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Photodegradation and phototoxicity of thioridazine and chlorpromazine evaluated with chemical analysis and aquatic organisms

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Abstract

The photochemical behaviour of chlorpromazine (CPZ) and thioridazine (THR) incubated under VIS light and a UV-A lamp was investigated with a high-performance liquid chromatography photodiode array detector (HPLC-PAD) and two bioassays. VIS light caused the decrease of CPZ and THR to 25% and 34% of the initial level, respectively, while UV-A degraded the drugs almost totally. CPZ and THR were very toxic to the protozoan Spirostomum ambiguum (Spirotox) and anostracan crustacean Thamnocephalus platyurus (Thamnotoxkit FTM) with 24-h LC50 values of around 0.5 mg l−1. In spite of the drastic decrease of the concentration of the drugs, the irradiated samples were toxic to the protozoan, especially when a sublethal end-point was taken into consideration. Contrary to the protozoan the crustacean was not sensitive to the products of photodegradation. Mass spectrometry analysis showed the presence of dimers and trimers of the CPZ and mono-, di-, and tri-oxygenated derivatives of THR. The presented data give a strong indication of the importance of the investigation of the environmental fate of drugs, especially those known to be phototoxic.

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References

  • Andrisano V, Hrelia P, Gotti R, Leoni A, Cavrini V (2001) Photostability and phototoxicity studies on diltiazem. J Pharm Biomed Anal 25:589–597

    Article  CAS  Google Scholar 

  • Bastianon Ch, Zanoni R, Miolo G, Caffieri S, Reddi E (2005) Mitochondria and plasma membrane as targets of UVA-induced toxicity of neuroleptic drugs fluphenazine, perphenazine and thioridazine. Intl J Biochem Cell Biol 37:901–908

    Article  Google Scholar 

  • DellaGreca M, Fiorentino A, Isidori M, Lavorgna M, Previtera L, Rubino M, Temussi F (2004a) Toxicity of prednisolone, dexamethasone and their photochemical derivatives on aquatic organisms. Chemosphere 54:629–637

    Article  CAS  Google Scholar 

  • DellaGreca M, Brigante M, Isidori M, Nardelli A, Previtera L, Rubino M, Temussi F (2004b). Phototransformation and ecotoxicity of the drug Nuaproxen-Na. Environ Chem Lett 1:237–241

    Article  CAS  Google Scholar 

  • Doll TE, Frimmel FH (2003) Fate of pharmaceuticals––photodegradation by simulated solar UV-light. Chemosphere 52:1757–1769

    Article  CAS  Google Scholar 

  • Fent K, Weston AA, Caminada D (2006) Ecotoxicology of human pharmaceuticals. Aquat Toxicol 76:122–159

    Article  CAS  Google Scholar 

  • Gocke E (1996) Review of the genotoxic properties of chlorpromazine and related phenothiazines. Mutat Res 366:9–21

    Google Scholar 

  • Hilton MJ, Thomas KV (2003) Determination of selected human pharmaceutical compounds in effluent and surface water samples by high-performance liquid chromatography-electrospray tandem mass spectrometry. J Chromatogr A 1015:129–141

    Article  CAS  Google Scholar 

  • Isidori M, Nardelli A, Parrella A, Pascarella L, Previtera L (2006) A multispecies study to assess the toxici and genotoxic effect of pharmaceuticals: Furosemide and its photoproduct. Chemosphere 63:785–793

    Article  CAS  Google Scholar 

  • McEvoy GK, 2000 AHFS Drug Information®. ASHP, Bethesda, MD

    Google Scholar 

  • Nałęcz-Jawecki G (2005). Spirotox test––Spirostomum ambiguum acute toxicity test. In: Blaise Ch, Férard J (eds) Small-scale freshwater toxicity investigations, vol 1. Toxicity test methods. Chapter 8, Springer.

  • Schröder S, Surmann JP (2006) Phototoxicity testing by online irradiation and HPLC. Anal Bioanal Chem 386:1695–70

    Article  Google Scholar 

  • Ternes TA (2001) Analytical methods for the determination of pharmaceuticals in aqueous environmental samples. Trends Anal Chem 20:419–34

    Article  CAS  Google Scholar 

  • Thamnotoxkit F (1995) Crustacean toxicity screening test for freshwater. Standard operational procedure. MicroBioTests Inc. Nazareth, Belgium, p 23

    Google Scholar 

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Correspondence to Grzegorz Nałęcz-Jawecki.

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Nałęcz-Jawecki, G., Hajnas, A. & Sawicki, J. Photodegradation and phototoxicity of thioridazine and chlorpromazine evaluated with chemical analysis and aquatic organisms. Ecotoxicology 17, 13–20 (2008). https://doi.org/10.1007/s10646-007-0171-z

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  • DOI: https://doi.org/10.1007/s10646-007-0171-z

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