Tin-Carbon Cleavage of Organotin Compounds by Pyoverdine from Pseudomonas chlororaphis
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H. Inoue | K. Murakami | O. Takimura | H. Fuse | Y. Yamaoka | T. Nitoda | K. Kawaguchi
[1] T. Alatossava,et al. Application of Siderotyping for Characterization of Pseudomonas tolaasii and “Pseudomonas reactans” Isolates Associated with Brown Blotch Disease of Cultivated Mushrooms , 2000, Applied and Environmental Microbiology.
[2] Jean-Marie Meyer,et al. Pyoverdines: pigments, siderophores and potential taxonomic markers of fluorescent Pseudomonas species , 2000, Archives of Microbiology.
[3] G. Gadd. Microbial interactions with tributyltin compounds: detoxification, accumulation, and environmental fate. , 2000, The Science of the total environment.
[4] H. Inoue,et al. Degradation of Triphenyltin by a Fluorescent Pseudomonad , 2000, Applied and Environmental Microbiology.
[5] J. Cooney,et al. Organotin compounds and their interactions with microorganisms. , 1999, Canadian journal of microbiology.
[6] J. Lefèvre,et al. Bacterial iron transport: 1H NMR determination of the three-dimensional structure of the gallium complex of pyoverdin G4R, the peptidic siderophore of Pseudomonas putida G4R. , 1998, Biochemistry.
[7] S. Shivaji,et al. Siderotyping of fluorescent pseudomonads: characterization of pyoverdines of Pseudomonas fluorescens and Pseudomonas putida strains from Antarctica. , 1998, Microbiology.
[8] H. Harino,et al. Degradation of tributyltin by a bacterial strain isolated from polluted river water , 1998 .
[9] W. Kisaalita,et al. Fluorescent Pseudomonad Pyoverdines Bind and Oxidize Ferrous Ion , 1998, Applied and Environmental Microbiology.
[10] Minoru Fukushima,et al. Degradation of the tributyltin compounds by the microorganisms in water and sediment collected from the harbour area of Osaka City, Japan , 1997 .
[11] H. Harino,et al. Susceptibility of bacterial populations to organotin compounds and microbial degradation of organotin compounds in environmental water , 1997 .
[12] P. Kyslík,et al. Bacterial iron transport: Structure elucidation by FAB-MS and by 2D NMR (1H, 13C, 15N) of pyoverdin G4R, a peptidic siderophore produced by a nitrogen-fixing strain of Pseudomonas putida , 1997 .
[13] Richard F. Lee,et al. Triphenyltin and its degradation products in foliage and soils from sprayed pecan orchards and in fish from adjacent ponds , 1996 .
[14] A. Fargašová,et al. Effect of organotin compounds on the growth of the freshwater alga Scenedesmus quadricauda. , 1996, Ecotoxicology and environmental safety.
[15] K. Fent. Organotin compounds in municipal wastewater and sewage sludge: contamination, fate in treatment process and ecotoxicological consequences , 1996 .
[16] R. Hartmann,et al. Pyoverdin, Ferribactin, Azotobactin -a New Triade of Siderophores from Pseudomonas chlororaphis ATCC 9446 and Its Relation to Pseudomonas fluorescens ATCC 13525 , 1995 .
[17] P. Wilairat,et al. Isolation of bacterial culture capable of degrading triphenyltin pesticides , 1995 .
[18] M. Astruc,et al. Biotransformation of butyltin compounds using pure strains of microorganisms , 1995 .
[19] N. Koedam,et al. Detection and differentiation of microbial siderophores by isoelectric focusing and chrome azurol S overlay , 1994, Biometals.
[20] S. Masunaga,et al. Degradation of tri-n-butyltin in Ise Bay sediment. , 1994, Chemosphere.
[21] K. Fent,et al. Effects of triphenyltin on fish early life stages , 1994, Archives of environmental contamination and toxicology.
[22] B. Hattum,et al. Assessment of transport routes of triphenyltin used in potato culture in the Netherlands , 1994 .
[23] P. Azadi,et al. Bacterial siderophores: the structures of the pyoverdins of Pseudomonas fluorescens ATCC 13525 , 1992 .
[24] K. Fent,et al. PHENYLTINS IN WATER, SEDIMENT, AND BIOTA OF FRESHWATER MARINAS , 1991 .
[25] A. Dell,et al. Bacterial siderophores : structure and NMR assignment of pyoverdins Pa, siderophores ofPseudomonas aeruginosa ATCC 15692 , 1990, Biology of Metals.
[26] P. E. Gibbs,et al. A Comparison of the Effectiveness of Tri-N-Butyltin Chloride and Five other Organotin Compounds in Promoting the Development of Imposex in the Dog-Whelk, Nucella Lapillus , 1988, Journal of the Marine Biological Association of the United Kingdom.
[27] A. Dell,et al. Structure of azotobactin D, a siderophore of Azotobacter vinelandii strain D (CCM 289) , 1988 .
[28] Manabu Yamamoto,et al. Hydride-generation atomic absorption spectrometry coupled with flow injection analysis , 1985 .
[29] M. Llinás,et al. Siderochromes from Pseudomonas fluorescens. I. Isolation and characterization. , 1982, The Journal of biological chemistry.
[30] D. F. Martin,et al. Organometallic Compounds : IV. Phenyl-tin cleavage by chelating agents , 1965 .
[31] H. Budzikiewicz,et al. The Siderophores of Pseudomonas fluorescens 18.1 and the Importance of Cyclopeptidic Substructures for the Recognition at the Cell Surface , 2000, Zeitschrift fur Naturforschung. C, Journal of biosciences.
[32] P. Cornelis,et al. Use of siderophores to type pseudomonads: the three Pseudomonas aeruginosa pyoverdine systems. , 1997, Microbiology.
[33] H. Shiraishi,et al. Effects of triphenyltin chloride and five other organotin compounds on the development of imposex in the rock shell, Thais clavigera. , 1997, Environmental pollution.
[34] A. Dell,et al. Bacterial siderophores: unusual 3,4,5,6-tetrahydropyrimidine-based amino acids in pyoverdins frompseudomonas fluorescens , 1990 .
[35] M. Knuth,et al. Acute toxicity of triphenyltin hydroxide to three cladoceran species. , 1989, Environmental pollution.
[36] D. F. Martin,et al. Organometallic compounds : V. Kinetics of phenyl-tin cleavage by a chelating agent , 1966 .