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Science. 1964 Dec 4;146(3649):1313-5
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Biochemical and genetic studies with regulator mutants of the Pseudomonas aeruginosa 8602 amidase system.
J Gen Microbiol. 1967 Apr;47(1):87-102
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Tartaric acid metabolism. IV. Crystalline L-malic dehydrogenase from Pseudomonas acidovorans.
J Biol Chem. 1968 May 25;243(10):2472-8
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Product induction in Pseudomonas acidovorans of a permease system which transports L-tryptophan.
J Bacteriol. 1969 Feb;97(2):705-14
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Biochem J. 1965 Mar;94:569-77
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Regulation of pyruvate carboxylase formation from the apo-enzyme and biotin in a thermophilic bacillus.
Nature. 1969 Sep 13;223(5211):1137-8
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ABSENCE OF CLUSTERING OF FUNCTIONALLY RELATED GENES IN PSEUDOMONAS AERUGINOSA.
Genet Res. 1965 Jul;6:284-99
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Phenol and benzoate metabolism by Pseudomonas putida: regulation of tangential pathways.
J Bacteriol. 1969 Nov;100(2):869-77
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Tryptophan metabolism in Pseudomonas.
Nature. 1962 Oct 13;196:150-2
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J Gen Microbiol. 1969 Aug;57(2):273-85
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Eur J Biochem. 1970 Mar 1;13(1):71-6
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Comparative immunological studies of two Pseudomonas enzymes.
J Bacteriol. 1970 May;102(2):351-62
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Synthesis of the enzymes of the mandelate pathway by Pseudomonas putida. II. Isolation and properties of blocked mutants.
J Bacteriol. 1966 Mar;91(3):1155-60
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Tartaric acid metabolism. VI. Crystalline oxaloglycolate reductive decarboxylase.
J Biol Chem. 1968 May 25;243(10):2486-93
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J Bacteriol. 1947 Sep;54(3):339-48
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Transduction and genetic homology between Pseudomonas species putida and aeruginosa.
J Bacteriol. 1970 Sep;103(3):830-2
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Synergistic and product induction of the enzymes of tryptophan metabolism in Pseudomonas acidovorans.
J Bacteriol. 1969 Feb;97(2):697-704
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FINE CONTROL OF PHOSPHOPYRUVATE CARBOXYLASE ACTIVITY IN ESCHERICHIA COLI.
Biochim Biophys Acta. 1965 Jan;96:169-72
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Enzymatic characterization of 17 L-arabinose negative mutants of Escherichia coli.
J Bacteriol. 1961 Jun;81:996-1006
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The metabolism of aromatic compounds with different side chains by a pseudomonas.
Can J Microbiol. 1967 Jul;13(7):761-9
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Genetic regulatory mechanisms in the synthesis of proteins.
J Mol Biol. 1961 Jun;3:318-56
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Regulation of the synthesis of glyceraldehyde-3-phosphate dehydrogenase in Pseudomonas putida.
FEBS Lett. 1969 Apr;3(1):65-67
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Allosteric controls of amphilbolic pathways in bacteria.
Bacteriol Rev. 1970 Mar;34(1):20-39
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Biochem J. 1963 Nov;89:391-8
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Genetic recombination in Pseudomonas aeruginosa.
J Gen Microbiol. 1955 Dec;13(3):572-81
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An inducible amidase produced by a strain of Pseudomonas aeruginosa.
J Gen Microbiol. 1962 Feb;27:305-16
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Properties and regulation of phosphopyruvate carboxylase activity in Escherichia coli.
Proc R Soc Lond B Biol Sci. 1966 Aug 16;165(999):189-205
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Imidazolepropionate, a nonmetabolizable inducer for the histidine-degrading enzymes in Aerobacter aerogenes.
J Biol Chem. 1965 Nov;240(11):4325-30
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J Bacteriol. 1951 Oct;62(4):355-66
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Monoxygenases. VII. Camphor ketolactonase I and the role of three protein components.
J Biol Chem. 1969 Nov 25;244(22):6149-52
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J Biol Chem. 1970 Apr 10;245(7):1828-35
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Metabolism of L-lysine by bacterial enzymes. V. Glutaric semialdehyde dehydrogenase.
J Biochem. 1961 Feb;49:154-7
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Enzymatic control of the metabolic activity of Pseudomonas aeruginosa grown in glucose or succinate media.
Biochim Biophys Acta. 1969 Dec 30;192(3):395-401
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Metabolism of omicron-cresol by Pseudomonas aeruginosa strain T1.
J Gen Microbiol. 1966 Aug;44(2):221-31
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On the Evolution of Biochemical Syntheses.
Proc Natl Acad Sci U S A. 1945 Jun;31(6):153-7
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Catechol oxygenase induction in Pseudomonas aeruginosa.
Biochem J. 1968 Feb;106(4):879-85
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Nature. 1964 Dec 26;204:1279-83
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Genetic control of the beta-ketoadipate pathway in Pseudomonas aeruginosa.
J Bacteriol. 1968 Nov;96(5):1488-99
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The Oxidation of Aromatic Compounds by Fluorescent Pseudomonads.
J Bacteriol. 1948 Apr;55(4):477-94
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Evolutionary significance of metabolic control systems. The beta-ketoadipate pathway provides a case history in bacteria.
Science. 1967 Jun 30;156(3783):1695-9
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J Bacteriol. 1969 Jan;97(1):292-306
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Transduction in Pseudomonas aeruginosa.
Nature. 1959 Oct 31;184(Suppl 18):1426-7
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Induction and repression of the histidine-degrading enzymes of Bacillus subtilis.
J Biol Chem. 1968 Oct 10;243(19):5165-78
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The bacterial oxidation of tryptophan; a study in comparative biochemistry.
Science. 1951 Sep 28;114(2961):326-30
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Oxidative metabolism of protocatechuic acid by certain soil pseudomonads: a new ring-fission mechanism.
Biochem J. 1962 Jun;83:482-92
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Regulation of the enzymes of the beta-ketoadipate pathway in Moraxella calcoacetica. 1. General aspects.
Eur J Biochem. 1967 May;1(3):289-300
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The metabolism of D-glucarate by Pseudomonas acidovorans.
Biochem J. 1969 Dec;115(5):969-76
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Mandelic acid racemase from Pseudomonas putida. Purification and properties of the enzyme.
Biochemistry. 1970 Oct 13;9(21):4029-36
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Cold Spring Harb Symp Quant Biol. 1951;16:159-74
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Autonomous replication of a defective transducing phage in Pseudomonas putida.
Virology. 1969 May;38(1):92-104
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Induction of histidine-degrading enzymes in Pseudomonas aeruginosa.
J Bacteriol. 1970 Oct;104(1):596-8
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Tartaric acid metabolism. VII. Crystalline hydroxypyruvate reductase (D-glycerate dehydrogenase).
J Biol Chem. 1968 May 25;243(10):2494-9
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J Bacteriol. 1961 Sep;82(3):376-82
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Regulation of the enzymes of the beta-ketoadipate pathway in Moraxella calcoacetica. 2. The role of protocatechuate as inducer.
Eur J Biochem. 1968 Jan;3(3):293-304
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[Bacterial degradation of paraffin hydrocarbons. II. Determination of intermediary products by the simultaneous adaptation method].
Ann Inst Pasteur (Paris). 1960 Jun;98:868-79
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Studies on the oxidation of glucose by Pseudomonas fluorescens.
J Bacteriol. 1951 Aug;62(2):181-6
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Regulation of the enzymes of the beta-ketoadipate pathway in Moraxella. Control of quinate oxidation by protocatechuate.
Eur J Biochem. 1970 Jul;14(3):445-50
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Investigation of the mating system of Pseudomonas aeruginosa strain 1. I. Kinetic studies.
Genet Res. 1968 Aug;12(1):29-36
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Formation and operation of the histidine-degrading pathway in Pseudomonas aeruginosa.
J Bacteriol. 1967 Jun;93(6):1800-10
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The genetic control of dissimilatory pathways in Pseudomonas putida.
Genetics. 1970 Oct;66(2):245-66
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The bacterial oxidation of tryptophan. III. Enzymatic activities of cell-free extracts from bacteria employing the aromatic pathway.
J Bacteriol. 1951 Dec;62(6):691-709
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TARTARIC ACID METABOLISM. I. SUBUNITS OF L(+)-TARTARIC ACID DEHYDRASE.
J Biol Chem. 1965 Jul;240:2772-7
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Alpha-hydroxyglutarate oxidoreductase of Pseudomonas putida.
J Bacteriol. 1969 Nov;100(2):708-14
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Regulation of the meta cleavage pathway for benzoate oxidation by Pseudomonas putida.
J Bacteriol. 1969 Nov;100(2):1121-3
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DEGRADATION OF THE BENZENE NUCLEUS BY BACTERIA.
Nature. 1964 May 23;202:775-8
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Regulation of histidine catabolism by succinate in Pseudomonas putida.
J Bacteriol. 1968 Aug;96(2):396-402
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Eur J Biochem. 1968 Jan;3(3):305-11
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Clustering of functionally related genes in Pseudomonas aeruginosa.
J Bacteriol. 1969 Jul;99(1):353-5
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Defective phage and chromosome mobilization in Pseudomonas putida.
Proc Natl Acad Sci U S A. 1969 Dec;64(4):1217-23
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New pathways in the oxidative metabolism of aromatic compounds by microorganisms.
Nature. 1960 Nov 12;188:560-6
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The utilization of itaconate by Pseudomonas sp.
Biochem J. 1964 Apr;91(1):82-91
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Metabolism of arylsulphonates by micro-organisms.
Biochem J. 1968 Feb;106(4):859-77
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Alpha-ketoglutaric semialdehyde dehydrogenase of Pseudomonas. Properties of the purified enzyme induced by hydroxyproline and of the glucarate-induced and constitutive enzymes.
J Biol Chem. 1967 Apr 25;242(8):1802-14
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Purification of 2-keto-3-deoxy-6-phosphohexonate aldolases of Pseudomonas saccharophila.
Arch Mikrobiol. 1967;59(1):279-86
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Regulation of the enzymes of the beta-ketoadipate pathway in Moraxella calcoacetica. 4. Constitutive synthesis of beta-ketoadipate succinyl-CoA transferases II and 3.
Eur J Biochem. 1968 Jan;3(3):312-7
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Genetics of Pseudomonas.
Bacteriol Rev. 1969 Sep;33(3):419-43
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Contributions of studies on the beta-galactosidase of Escherichia coli to our understanding of enzyme synthesis.
Bacteriol Rev. 1957 Sep;21(3):140-68
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Regulation of sugar accumulation by Escherichia coli.
FEBS Lett. 1969 Apr;3(1):53-56
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Annu Rev Microbiol. 1964;18:95-110
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Biochem J. 1963 Oct;89:22-31
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The conversion of catechol and protocatechuate to beta-ketoadipate by Pseudomonas putida. IV. Regulation.
J Biol Chem. 1966 Aug 25;241(16):3800-10
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The metabolism of cresols by species of Pseudomonas.
Biochem J. 1966 Nov;101(2):293-301
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The enzymic conversion of the tartaric acids to oxaloacetic acid.
J Gen Microbiol. 1957 Apr;16(2):472-81
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Tartaric acid metabolism. 3. The formation of glyceric acid.
J Biol Chem. 1968 May 25;243(10):2465-71
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[ROLE OF LACTOSE AND ITS METABOLIC PRODUCTS IN THE INDUCTION OF THE LACTOSE OPERON IN ESCHERICHIA COLI].
Biochim Biophys Acta. 1965 Apr 19;95:634-9
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Induction and multi-sensitive end-product repression in two converging pathways degrading aromatic substances in Pseudomonas fluorescens.
Biochem J. 1965 Aug;96(2):354-62
PMID: 5837781
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The aerobic pseudomonads: a taxonomic study.
J Gen Microbiol. 1966 May;43(2):159-271
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THE METABOLISM OF GALACTARATE, D-GLUCARATE AND VARIOUS PENTOSES BY SPECIES OF PSEUDOMONAS.
Biochem J. 1965 Apr;95:48-58
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cis-cis-Muconate, the product inducer of catechol 1,2-oxygenase in Pseudomonas aeruginosa.
Biochem J. 1968 Sep;109(3):479-81
PMID: 4971877
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Positive control of enzyme synthesis by gene C in the L-arabinose system.
J Bacteriol. 1965 Oct;90(4):946-57
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UNLINKED LOCI AFFECTING RELATED BIOSYNTHETIC STEPS IN PSEUDOMONAS AERUGINOSA.
Nature. 1963 Aug 31;199:926-7
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A transduction-like process within a single strain of Pseudomonas aeruginosa.
J Gen Microbiol. 1958 Apr;18(2):315-9
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Repression of malic enzyme by acetate in Pseudomonas.
Biochem Biophys Res Commun. 1966 Sep 22;24(6):955-60
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[REGULATORY MECHANISMS IN THE BIOSYNTHESIS OF THE ENZYMES OF GALACTOSE METABOLISM IN ESCHERICHIA COLI K 12. I. THE INDUCED BIOSYNTHESIS OF GALACTOKINASE AND THE SIMULTANEOUS INDUCTION OF THE ENZYMATIC SEQUENCE].
J Mol Biol. 1963 Aug;7:164-82
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ISOLATION OF THE lambda PHAGE REPRESSOR.
Proc Natl Acad Sci U S A. 1967 Feb;57(2):306-13
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Adenosine triphosphate-linked control of Pseudomonas aeruginosa glucose-6-phosphate dehydrogenase.
J Bacteriol. 1967 Apr;93(4):1337-45
PMID: 4382249
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A phage-initiated polysaccharide depolymerase in Pseudomonas putida.
Virology. 1967 Jul;32(3):532-4
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Exogenous and endogenous induction of the histidine-degrading enzymes in Aerobacter aerogenes.
J Biol Chem. 1965 Nov;240(11):4331-7
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The dissimilation of higher dicarboxylic acids by Pseudomonas fluorscens.
Eur J Biochem. 1970 Mar 1;13(1):65-70
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Conjugation in Pseudomonas aeruginosa.
Genetics. 1969 Feb;61(2):327-39
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Isolation of the lac repressor.
Proc Natl Acad Sci U S A. 1966 Dec;56(6):1891-8
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Influence of side-chain substituents on the position of cleavage of the benzene ring by Pseudomonas fluorescens.
J Bacteriol. 1969 Mar;97(3):1192-7
PMID: 5776526
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Genetic and metabolic control of histidase and urocanase in Salmonella typhimurium, strain 15-59.
J Biol Chem. 1969 Oct 10;244(19):5392-402
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THE MICROBIOLOGICAL DEGRADATION OF AROMATIC COMPOUNDS.
J Gen Microbiol. 1963 Aug;32:177-84
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The enzymatic conversion of mandelic acid to benzoic acid. II. Properties of the particulate fractions.
J Bacteriol. 1953 Nov;66(5):543-7
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THE BACTERIAL DEGRADATION OF CATECHOL.
Biochem J. 1965 May;95:466-74
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The enzymatic conversion of mandelic acid to benzoic acid. III. Fractionation and properties of the soluble enzymes.
J Bacteriol. 1953 Nov;66(5):548-53
PMID: 13108854
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Tartaric acid metabolism. V. Crystalline tartrate dehydrogenase.
J Biol Chem. 1968 May 25;243(10):2479-85
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The enzymatic oxidation of p-hydroxymandelic acid to p-hydroxybenzoic acid.
J Bacteriol. 1953 Sep;66(3):341-6
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Enzyme induction and repression in anabolic and catabolic pathways.
Arch Mikrobiol. 1967;59(1):113-22
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On the assay, isolation and characterization of the lac repressor.
J Mol Biol. 1968 Jul 14;34(2):361-4
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Oxidative metabolism of naphthalene by soil pseudomonads. The ring-fission mechanism.
Biochem J. 1964 May;91(2):251-61
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Terminology of enzyme formation.
Nature. 1953 Dec 12;172(4389):1096
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Adaptation patterns in the utilization of the stereo-isomers of tartaric acid by a pseudomonad.
J Bacteriol. 1957 May;73(5):683-4
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The conversion of catechol and protocatechuate to beta-ketoadipate by Pseudomonas putida. 3. Enzymes of the catechol pathway.
J Biol Chem. 1966 Aug 25;241(16):3795-9
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Regulation of synthesis of early enzymes of p-hydroxybenzoate pathway in Pseudomonas putida.
J Biol Chem. 1970 Oct 25;245(20):5304-8
PMID: 5469168
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Glucose and gluconic acid oxidation of Pseudomonas saccharophila.
J Biol Chem. 1952 May;196(2):853-62
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Crystalline oxygenases of pseudomonads.
Bacteriol Rev. 1966 Dec;30(4):720-31
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The evolution of bacterial enzyme systems.
Annu Rev Microbiol. 1970;24:429-62
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Transduction and the clustering of genes in fluorescent Pseudomonads.
Proc Natl Acad Sci U S A. 1968 May;60(1):168-75
PMID: 5242167
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REGULATORY MECHANISMS GOVERNING SYNTHESIS OF THE ENZYMES FOR TRYPTOPHAN OXIDATION BY PSEUDOMONAS FLUORESCENS.
J Gen Microbiol. 1964 May;35:319-34
PMID: 14179678
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Isolation of pure lac operon DNA.
Nature. 1969 Nov 22;224(5221):768-74
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Microbial degradation of aromatic compounds.
Science. 1967 Sep 13;161(3846):1093-7
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Enzymatic adaptation in bacteria.
Annu Rev Microbiol. 1951;5:35-56
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Catabolite repression and the induction of amidase synthesis by Pseudomonas aeruginosa 8602 in continuous culture.
J Gen Microbiol. 1968 Apr;51(2):225-34
PMID: 4968009
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The conversion of catechol and protocatechuate to beta-ketoadipate by Pseudomonas putida. II. Enzymes of the protocatechuate pathway.
J Biol Chem. 1966 Aug 25;241(16):3787-94
PMID: 5916392
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The conversion of catechol and protocatechuate to beta-ketoadipate by Pseudomonas putida.
J Biol Chem. 1966 Aug 25;241(16):3776-86
PMID: 5916391
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Effects of mitomycin C and other antibiotics on the inducible synthesis of protocatechuate 3,4-oxygenase in Pseudomonas aeruginosa.
Z Allg Mikrobiol. 1969;9(2):143-52
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Regulation of arginine and proline catabolism in Bacillus licheniformis.
J Bacteriol. 1968 Aug;96(2):322-9
PMID: 5674049
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Synthesis of the enzymes of the mandelate pathway by Pseudomonas putida. 3. Isolation and properties of constitutive mutants.
J Bacteriol. 1966 Mar;91(3):1161-7
PMID: 5929749