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Escherichia coli - gfp biosensors used to monitor the biological activity of carmustine residues in surface water

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Three genetic constructs with transcriptional fusion of recA, kat G and sodA genotoxin and genotoxin sensitive promoters with green fluorescent protein (gfp) reporter gene in Escherichia coli have been used for assessment of cytotoxic and genotoxic activity of carmustine in surface water. For experiments, the drug was used at concentrations of 0,01; 0,001; 0,0001; 0,00001 and 0,000001 mg/ml. Bacteria strains were incubated with carmustine for 3 and 24 hours. Experimental data showed different sensitivity of applied promoters for the same concentrations of carmustine. Obtained results indicated that, recA::gfpmut2, katG::gfpmut2 and sodA::gfpmut2 genetic systems were sensitive to carmustine, especially at the concentrations of 0,001; 0,0001 and 0,00001 mg/ml. The strongest reactivity was noticed for recA promoter (FI = 14,64). The results indicated that gfp E. coli strains with recA, katG and sodA could be potentially useful for monitoring of cyto- and genotoxic effect of pharmacist residues in surface water.
Rocznik
Strony
131--136
Opis fizyczny
Bibliogr. 16 poz., rys., tab.
Twórcy
autor
  • Wydział Budownictwa i Inżynierii Środowiska, Politechnika Białostocka, ul. Wiejska 45A, 15-351 Białystok
  • Wydział Budownictwa i Inżynierii Środowiska, Politechnika Białostocka, ul. Wiejska 45A, 15-351 Białystok
  • Wydział Budownictwa i Inżynierii Środowiska, Politechnika Białostocka, ul. Wiejska 45A, 15-351 Białystok
Bibliografia
  • Alhadrami H.A., Paton G.I. (2013). The potential applications of SOS-lux biosensors for rapid screening of mutagenic chemicals. FEMS Microbiol. Lett., Vol. 344, No. 1, 69-76.
  • Climent F.M., Cruz-Morato C., Marco-Urrea E., Vicent T., Sarra M., Rodriguez-Mozaz S., Barcelo D. (2015). Non conventional biological treatment based on Trametes versicolor for the elimination of recalcitrant anticancer drugs in hospital wastewater. Chemosphere, Vol. 136, 9-19.
  • El-Sayed M., Abdel-Azis H., Saleh S., Saad A. (2011). The chemopreventive effect of dimethylthiourea against carmustine-induced myelotoxicity in rats. Food Chem. Toxicol., Vol. 49, 1965-1969.
  • González-Gonzáleza M.A., Ostos-Valverdeb A., Becerra Hernándeza A., Sánchez-Castillob H., Martínez-Torre A. (2015). The effect of carmustine on Bergmann cells of the cerebellum. Neurosc. Let., Vol. 595, 18-24.
  • Gutenberg A., Lumenta C.B., Braunsdorf W.E., Sabel M., Mehdorn H.M., Westphal M., Giese A. (2013). The combination of carmustine wafers and temozolomide for the treatment of malignant gliomas. A comprehensive review of the rationale and clinical experience. J. Neurooncol., Vol. 113, 163-174.
  • Kosjek T., Heath E. (2011). Occurrence, fate and determination of cytostatic pharmaceuticals in the environment. Trends Anal. Chem., Vol. 30, 1065-1087.
  • Kostrzyńska M., Leung K.T., Lee H., Trevors J.T. (2002). Green fluorescence protein based biosensor for detecting SOS inducing activity of genotoxic compounds. J Microbiol. Meth., Vol. 48, 43-51.
  • Kümmerer K., Haiß A., Schuster A., Hein A., Ebert I. (2014). Antineoplastic compounds in the environment – substances of special concern. Environ. Sci. Pollut. Res., Vol. 21, 234-246.
  • Lutterbeck C.A., Kern D.I., Machado E.L., Kümmerer K. (2015). Evaluation of the toxic effect of four anti-cancer drugs in plant bioassays and its potency for screening in the contex of waste water reuse for irrigation. Chemosphere, Vol. 135, 403-410.
  • Matejczyk M, Rosochacki S.J, Lewandowski W. (2014). E. coli K-12 recA::gfp microbial biosensor used for screening of anticancer and antidiabetic pharmacist residues. Desal. Wat. Treat., Vol. 2, 1-11.
  • Matejczyk M., Rosochacki S.J. (2015). Potential applications of SOS-GFP biosensor to in vitro rapid screening of cytotoxic and genotoxic effect of anticancer and antidiabetic pharmacist residues in surface water. J. Ecol. Eng., Vol. 16, 116-121.
  • Mater N., Geret F., Castillo L., Faucet-Marquis V., Albasi C., Pfohl-Leszkowicz A. (2014). In vitro tests aiding ecological risk assessment of ciprofloxacin, tamoxifen and cyclophosphamide in range of concentrations released in hospital wastewater and surface water. Environ. Int., Vol. 63, 191-200.
  • Park M., Tsai S.L., Chen W. (2013). Microbial Biosensors: Engineered microorganisms as the sensing machinery. Sensors, Vol. 13, 5777-5795.
  • Ptitsyn L.R., Horneck G., Komova O., Kozubek S., Krasavin E.A., Bonev M., Rettberg P. (1997). A biosensor for environmental genotoxin screening based on an SOS lux assay in recombinant Escherichia coli cells. Appl. Environm. Microbiol., Vol. 63, 4377-4384.
  • Sukumari-Ramesh S., Prasad N., Alleyne C.H., Vender J.R., Dhandapani K.M. (2015). Overexpression of Nrf2 attenuates carmustine induced cytotoxicity in U87MG human glioma cells. BMC Cancer, Vol. 15, 118-129.
  • Zaslaver A., Mayo A.E., Rosemberg R., Bashkin P., Sberro H., Tsalyuk M., Surette M.G., Alon U. (2004). Just-in-time transcription program in metabolic pathways. Nat. Genet., Vol. 36, No. 5, 486-491.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-698fbb9f-3c1e-4852-84ef-3735ca6759af
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