Microbial metabolism and transformation of selected monoterpenes
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[1] M. Trower,et al. Characterisation of cyclohexane hydroxylase; a three-component enzyme system from a cyclohexane-grown Xanthobacter sp. , 1991 .
[2] F. Guengerich. Reactions and significance of cytochrome P-450 enzymes. , 1991, The Journal of biological chemistry.
[3] I. C. Gunsalus,et al. Protein components of a cytochrome P-450 linalool 8-methyl hydroxylase. , 1990, The Journal of biological chemistry.
[4] M. Trower,et al. Characterisation of cyclohexane hydroxylase; involvement of a cytochrome P-450 system from a cyclohexane grown Xanthobacter sp. , 1990 .
[5] J. Borden,et al. New metabolites of α-pinene produced by the mountain pine beetle, Dendroctonus ponderosae (Coleoptera: Scolytidae) , 1990 .
[6] P. Trudgill,et al. Metabolism of 1,8-Cineole by a Rhodococcus Species: Ring Cleavage Reactions , 1989 .
[7] R. Croteau,et al. Biosynthesis of monoterpenes. Stereochemistry of the enzymatic cyclizations of geranyl pyrophosphate to (+)-alpha-pinene and (-)-beta-pinene. , 1989, The Journal of biological chemistry.
[8] N. Hori,et al. Microbial Conversion of β-Myrcene by Aspergillus niger , 1988 .
[9] P. Trudgill,et al. Bacterial metabolism of alpha-pinene: pathway from alpha-pinene oxide to acyclic metabolites in Nocardia sp. strain P18.3 , 1987, Journal of bacteriology.
[10] P. Trudgill,et al. Purification and properties of alpha-pinene oxide lyase from Nocardia sp. strain P18.3 , 1987, Journal of bacteriology.
[11] J. J. Steffens,et al. Microbial Hydroxylation of 1,4-Cineole , 1987, Applied and environmental microbiology.
[12] J. J. Steffens,et al. Microbiological reductions of enantiomeric 2-oxo-1,4-cineoles , 1987 .
[13] D. Best,et al. Initial Enzymatic Steps In The Degradation Of Alpha-Pinene By Pseudomonas Fluorescens Ncimb 11671 , 1987 .
[14] P. Schreier,et al. Biotransformation of Linalool by Botrytis cinerea , 1986 .
[15] Ortiz de Montellano,et al. Cytochrome P-450: Structure, Mechanism, and Biochemistry , 1986 .
[16] P. Trudgill,et al. Camphor revisited: studies of 2,5-diketocamphane 1,2-monooxygenase from Pseudomonas putida ATCC 17453 , 1986, Journal of bacteriology.
[17] I. Macrae,et al. The oxidation of 1,8-cineole by Pseudomonas flava , 1986 .
[18] P. Trudgill. CHAPTER 14 – Terpenoid Metabolism by Pseudomonas , 1986 .
[19] S. Sligar,et al. Cytochrome P-450cam and Other Bacterial P-450 Enzymes , 1986 .
[21] D. Gibson. Microbial degradation of organic compounds. , 1984 .
[22] J. Byers. Bark Beetle Conversion of a Plant Compound to a Sex-Specific Inhibitor of Pheromone Attraction , 1983, Science.
[23] P. Trudgill,et al. Camphor revisited: involvement of a unique monooxygenase in metabolism of 2-oxo-delta 3-4,5,5-trimethylcyclopentenylacetic acid by Pseudomonas putida , 1983, Journal of bacteriology.
[24] H. Nishimura,et al. Eucalyptus as Biomass. Novel Compounds from Microbial Conversion of 1, 8-Cineole , 1982 .
[25] Masazumi Watanabe,et al. Transformation of Terpenoids in Grape Must by Botrytis cinerea , 1982 .
[26] M. Gelb,et al. Cytochrome P450cam catalyzed epoxidation of dehydrocamphor. , 1982, Biochemical and biophysical research communications.
[27] M. Calvin,et al. Eucalyptus radiata Oil as a Renewable Biomass , 1980 .
[28] C. R. Strauss,et al. Hydroxylated linalool derivatives as precursors of volatile monoterpenes of muscat grapes , 1980 .
[29] L. E. Browne,et al. In vivo conversion of a labelled host plant chemical to pheromones of the bark beetle Ips paraconfusus , 1980, Nature.
[30] M. J. Coon,et al. Oxygen activation by cytochrome P-450. , 1980, Annual review of biochemistry.
[31] I. M. Shaw,et al. Products of 1,8-Cineole Oxidation by a Pseudomonad , 1979 .
[32] C. Coscia,et al. Cytochrome P-450LM2 mediated hydroxylation of monoterpene alcohols. , 1978, Biochemistry.
[33] D. Kelly,et al. alpha-Pinene metabolism by Pseudomonas putida. , 1977, The Biochemical journal.
[34] L. E. Browne,et al. Production of verbenol pheromone by a bacterium isolated from bark beetles , 1975, Nature.
[35] T. Perry,et al. Interrelationships Among Microorganisms Bark or Ambrosia Beetles, and Woody Host Tisssue: An Annotated Bibliography, 1965-1974 , 1975 .
[36] Y. Noma,et al. Conversion of (-)-Carvone and (+)-Carvone by a Strain of Aspergillus niger , 1974 .
[37] O. Hayaishi. Molecular mechanisms of oxygen activation , 1974 .
[38] J. Lipscomb,et al. 14 – BACTERIAL MONOXYGENASES—THE P450 CYTOCHROME SYSTEM* , 1974 .
[39] W. Gensler,et al. Synthesis of chaminic acid , 1973 .
[40] A. Chakrabarty,et al. A transmissible plasmid controlling camphor oxidation in Pseudomonas putida. , 1973, Proceedings of the National Academy of Sciences of the United States of America.
[41] W. Lovenberg. Iron-sulfur proteins, , 1973 .
[42] S. Pirt,et al. The degradation of α‐pinene by Pseudomonas PX1 , 1971 .
[43] D. W. Ribbons,et al. Monoterpene Dissimilation: Chemical and Genetic Models , 1971 .
[44] G. S. Boyd. Mixed-function oxidation. , 1970, The Biochemical journal.
[45] H. Francke-Grosmann. CHAPTER 3 – Ectosymbiosis in Wood-Inhabiting Insects , 1967 .
[46] P. Trudgill,et al. Mixed function oxidation. VI. Purification of a tightly coupled electron transport complex in camphor lactonization. , 1966, The Journal of biological chemistry.
[47] Rangachari Pn,et al. Microbiological transformations of terpenes. IX. Pathways of degradation of limonene in a soil pseudomonad. , 1966 .
[48] Bhattacharyya Pk,et al. Microbiological transformations of terpenes. 8. Fermentation of limonene by a soil pseudomonad. , 1966 .
[49] P. Trudgill,et al. Mixed function oxidation. V. Flavin interaction with a reduced diphosphopyridine nucleotide dehydrogenase, one of the enzymes participating in camphor lactonization. , 1966, The Journal of biological chemistry.
[50] K. Rinehart,et al. A New Acyclic Acid Metabolite in Camphor Oxidation , 1966 .
[51] K. Lieb,et al. Mixed function oxidation. 3. An electron transport complex in camphor ketolactonization. , 1965, The Journal of biological chemistry.
[52] I. C. Gunsalus,et al. MIXED FUNCTION OXIDATION. II. SEPARATION AND PROPERTIES OF THE ENZYMES CATALYZING CAMPHOR LACTONIZATION. , 1965, The Journal of biological chemistry.
[53] D. A. Yphantis. EQUILIBRIUM ULTRACENTRIFUGATION OF DILUTE SOLUTIONS. , 1964, Biochemistry.
[54] E. Kováts. Zur Kenntnis ätherischer Öle. 4. Mitteilung. Zur Kenntnis des sog. «destillierten» Limetten‐Öls (Citrus medica, L., var. acida, BRANDIS; Citrus aurantifolia, SWINGLE) , 1963 .
[55] P. Bhattacharyya,et al. Microbiological Transformation of Terpenes , 1962 .
[56] P. Bhattachryya,et al. Microbiological transformations of terpenes. III. Transformations of some mono- and sesqui-terpenes. , 1962, Applied microbiology.
[57] P. Schenk,et al. Zur Kenntnis des Sπ , 1962 .
[58] I. C. Gunsalus,et al. An enzyme system for cyclic ketone lactonization. , 1961, Biochemical and biophysical research communications.
[59] R. Cain. The metabolism of protocatechuic acid by a vibrio. , 1961, The Biochemical journal.
[60] R. Stanier,et al. The Bacteria: A treatise on structure and function. Vol. Ill: Biosynthesis. Vol. IY: The physiology of growth. , 1960 .
[61] E. Corey,et al. MICROBIOLOGICAL DEGRADATION OF (+)-CAMPHOR , 1959 .
[62] J. Topliss,et al. The Chemistry of the Natural Order Cupressales. XVI. Heartwood Constituents of Chamaecyparis nootkatensis (Lamb.) Spach. The Structure of Chamic and Chaminic Acids. , 1956 .
[63] Sven Östling,et al. The Chemistry of the Natural Order Cupressales. VIII. Heartwood Constituents of Chamaecyparis nootkatensis - Carvacrol, Nootkatin, and Chamic Acid. , 1952 .
[64] T. Friedemann,et al. PYRUVIC ACID II. THE DETERMINATION OF KETO ACIDS IN BLOOD AND URINE , 1943 .
[65] O. Wallach. Zur Konstitutionsbestimmung des Terpineols , 1895 .