Microbial degradation of isoproturon and related phenylurea herbicides in and below agricultural fields.
暂无分享,去创建一个
[1] J. Aamand,et al. Biodegradation of the Phenylurea Herbicide Isoproturon and its Metabolites in Agricultural Soils , 2004, Biodegradation.
[2] J. Aamand,et al. Rapid mineralisation of the herbicide isoproturon in soil from a previously treated Danish agricultural field. , 2003, Pest management science.
[3] J. Aamand,et al. Mineralization of soil-aged isoproturon and isoproturon metabolites by Sphingomonas sp. strain SRS2. , 2003, Journal of environmental quality.
[4] G. Bending,et al. In-Field Spatial Variability in the Degradation of the Phenyl-Urea Herbicide Isoproturon Is the Result of Interactions between Degradative Sphingomonas spp. and Soil pH , 2003, Applied and Environmental Microbiology.
[5] P. J. Chilton,et al. A field study to assess the degradation and transport of diuron and its metabolites in a calcareous soil. , 2002, The Science of the total environment.
[6] S. Capasso,et al. Kinetics of the chemical degradation of diuron. , 2002, Chemosphere.
[7] J. Aamand,et al. Growth in Coculture Stimulates Metabolism of the Phenylurea Herbicide Isoproturon by Sphingomonas sp. Strain SRS2 , 2002, Applied and Environmental Microbiology.
[8] J. Vervoort,et al. Reductive deamination as a new step in the anaerobic microbial degradation of halogenated anilines. , 2002, FEMS microbiology letters.
[9] R. Bromilow,et al. Spatial variability in the degradation rates of isoproturon and chlorotoluron in a clay soil , 2002 .
[10] M. Sancelme,et al. Isolation, characterization and diuron transformation capacities of a bacterial strain Arthrobacter sp. N2. , 2002, Chemosphere.
[11] M. Sancelme,et al. Biotransformation of phenylurea herbicides by a soil bacterial strain, Arthrobacter sp. N2: structure, ecotoxicity and fate of diuron metabolite with soil fungi. , 2002, Chemosphere.
[12] J. Aamand,et al. Isolation from Agricultural Soil and Characterization of a Sphingomonas sp. Able To Mineralize the Phenylurea Herbicide Isoproturon , 2001, Applied and Environmental Microbiology.
[13] D. Gooddy,et al. Penetration of herbicides to groundwater in an unconfined chalk aquifer following normal soil applications. , 2001, Journal of contaminant hydrology.
[14] R. Schwarzenbach,et al. Determination of phenylurea herbicides in natural waters at concentrations below 1 ng l(-1) using solid-phase extraction, derivatization, and solid-phase microextraction-gas chromatography-mass spectrometry. , 2001, Journal of chromatography. A.
[15] R. Schwarzenbach,et al. Quantification of dissolved natural organic matter (DOM) mediated phototransformation of phenylurea herbicides in lakes. , 2001, Environmental science & technology.
[16] J. Morel,et al. Effect of sludge-amendment or nutrient addition on the biodegradation of the herbicide isoproturon in soil. , 2001, Chemosphere.
[17] J. Aamand,et al. Degradation of herbicides in two sandy aquifers under different redox conditions. , 2001, Chemosphere.
[18] E. Shaw,et al. Spatial heterogeneity in the metabolism and dynamics of isoproturon degrading microbial communities in soil , 2001, Biology and Fertility of Soils.
[19] J. Aamand,et al. Mineralization of 2,4-D, mecoprop, isoproturon and terbuthylazine in a chalk aquifer. , 2001, Pest management science.
[20] J. Morgan,et al. Identification and characterisation of a diuron-degrading bacterium , 2001, Biology and Fertility of Soils.
[21] E. Shaw,et al. Degradation of Substituted Phenylurea Herbicides byArthrobacter globiformis Strain D47 and Characterization of a Plasmid-Associated Hydrolase Gene,puhA , 2001, Applied and Environmental Microbiology.
[22] M. Jurado-Expósito,et al. Spatial variability in the degradation rate of isoproturon in soil. , 2001, Environmental pollution.
[23] S. El-Fantroussi. Enrichment and Molecular Characterization of a Bacterial Culture That Degrades Methoxy-Methyl Urea Herbicides and Their Aniline Derivatives , 2000, Applied and Environmental Microbiology.
[24] C. T. Bryson,et al. Interactions of tillage and soil depth on fluometuron degradation in a Dundee silt loam soil , 2000 .
[25] A. Johnson,et al. Potential for isoproturon, atrazine and mecoprop to be degraded within a chalk aquifer system , 2000 .
[26] J. Aamand,et al. Mecoprop, isoproturon, and atrazine in and above a sandy aquifer: vertical distribution of mineralization potential. , 2000 .
[27] M. Sancelme,et al. Fungal biodegradation of a phenylurea herbicide, diuron: structure and toxicity of metabolites , 2000 .
[28] E. Thurman,et al. Occurrence of cotton herbicides and insecticides in playa lakes of the High Plains of West Texas. , 2000, The Science of the total environment.
[29] I. Scheunert,et al. Formation and release of residues of the 14C-labelled herbicide isoproturon and its metabolites bound in model polymers and in soil. , 2000, Environmental pollution.
[30] W. Verstraete,et al. Microbiological and genetic characterization of a linuron degrading consortium. , 2000 .
[31] B. Berger. Factors influencing transformation rates and formation of products of phenylurea herbicides in soil. , 1999, Journal of agricultural and food chemistry.
[32] A. Walker,et al. Rapid biodegradation of diuron and other phenylurea herbicides by a soil bacterium , 1999 .
[33] L. Cox,et al. Studies of time-dependent sorption of linuron and isoproturon in soils , 1999 .
[34] N. H. Spliid,et al. Occurrence of pesticides in Danish shallow ground water. , 1998, Chemosphere.
[35] Walker,et al. Isolation of isoproturon‐degrading bacteria from treated soil via three different routes , 1998, Journal of applied microbiology.
[36] P. J. Chilton,et al. Potential for aerobic isoproturon biodegradation and sorption in the unsaturated and saturated zones of a chalk aquifer , 1998 .
[37] J. Lester,et al. Sources of organic micropollutants to lowland rivers , 1998 .
[38] T. E. Sawyer,et al. Diuron and its metabolites in surface water and ground water by solid phase extraction and in-vial elution , 1997 .
[39] A. Kettrup,et al. Detection and Identification of the Herbicide Isoproturon and its Metabolites in Field Samples After a Heavy Rainfall Event , 1996 .
[40] S. Lehr,et al. Metabolism of isoproturon in soils originating from different agricultural management systems and in cultures of isolated soil bacteria , 1996 .
[41] L. Cox,et al. Evidence for the accelerated degradation of isoproturon in soils , 1996 .
[42] R. Steiman,et al. Biodegradation of three substituted phenylurea herbicides (chlortoluron, diuron, and isoproturon) by soil fungi. A comparative study. , 1996, Chemosphere.
[43] Atholl Johnston,et al. Spatial and temporal variation of isoproturon residues and associated sorption/desorption parameters at the field scale , 1996 .
[44] M. Schiavon,et al. Study on the mineralization and degradation of isoproturon in three soils , 1996 .
[45] R. Kubiak,et al. Degradation of isoproturon in soil in relation to changes of microbial biomass and activity in small-scale laboratory and outdoor studies , 1995 .
[46] W. Traunspurger,et al. A method to assess the toxicity of pollutants on anaerobic microbial degradation activity in sediments , 1994 .
[47] M. Sabar,et al. Changes in the concentrations of isoproturon and its degradation products in soil and soil solution during incubation at two temperatures , 1994 .
[48] A. Ferioli,et al. Substituted ureas. , 1994, Toxicology.
[49] A. Walker,et al. Studies on a mixed bacterial culture from soil which degrades the herbicide linuron , 1993 .
[50] S. Mukerjee,et al. The photochemical decomposition of the herbicide isoproturon , 1986 .
[51] R. Bartha,et al. Mechanisms and pathways of aniline elimination from aquatic environments , 1984, Applied and environmental microbiology.
[52] S. Wright,et al. The persistence and metabolism of isoproturon in soil , 1983 .
[53] N. Camper,et al. Degradation of selected phenylurea herbicides by anaerobic pond sediment. , 1982, Journal of environmental science and health. Part. B, Pesticides, food contaminants, and agricultural wastes.
[54] M. Alexander,et al. Biodegradation of chemicals of environmental concern. , 1981, Science.
[55] G. Parris,et al. Environmental and metabolic transformations of primary aromatic amines and related compounds. , 1980, Residue reviews.
[56] J. Bollag,et al. Adsorption and transformation of four substituted anilines in soil , 1978 .
[57] G. Briggs,et al. The fate of the herbicide chlortoluron and its possible degradation products in soils , 1978 .
[58] B. Tweedy,et al. Degradation of four phenylurea herbicides by mixed populations of microorganisms from two soil types , 1973 .
[59] G. Engelhardt,et al. Purification and Properties of an Aryl Acylamidase of Bacillus sphaericus, Catalyzing the Hydrolysis of Various Phenylamide Herbicides and Fungicides , 1973 .
[60] G. Engelhardt,et al. Purification and properties of an aryl acylamidase of Bacillus sphaericus, catalyzing the hydrolysis of various phenylamide herbicides and fungicides. , 1973, Applied microbiology.
[61] H. Funderburk,et al. Degradation of Fluometuron in Sandy Loam Soil , 1971, Weed Science.
[62] C. Loeppky,et al. Metabolism of 3-(p-bromophenyl)-1-methoxy-1-methylurea (metobromuron) by selected soil microorganisms. , 1970, Journal of agricultural and food chemistry.
[63] P. Wallnöfer. THE DECOMPOSITION OF UREA HERBICIDES BY BACILLUS SPHAERICUS, ISOLATED FROM SOIL , 1969 .
[64] R. L. Dalton,et al. Disappearance of Diuron from Cotton Field Soils , 1966 .
[65] D. Finnerty,et al. The Fate of Substituted Urea Herbicides in Agricultural Soils 1 , 1955 .