246, Issue:16

    Topics: Acetates; Alanine; Amino Acids; Aminobutyrates; Arginine; Catalysis; Dialysis; Electrophoresis; Enzyme Activation; Hydrogen-Ion Concentration; Isomerases; Keto Acids; Ketoglutaric Acids; Kinetics; Light; Models, Biological; Organophosphorus Compounds; Ornithine; Oxaloacetates; Paper; Phenylpyruvic Acids; Picolines; Propionates; Protein Binding; Pseudomonas; Pyridoxal Phosphate; Pyruvates; Rotation; Spectrophotometry; Stereoisomerism; Transaminases; Ultraviolet Rays

1971
Crystalline arginine racemase.
    Biochemical and biophysical research communications, 1969, Mar-31, Volume: 34, Issue:6

    Topics: Arginine; Chromatography, Gel; Chromatography, Ion Exchange; Crystallization; Isomerases; Molecular Weight; Pseudomonas; Pyridoxal Phosphate; Spectrum Analysis; Ultracentrifugation

1969
Crystalline amino acid racemase with low substrate specificity.
    Biochemical and biophysical research communications, 1969, May-08, Volume: 35, Issue:3

    Topics: Alanine; Amino Acids; Arginine; Butyrates; Chemical Phenomena; Chemical Precipitation; Chemistry; Chromatography, Gel; Chromatography, Ion Exchange; Crystallization; Dialysis; Electrophoresis, Disc; Ethionine; Isomerases; Leucine; Lysine; Methionine; Methods; Molecular Weight; Pseudomonas; Pyridoxal Phosphate; Spectrophotometry; Ultracentrifugation

1969
Synthesis and properties of some N-pyridoxyl-L-amino acids and N-(5-phosphopyridoxyl)-L-amino acids.
    Archives of biochemistry and biophysics, 1967, Volume: 118, Issue:2

    Topics: Alanine; Aldehydes; Arginine; Aspartic Acid; Chemistry, Organic; Chromatography, Paper; Glutamates; Organic Chemistry Phenomena; Pyridines; Pyridoxal Phosphate; Pyrrolidinones; Serine; Tryptophan; Tyrosine

1967
The reactivity of arginine residues interacting with glucose 1-phosphate in glycogen phosphorylase. A comparison between pyridoxal-reconstituted phosphorylase and the native enzyme.
    European journal of biochemistry, 1983, Jul-01, Volume: 133, Issue:3

    Topics: Animals; Arginine; Autoradiography; Chemical Phenomena; Chemistry; Enzyme Activation; Glucosephosphates; Phosphorylase a; Phosphorylase b; Phosphorylases; Pyridoxal Phosphate; Rabbits; Substrate Specificity

1983
Putrescine biosynthesis in Tetrahymena thermophila.
    The Biochemical journal, 1984, Sep-15, Volume: 222, Issue:3

    Topics: Agmatine; Arginine; Carbon Dioxide; Kinetics; Ornithine; Ornithine Decarboxylase; Putrescine; Pyridoxal Phosphate; Tetrahymena

1984
Selective chemical modification of the active sites of the ketoacyl reductase and enoyl reductase of fatty acid synthetase from lactating rat mammary glands.
    The International journal of biochemistry, 1980, Volume: 12, Issue:4

    Topics: 3-Oxoacyl-(Acyl-Carrier-Protein) Reductase; Acyl Carrier Protein; Alcohol Oxidoreductases; Animals; Arginine; Binding Sites; Enoyl-(Acyl-Carrier Protein) Reductase (NADPH, B-Specific); Fatty Acid Synthases; Female; Lactation; Lysine; Mammary Glands, Animal; NADP; Oxidoreductases; Phenylglyoxal; Pregnancy; Pyridoxal Phosphate; Rats

1980
Chemical modification of critical catalytic residues of lysine, arginine, and tryptophan in human glucose phosphate isomerase.
    The Journal of biological chemistry, 1981, Jan-25, Volume: 256, Issue:2

    Topics: Affinity Labels; Arginine; Bromosuccinimide; Circular Dichroism; Cyclohexanones; Diacetyl; Female; Glucose-6-Phosphate Isomerase; Humans; Kinetics; Lysine; Molecular Weight; Placenta; Pregnancy; Protein Binding; Protein Conformation; Pyridoxal Phosphate; Tryptophan

1981
Properties of crystalline L-ornithine: alpha-ketoglutarate delta-aminotransferase from Bacillus sphaericus.
    Journal of bacteriology, 1981, Volume: 148, Issue:1

    Topics: Amino Acids; Arginine; Bacillus; Crystallization; Enzyme Induction; Molecular Weight; Ornithine; Ornithine-Oxo-Acid Transaminase; Pyridoxal Phosphate; Spectrum Analysis; Substrate Specificity; Transaminases

1981
Essential arginine residues at the pyridoxal phosphate binding site of brain gamma-aminobutyrate aminotransferase.
    Biochemical and biophysical research communications, 1980, Nov-17, Volume: 97, Issue:1

    Topics: 4-Aminobutyrate Transaminase; Animals; Arginine; Binding Sites; Brain; Kinetics; Male; Mice; Phenylglyoxal; Protein Binding; Pyridoxal Phosphate; Transaminases

1980
Purification and properties of L-ornithine delta-aminotransferase from gramicidin S-producing Bacillus brevis.
    Journal of biochemistry, 1994, Volume: 116, Issue:5

    Topics: Amino Acid Sequence; Arginine; Bacillus; Cyclohexanecarboxylic Acids; Gramicidin; Hydrogen-Ion Concentration; Isoelectric Point; Molecular Sequence Data; Ornithine; Ornithine-Oxo-Acid Transaminase; Pyridoxal Phosphate; Substrate Specificity

1994
Acidic residues important for substrate binding and cofactor reactivity in eukaryotic ornithine decarboxylase identified by alanine scanning mutagenesis.
    The Journal of biological chemistry, 1995, May-19, Volume: 270, Issue:20

    Topics: Animals; Arginine; Base Sequence; Binding Sites; Eukaryotic Cells; Kinetics; Leishmania donovani; Lysine; Mice; Molecular Sequence Data; Mutagenesis, Site-Directed; Ornithine; Ornithine Decarboxylase; Protozoan Proteins; Pyridoxal Phosphate; Recombinant Fusion Proteins; Species Specificity; Substrate Specificity; Trypanosoma brucei brucei

1995
Reactivity of cysteinyl, arginyl, and lysyl residues of Escherichia coli phosphoenolpyruvate carboxykinase against group-specific chemical reagents.
    Journal of protein chemistry, 1993, Volume: 12, Issue:5

    Topics: Arginine; Binding Sites; Cysteine; Diacetyl; Escherichia coli; Glyoxal; Kinetics; Lysine; Phosphoenolpyruvate Carboxykinase (GTP); Pyrenes; Pyridoxal Phosphate; Sulfhydryl Reagents

1993
Crystal structures and solution studies of oxime adducts of mitochondrial aspartate aminotransferase.
    European journal of biochemistry, 1996, Mar-15, Volume: 236, Issue:3

    Topics: Amino Acid Sequence; Animals; Arginine; Aspartate Aminotransferases; Binding Sites; Chickens; Crystallography, X-Ray; Hydrogen Bonding; Hydroxylamine; Hydroxylamines; Kinetics; Mitochondria, Heart; Models, Molecular; Oximes; Peptide Fragments; Protein Conformation; Pyridoxal Phosphate; Solutions

1996
Role of Arg-277 in the binding of pyridoxal 5'-phosphate to Trypanosoma brucei ornithine decarboxylase.
    Biochemistry, 1997, Apr-15, Volume: 36, Issue:15

    Topics: Animals; Arginine; Binding Sites; Circular Dichroism; Kinetics; Magnetic Resonance Spectroscopy; Mutagenesis, Site-Directed; Ornithine Decarboxylase; Ornithine Decarboxylase Inhibitors; Pyridoxal Phosphate; Pyridoxamine; Spectrophotometry, Ultraviolet; Trypanosoma brucei brucei; Ultrafiltration

1997
Crystal structure of glutamate-1-semialdehyde aminomutase: an alpha2-dimeric vitamin B6-dependent enzyme with asymmetry in structure and active site reactivity.
    Proceedings of the National Academy of Sciences of the United States of America, 1997, May-13, Volume: 94, Issue:10

    Topics: Amino Acid Sequence; Arginine; Binding Sites; Borohydrides; Crystallography, X-Ray; Cyanobacteria; Cyclohexanecarboxylic Acids; Dimerization; Escherichia coli; Glutamic Acid; Intramolecular Transferases; Isomerases; Macromolecular Substances; Models, Molecular; Models, Structural; Protein Structure, Secondary; Pyridoxal Phosphate; Recombinant Proteins; Schiff Bases; Substrate Specificity

1997
Site-directed mutagenesis in basic amino acid residues of Saccharomyces cerevisiae phosphoenolpyruvate carboxykinase.
    Journal of protein chemistry, 1997, Volume: 16, Issue:3

    Topics: Arginine; Binding Sites; Cloning, Molecular; Glutamine; Kinetics; Lysine; Mutagenesis, Site-Directed; Phosphoenolpyruvate Carboxykinase (GTP); Point Mutation; Protein Conformation; Pyridoxal Phosphate; Recombinant Proteins; Saccharomyces cerevisiae; Trypsin

1997
Human ornithine aminotransferase complexed with L-canaline and gabaculine: structural basis for substrate recognition.
    Structure (London, England : 1993), 1997, Aug-15, Volume: 5, Issue:8

    Topics: Aminobutyrates; Arginine; Binding Sites; Crystallography, X-Ray; Cyclohexanecarboxylic Acids; Enzyme Inhibitors; Gyrate Atrophy; Humans; Models, Molecular; Molecular Sequence Data; Ornithine-Oxo-Acid Transaminase; Pyridoxal Phosphate; Transaminases; Tyrosine

1997
Arginine294 is essential for the inhibition of Anabaena PCC 7120 ADP-glucose pyrophosphorylase by phosphate.
    Biochemistry, 1997, Oct-21, Volume: 36, Issue:42

    Topics: Adenosine Triphosphate; Alanine; Amino Acid Substitution; Anabaena; Arginine; Binding Sites; Fructosediphosphates; Glucose-1-Phosphate Adenylyltransferase; Glyceric Acids; Kinetics; Mutagenesis, Site-Directed; Nucleotidyltransferases; Phenylglyoxal; Phosphates; Pyridoxal Phosphate; Recombinant Proteins

1997
Studies on the amino acid residues of the active site of alpha-aspartyl dipeptidase.
    Annals of the New York Academy of Sciences, 1998, Dec-13, Volume: 864

    Topics: Arginine; Binding Sites; Catalytic Domain; Diethyl Pyrocarbonate; Dipeptidases; Escherichia coli; Kinetics; Lysine; Phenylglyoxal; Pyridoxal Phosphate; Salmonella typhimurium

1998
Structure of a Michaelis complex analogue: propionate binds in the substrate carboxylate site of alanine racemase.
    Biochemistry, 1999, Mar-16, Volume: 38, Issue:11

    Topics: Alanine Racemase; Arginine; Binding Sites; Carboxylic Acids; Computer Simulation; Crystallography, X-Ray; Geobacillus stearothermophilus; Hydrogen Bonding; Kinetics; Lysine; Models, Molecular; Propionates; Pyridoxal Phosphate; Schiff Bases; Substrate Specificity

1999
Evidence for a two-base mechanism involving tyrosine-265 from arginine-219 mutants of alanine racemase.
    Biochemistry, 1999, Mar-30, Volume: 38, Issue:13

    Topics: Alanine Racemase; Amino Acid Substitution; Arginine; Binding Sites; Catalysis; Geobacillus stearothermophilus; Glutamic Acid; Histidine; Hydrogen-Ion Concentration; Kinetics; Lysine; Mutagenesis, Site-Directed; Protons; Pyridoxal Phosphate; Schiff Bases; Solvents; Tyrosine

1999
Chemical modification of lysine and arginine residues of bovine heart 2-oxoglutarate dehydrogenase: effect on the enzyme activity and regulation.
    Acta biochimica Polonica, 1998, Volume: 45, Issue:4

    Topics: Adenosine Diphosphate; Animals; Arginine; Cattle; Dose-Response Relationship, Drug; Enzyme Inhibitors; Ketoglutarate Dehydrogenase Complex; Kinetics; Lysine; Myocardium; Phenylglyoxal; Pyridoxal Phosphate; Thiamine Pyrophosphate; Time Factors

1998
Identification of Arg-12 in the active site of Escherichia coli K1 CMP-sialic acid synthetase.
    The Biochemical journal, 1999, Oct-15, Volume: 343 Pt 2

    Topics: Amino Acid Motifs; Amino Acid Sequence; Amino Acid Substitution; Arginine; Binding Sites; Conserved Sequence; Cytidine Triphosphate; Enzyme Stability; Escherichia coli; Kinetics; Lysine; Molecular Sequence Data; Mutagenesis, Site-Directed; N-Acylneuraminate Cytidylyltransferase; Oxidation-Reduction; Protein Denaturation; Pyridoxal Phosphate; Recombinant Fusion Proteins; Sequence Alignment; Thermodynamics

1999
Strain is more important than electrostatic interaction in controlling the pKa of the catalytic group in aspartate aminotransferase.
    Biochemistry, 2001, Jan-16, Volume: 40, Issue:2

    Topics: Arginine; Asparagine; Aspartate Aminotransferases; Catalytic Domain; Crystallography, X-Ray; Dicarboxylic Acids; DNA Mutational Analysis; Escherichia coli; Hydrogen Bonding; Hydrogen-Ion Concentration; Leucine; Ligands; Lysine; Mutagenesis, Site-Directed; Protein Conformation; Pyridoxal Phosphate; Recombinant Proteins; Schiff Bases; Static Electricity; Structure-Activity Relationship

2001
Active site structure and stereospecificity of Escherichia coli pyridoxine-5'-phosphate oxidase.
    Journal of molecular biology, 2002, Jan-18, Volume: 315, Issue:3

    Topics: Arginine; Binding Sites; Crystallization; Crystallography, X-Ray; Electron Transport; Escherichia coli; Flavin Mononucleotide; Hydrogen; Hydrogen Bonding; Kinetics; Models, Molecular; Mutation; Protein Structure, Secondary; Pyridoxal Phosphate; Pyridoxamine; Pyridoxaminephosphate Oxidase; Stereoisomerism; Substrate Specificity; Tyrosine; Water

2002
The interaction between pyridoxal-5-phosphate and arginine apodocarboxylase.
    Experientia, 1958, Apr-15, Volume: 14, Issue:4

    Topics: Arginine; Coenzymes; Lyases; Phosphates; Pyridoxal Phosphate

1958
ACETYLORNITHINE DELTA-TRANSAMINASE. PARTIAL PURIFICATION AND REPRESSION BEHAVIOR.
    The Journal of biological chemistry, 1964, Volume: 239

    Topics: Arginine; Benzoates; Chloromercuribenzoates; Copper; Edetic Acid; Enzyme Inhibitors; Enzyme Repression; Escherichia coli; Keto Acids; Ketoglutaric Acids; Mutation; Ornithine; Pharmacology; Pyridoxal Phosphate; Pyruvates; Research; Spectrophotometry; Transaminases

1964
G-1:C73 recognition by an arginine cluster in the active site of Escherichia coli histidyl-tRNA synthetase.
    Biochemistry, 2004, Feb-03, Volume: 43, Issue:4

    Topics: Acylation; Alanine; Arginine; Base Pairing; Binding Sites; Computer Simulation; Cytosine; Escherichia coli Proteins; Guanine; Histidine; Histidine-tRNA Ligase; Models, Chemical; Models, Molecular; Mutagenesis, Site-Directed; Protein Structure, Secondary; Pyridoxal Phosphate; RNA, Transfer, His; Substrate Specificity

2004
Homocysteine, vitamin B6, and endothelial dysfunction in circulatory disorders.
    Stroke, 2004, Volume: 35, Issue:8

    Topics: Arginine; C-Reactive Protein; Endothelium, Vascular; Homocysteine; Humans; Nitric Oxide; Pyridoxal Phosphate; Stroke; Vitamin B 6; Vitamin B 6 Deficiency

2004
Relationships between structure, function and stability for pyridoxal 5'-phosphate-dependent starch phosphorylase from Corynebacterium callunae as revealed by reversible cofactor dissociation studies.
    European journal of biochemistry, 2004, Volume: 271, Issue:16

    Topics: Apoproteins; Arginine; Chromatography, Affinity; Circular Dichroism; Corynebacterium; Dimerization; Enzyme Stability; Half-Life; Holoenzymes; Hydrogen-Ion Concentration; Kinetics; Mutation; Polysaccharides; Pyridoxal Phosphate; Spectrometry, Fluorescence; Starch Phosphorylase; Structure-Activity Relationship

2004
Role of lysine-256 in Citrobacter freundii tyrosine phenol-lyase in monovalent cation activation.
    Biochemistry, 2004, Nov-16, Volume: 43, Issue:45

    Topics: Alanine; Animals; Arginine; Aspartic Acid; Cations, Monovalent; Citrobacter freundii; Enzyme Activation; Glutamic Acid; Histidine; Lysine; Models, Molecular; Mutagenesis, Site-Directed; Potassium; Protein Binding; Pyridoxal Phosphate; Rabbits; Spectrophotometry; Tyrosine Phenol-Lyase

2004
Biochemical characterization of the Campylobacter jejuni Cj1294, a novel UDP-4-keto-6-deoxy-GlcNAc aminotransferase that generates UDP-4-amino-4,6-dideoxy-GalNAc.
    The Journal of biological chemistry, 2005, May-27, Volume: 280, Issue:21

    Topics: Acetylglucosamine; Arginine; Bacterial Proteins; Campylobacter jejuni; Cloning, Molecular; Dimerization; Enzyme Stability; Escherichia coli; Gene Expression; Hydrogen-Ion Concentration; Lysine; Magnetic Resonance Spectroscopy; Mass Spectrometry; Molecular Sequence Data; Mutagenesis, Site-Directed; Pyridoxal Phosphate; Recombinant Proteins; Structure-Activity Relationship; Substrate Specificity; Transaminases; Uridine Diphosphate N-Acetylgalactosamine

2005
Molecular and biochemical characterization of a serine racemase from Arabidopsis thaliana.
    Phytochemistry, 2006, Volume: 67, Issue:7

    Topics: Alanine; Arabidopsis; Arginine; Catalysis; Cations, Divalent; Dimerization; Escherichia coli; Glutamine; Hydro-Lyases; Hydrogen-Ion Concentration; In Situ Hybridization, Fluorescence; Metals; Molecular Sequence Data; Pyridoxal Phosphate; Racemases and Epimerases; Sequence Homology, Amino Acid; Serine; Stereoisomerism; Substrate Specificity

2006
Structures of apo- and holo-tyrosine phenol-lyase reveal a catalytically critical closed conformation and suggest a mechanism for activation by K+ ions.
    Biochemistry, 2006, Jun-20, Volume: 45, Issue:24

    Topics: Apoenzymes; Arginine; Binding Sites; Catalysis; Citrobacter freundii; Crystallography, X-Ray; Enzyme Activation; Glutamine; Hydrogen Bonding; Hydrogen-Ion Concentration; Models, Molecular; Phenylalanine; Potassium; Protein Conformation; Protein Structure, Secondary; Protein Structure, Tertiary; Pyridoxal Phosphate; Substrate Specificity; Tyrosine; Tyrosine Phenol-Lyase

2006
Molecular evolution of B6 enzymes: binding of pyridoxal-5'-phosphate and Lys41Arg substitution turn ribonuclease A into a model B6 protoenzyme.
    BMC biochemistry, 2008, Jun-19, Volume: 9

    Topics: Amino Acid Substitution; Arginine; Binding Sites; Catalysis; Evolution, Molecular; Kinetics; Lysine; Models, Molecular; Mutagenesis, Site-Directed; Pyridoxal Phosphate; Recombinant Proteins; Ribonuclease, Pancreatic; Vitamin B 6

2008
Inactive S298R disassembles the dodecameric L-aspartate 4-decarboxylase into dimers.
    Biochemical and biophysical research communications, 2008, Sep-12, Volume: 374, Issue:1

    Topics: Amino Acid Sequence; Amino Acid Substitution; Arginine; Bacterial Proteins; Binding Sites; Carboxy-Lyases; Computer Simulation; Dimerization; Escherichia coli; Models, Chemical; Molecular Sequence Data; Mutation; Protein Structure, Tertiary; Pseudomonas; Pyridoxal Phosphate; Serine

2008
A periplasmic, pyridoxal-5'-phosphate-dependent amino acid racemase in Pseudomonas taetrolens.
    Applied microbiology and biotechnology, 2009, Volume: 83, Issue:6

    Topics: Amino Acid Isomerases; Arginine; Bacterial Proteins; DNA, Bacterial; Escherichia coli; Lysine; Molecular Sequence Data; Ornithine; Periplasm; Protein Processing, Post-Translational; Protein Transport; Pseudomonas; Pyridoxal Phosphate; Recombinant Proteins; Sequence Analysis, DNA; Sequence Analysis, Protein

2009
Dual roles of a conserved pair, Arg23 and Ser20, in recognition of multiple substrates in alpha-aminoadipate aminotransferase from Thermus thermophilus.
    Biochemical and biophysical research communications, 2009, Oct-09, Volume: 388, Issue:1

    Topics: 2-Aminoadipate Transaminase; 2-Aminoadipic Acid; Arginine; Conserved Sequence; Crystallography, X-Ray; Glutamates; Protein Structure, Secondary; Pyridines; Pyridoxal Phosphate; Serine; Substrate Specificity; Thermus thermophilus

2009
NPY mediates ATP-induced neuroproliferation in adult mouse olfactory epithelium.
    Neurobiology of disease, 2010, Volume: 38, Issue:3

    Topics: Adenosine Triphosphate; Aging; Animals; Arginine; Cell Proliferation; Dose-Response Relationship, Drug; Male; Mice; Models, Neurological; Neurogenesis; Neuropeptide Y; Olfactory Mucosa; Purinergic Antagonists; Pyridoxal Phosphate; Receptors, Neuropeptide Y; Receptors, Purinergic; Sensory Receptor Cells

2010
Disruption of distal interactions of Arg 262 and of substrate binding to Ser 52 affect catalysis of sheep liver cytosolic serine hydroxymethyltransferase.
    Indian journal of biochemistry & biophysics, 2003, Volume: 40, Issue:4

    Topics: Animals; Arginine; Biocatalysis; Cytosol; Enzyme Stability; Glycine Hydroxymethyltransferase; Liver; Models, Molecular; Mutagenesis, Site-Directed; Mutation; Protein Binding; Pyridoxal Phosphate; Serine; Sheep; Temperature

2003
Decameric SelA•tRNA(Sec) ring structure reveals mechanism of bacterial selenocysteine formation.
    Science (New York, N.Y.), 2013, Apr-05, Volume: 340, Issue:6128

    Topics: Arginine; Bacteria; Bacterial Proteins; Catalysis; Catalytic Domain; Crystallography, X-Ray; Protein Multimerization; Protein Structure, Secondary; Protein Structure, Tertiary; Pyridoxal Phosphate; RNA, Transfer, Amino Acyl; Selenocysteine; Transferases

2013
Cardiovascular responses to ATP microinjected into the paraventricular nucleus are mediated by nitric oxide and NMDA glutamate receptors in awake rats.
    Experimental physiology, 2013, Volume: 98, Issue:10

    Topics: Adenosine Triphosphate; Animals; Arginine; Blood Pressure; Ganglionic Blockers; Heart Rate; Male; Microinjections; Nitric Oxide; Nitroprusside; Paraventricular Hypothalamic Nucleus; Purinergic P2 Receptor Antagonists; Pyridoxal Phosphate; Quinazolinones; Rats; Rats, Wistar; Receptors, N-Methyl-D-Aspartate; Wakefulness

2013
Tryptophan catabolism and vitamin B-6 status are affected by gender and lifestyle factors in healthy young adults.
    The Journal of nutrition, 2015, Volume: 145, Issue:4

    Topics: 3-Hydroxyanthranilic Acid; Adolescent; Adult; Arginine; Biomarkers; Dietary Supplements; Female; Healthy Volunteers; Humans; Kynurenic Acid; Kynurenine; Life Style; Male; Methionine; ortho-Aminobenzoates; Pyridoxal Phosphate; Sex Factors; Surveys and Questionnaires; Tryptophan; Vitamin B 6; Xanthurenates; Young Adult

2015
Structural basis for the relaxed substrate selectivity of Leishmania mexicana broad specificity aminotransferase.
    Molecular and biochemical parasitology, 2015, Volume: 202, Issue:2

    Topics: Arginine; Aspartic Acid; Crystallization; Crystallography, X-Ray; Dimerization; Glutamic Acid; Leishmania mexicana; Leishmaniasis, Cutaneous; Protein Structure, Tertiary; Protozoan Proteins; Pyridoxal Phosphate; Substrate Specificity; Transaminases

2015
Streptomyces wadayamensis MppP Is a Pyridoxal 5'-Phosphate-Dependent L-Arginine α-Deaminase, γ-Hydroxylase in the Enduracididine Biosynthetic Pathway.
    Biochemistry, 2015, Dec-01, Volume: 54, Issue:47

    Topics: Amidohydrolases; Arginine; Biosynthetic Pathways; Catalytic Domain; Crystallography, X-Ray; Guanidines; Mixed Function Oxygenases; Models, Molecular; Protein Conformation; Pyridoxal Phosphate; Pyrrolidines; Streptomyces; Substrate Specificity; Transaminases

2015
A pyridoxal phosphate-dependent enzyme that oxidizes an unactivated carbon-carbon bond.
    Nature chemical biology, 2016, Volume: 12, Issue:3

    Topics: Arginine; Carbon; Catalysis; Deamination; Kinetics; Molecular Conformation; Oxidation-Reduction; Oxidoreductases Acting on CH-CH Group Donors; Pyridoxal Phosphate; Stereoisomerism; Streptomyces griseus

2016
Structural Snapshots of an Engineered Cystathionine-γ-lyase Reveal the Critical Role of Electrostatic Interactions in the Active Site.
    Biochemistry, 2017, 02-14, Volume: 56, Issue:6

    Topics: Amino Acid Substitution; Arginine; Biocatalysis; Carbon-Sulfur Lyases; Catalytic Domain; Cystathionine; Cystathionine gamma-Lyase; Cysteine; Enzyme Stability; Humans; Hydrogen Bonding; Hydrolysis; Methionine; Models, Molecular; Mutagenesis, Site-Directed; Osmolar Concentration; Protein Conformation; Protein Engineering; Pyridoxal Phosphate; Recombinant Proteins; Selenomethionine; Substrate Specificity

2017
Structural studies on the decameric S. typhimurium arginine decarboxylase (ADC): Pyridoxal 5'-phosphate binding induces conformational changes.
    Biochemical and biophysical research communications, 2017, 09-02, Volume: 490, Issue:4

    Topics: Amino Acid Motifs; Arginine; Bacterial Proteins; Binding Sites; Carboxy-Lyases; Catalytic Domain; Cloning, Molecular; Crystallography, X-Ray; Escherichia coli; Gene Expression; Hydrogen-Ion Concentration; Kinetics; Models, Molecular; Protein Binding; Protein Conformation, alpha-Helical; Protein Conformation, beta-Strand; Protein Interaction Domains and Motifs; Protein Multimerization; Pyridoxal Phosphate; Recombinant Proteins; Salmonella typhimurium; Substrate Specificity

2017
Snapshots of the Catalytic Cycle of an O
    ACS chemical biology, 2018, 04-20, Volume: 13, Issue:4

    Topics: Amino Acid Oxidoreductases; Arginine; Catalysis; Crystallography, X-Ray; Hydrogen Peroxide; Hydroxylation; Mixed Function Oxygenases; Oxidation-Reduction; Oxygen; Pyridoxal Phosphate

2018
Pharmaceutical compounding of orphan active ingredients in Belgium: how community and hospital pharmacists can address the needs of patients with rare diseases.
    Orphanet journal of rare diseases, 2019, 08-01, Volume: 14, Issue:1

    Topics: Arginine; Belgium; Carnitine; Drug Compounding; Excipients; Humans; Pharmacists; Phenylbutyrates; Primaquine; Pyridoxal Phosphate; Rare Diseases; Sodium Benzoate

2019
Dysregulation of homocysteine homeostasis in acute intermittent porphyria patients receiving heme arginate or givosiran.
    Journal of inherited metabolic disease, 2021, Volume: 44, Issue:4

    Topics: Acetylgalactosamine; Adult; Arginine; Cystathionine beta-Synthase; Female; Folic Acid; Heme; Homeostasis; Homocysteine; Homocystinuria; Humans; Hydroxymethylbilane Synthase; Hyperhomocysteinemia; Male; Methionine; Middle Aged; Porphyria, Acute Intermittent; Pyridoxal Phosphate; Pyrrolidines; Young Adult

2021
Probing mechanistic questions in the PLP- and O
    Methods in enzymology, 2023, Volume: 685

    Topics: Arginine; Humans; Oxidoreductases; Oxygen; Oxygenases; Pyridoxal Phosphate

2023