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2010 | 13 | 1 |

Tytuł artykułu

The effects of 2,4-D and dicamba on isoproturon metabolism and selected biochemical parameters in clay soil

Autorzy

Wydawca

-

Rocznik

Tom

13

Numer

1

Opis fizyczny

http://www.ejpau.media.pl/volume13/issue1/art-13.html

Twórcy

  • Department of Biochemistry, West Pomeranian Technological University, Slowackiego 17, 71-434 Szczecin, Poland

Bibliografia

  • 1. Abdelmagid H.M., Tabatabai M.A., 1987. Nitrate reductase activity of soils. Soil Biol. Biochem. 19, 421–427.
  • 2. Atkinson D.E., Walton G.M., 1977. Adenosine triphosphate conversation in metabolism regulation. Rat liver cleavage enzyme. J. Biol. Chem. 242, 3239–3241.
  • 3. Bai Q.I., Zelles L., Scheunert I., Korte F., 1989. Determination of adenine nucleotides in soil by ion-paired reserve-phase high-performance liquid chromatography. J. Microbiol. Methods 9, 345–351.
  • 4. Bending G.D., Lincoln S.D., Sørensen S.R., Morgan J.A.W., Aamand J., Walker A., 2003. In-field spatial variability in the degradation of the phenyl-urea herbicide isoproturon in the result of interaction between degradative Sphingomonas spp. and soil pH. Appl. Environ. Microbiol. 62, 827–834.
  • 5. Bending G.D., Lincoln S.D., Edmondson R.N., 2006. Spatial variation in the degradation rate of the pesticides isoproturon, azoxystrobin and diflufenican in soil and relationship with chemical and microbial properties. Environ. Poll. 139, 279–287.
  • 6. Berger B., Heitefuss R., 1991. Use of isoproturon, alone nad with other post-emergence in winter and spring, on winter wheat anf winter barley. II. Side effects on dehydrogenase activity, nitrogen transformation and straw decomposition in soil. Weed Res. 31(1), 9–18.
  • 7. Berger B.M., 1998. Parameters influencing biotransformation rates of phenylurea herbicides by soil microorganisms. Pest. Biochem. Physiol. 60, 71–82.
  • 8. Brzezińska M., 2002. Significance of soil enzymes in nutrient transformation. Acta Agrophys. 65, 5–23.
  • 9. Burns R.G., 1978. Soil enzymes. Academic Press, London, 380.
  • 10. Comfort S.D., Inskeep W.P., Macur R.E., 1992. Degradation and transport of dicamba in a clay soil. J. Environ. Qual. 21, 653–658.
  • 11. Cox L., Walker A., Welch S.J., 1996. Evidence for the enhanced biodegradation of isoproturon in soils. Pest. Sci. 48, 253–260.
  • 12. Dyckmans J., Raubuch M., 1997. A modification of a method to determine adenosine nucleotides in forest organic layers and mineral soils by ion-paired reserved-phase high-performance liquid chromatography. J. Microbiol. Methods 30, 13–20.
  • 13. Gebendinger N., Radosevich M., 1999. Inhibition of atrazine degradation by cyanazine and exogenous nitrogen in bacterial izolate M91-3. Appl. Microbiol. Biotechnol. 51, 375–381.
  • 14. Gu J.-G., Fan Y., Gu J.-D., 2003. Biodegradability of atrazine, cyanazine and dicamba under methanogenic condition in three soils of China. Chemosphere 52, 1515–1521.
  • 15. Johnson A.C., Haria A.H., Bhardwaj C.L., Völkner C., Batchelor C.H., Walker A., 1994. Water movement and isoproturon behaviour in a drained heavy clay soil: 2. Persistence and transport. J. Hydrol. 163, 217–231.
  • 16. Juhler R.K., Sørensen S.R., Larsen L., 2001. Analysing transformation products of herbicide residues in environmental samples. Wat. Res. 35, 1371–1378.
  • 17. Krutz L.J., Senseman S.A., Haney R.L., 2003. Effect of Roundup Ultra on atrazine degradation in soil. Biol. Fertil. Soils 38, 115–118.
  • 18. Lehr S., Scheunert I., Beese F., 1996. Mineralization of free and cell-wall-bound isoproturon in soils in relation to soil microbial parameters. Soil Biol. Biochem. 28, 1–8.
  • 19. Mansour M., Feicht E.A., Behechti A., Schramm K.W., Kettrup A., 1999. Determination photostability of selected agrochemicals in water and soil. Chemosphere 39, 575–585.
  • 20. McGhee I., Burns R.I., 1995. Biodegradation of 2,4-dichlorophenoxyacetic acid (2,4-D) and 2-methyl-4-chlorophenoxyacetic acid (MCPA) in contaminated soil. Appl. Soil Ecol. 2, 143–154.
  • 21. Mosleh Y.Y., Paris-Palacios S., Couderchet M., Vernet G., 2003. Effects of the herbicide isoproturon on survival, growth rate, and protein content of mature earthworms (Lubricus terrestris L.) and its fate in the soil. Appl. Soil Ecol. 23, 69–77.
  • 22. Nowak J., Telesiński A., 2004. Wpływ dodatku 2,4-D i dikamby w formach użytkowych pestycydów zawierających izoproturon na szybkość jego zanikania i zmiany aktywności peroksydazowej w glebie. [Effect of 2,4-D and dicamba addition to pesticides containig isoproturon on its degradation and peroxidase activity in soil]. Zesz. Probl. Post. Nauk Rol. 501, 343–350 [in Polish].
  • 23. Nowak J., Telesiński A., Szymczak J., 2006a. Comparison of herbicide containing isoproturon, 2,4-D and dicamba on phosphatase activity in soil and in spring wheat (Triticum aestivum L.). Electron. J. Pol. Agric. Univ. Agron. Vol. 9. Iss. 1: http://ejpau.media.pl/volume9/issue1/art-17.html
  • 24. Nowak J., Telesiński A., Postek I., Waltrowski P., 2006b. Rola herbicydów Izoturon 500 SC i Segal 65 WG w kształtowaniu aktywności katalazy oraz peroksydazy w glebie i roślinach pszenicy jarej. [The role of Izoturon 500 SC and Segal 65 WG herbicides in shaping of catalase and peroxidase activity in soil and spring wheat plants]. Zesz. Probl. Post. Nauk Rol. 515, 317–326 [in Polish].
  • 25. Pavel E.W., Loper A.R., Berry D.F., Smith E.P., Reneau Jr R.B., Mostaghimi S., 1999. Anaerobic degradation of dicamba and metribuzin in Riparian Wetland soils. Wat. Res. 3, 87–94.
  • 26. Perrin-Ganier C., Breuzin C., Portal J.-M., Schiavon M., 1996. Availability and persistence of isoproturon under field and laboratory conditions. Ecotoxicol. Environ. Saf. 35, 226–230.
  • 27. Perrin-Ganier C., Schavion F., Morel J.-L., Schavion M., 2001. Effect of sludge-amendment nutrient addition on the biodegradation of the herbicide isoproturon on soil. Chemosphere 44, 887–892.
  • 28. Perucci P., Vischietti C. Battistioni F., 1999. Rimsulfuron in a silty clay loam soil: Effect upon microbiological microcosm conditions. Soil Biol. Biochem. 31, 195–204.
  • 29. Pieuchot M., Perrin-Ganier C., Portal J.-M., Schiavon M., 1996. Study of the mineralization and degradation of isoproturon in three soils. Chemosphere 33, 467–478.
  • 30. Sadowski J., Kucharski M., 2006. Monitoring pozostałości herbicydów stosowanych w uprawie zbóż w wodach na terenach rolniczych. [Monitoring of cereal herbicide residues in water on arable areas]. Prog. Plant Protect. 46(1), 520–526 [in Polish].
  • 31. Sørensen S.R., Aamand J., 2001. Biodegradation of the phenylurea herbicide and its metabolites in agricultural soils. Biodegradation 12, 69–77.
  • 32. Sørensen S.R., Bending G.D., Jacobsen C.S., Walker A., Aamand J., 2003. Microbial biodegradation of isoproturon and related phenylurea herbicides in and below agricultural fields. FEMS Microbiol. Ecol. 45, 1–11.
  • 33. Suhadolc M., Schroll R., Gattinger A., Schloter M., Munch J.C., Lestan D., 2004. Effects of modified Pb-, Zn-, and Cd-availability on the microbial communities and the degradation of isoproturon in a heavy metal contaminated soil. Soil Biol. Biochem. 36, 1943–1954.
  • 34. Teisseire H., Couderchet M, Vernet G., 1999. Phytotoxicity of diuron alone and in combination with copper and folpet on duckweed (Lemna minor). Environ. Poll. 106, 39–45.
  • 35. Thalmann A. 1968., Zur Methodik der Bestimmund der Dehydrogenaseaktivität im Boden mittels Triphenyltetrazoliumchlorid (TTC). [Evaluation of dehydrogenase activity with TTC method]. Landwritsch. Forsch. 21, 249–258 [in German].
  • 36. Voos G., Groffman P.M., 1997. Relationships between microbial biomass and dissipation of 2,4-D and dicamba in soil. Biol. Fertil. Soils 24, 106–110.
  • 37. Walker A., Jurando-Exposito M., Bending G.D., Smith V.J.R., 2001. Spatial variability in the degradation rate of isoproturon in soil. Environ. Poll. 111, 407–415.
  • 38. Walker A., Bromilow R.H., Nicholls P.H., Evans A.A., Smith V.J.R., 2002. Spatial variability in the degradation rate of isoproturon and chlorotoluron in clay soil. Weed Res. 42, 39–44.
  • 39. Walker A., Austin C.R. 2004. Effect of recent cropping history and herbicide use on the degradation rates of isoproturon in soils. Weed Res. 44, 5–11.
  • 40. Wiese M., Seydel U. 1995. Monitoring of drug effects on cultivable mycobacteria and Mycobacterium leprae via the determination of their adenylate energy charges (AEC). J. Microbiol. Methods 24, 65–80.

Typ dokumentu

Bibliografia

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Identyfikator YADDA

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