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Phase I and phase II metabolism simulation of antitumor-active 2-hydroxyacridinone with electrochemistry coupled on-line with mass spectrometry.
Potega, Agnieszka; Garwolinska, Dorota; Nowicka, Anna M; Fau, Michal; Kot-Wasik, Agata; Mazerska, Zofia.
Afiliación
  • Potega A; a Department of Pharmaceutical Technology and Biochemistry, Faculty of Chemistry , Gdansk University of Technology , Gdansk , Poland.
  • Garwolinska D; b Department of Analytical Chemistry, Faculty of Chemistry , Gdansk University of Technology , Gdansk , Poland.
  • Nowicka AM; c Laboratory of Theory and Applications of Electrodes, Faculty of Chemistry , University of Warsaw , Warsaw , Poland.
  • Fau M; c Laboratory of Theory and Applications of Electrodes, Faculty of Chemistry , University of Warsaw , Warsaw , Poland.
  • Kot-Wasik A; b Department of Analytical Chemistry, Faculty of Chemistry , Gdansk University of Technology , Gdansk , Poland.
  • Mazerska Z; a Department of Pharmaceutical Technology and Biochemistry, Faculty of Chemistry , Gdansk University of Technology , Gdansk , Poland.
Xenobiotica ; 49(8): 922-934, 2019 Aug.
Article en En | MEDLINE | ID: mdl-30301406
ABSTRACT
Here, we report the metabolic profile and the results of associated metabolic studies of 2-hydroxy-acridinone (2-OH-AC), the reference compound for antitumor-active imidazo- and triazoloacridinones. Electrochemistry coupled with mass spectrometry was applied to simulate the general oxidative metabolism of 2-OH-AC for the first time. The reactivity of 2-OH-AC products to biomolecules was also examined. The usefulness of the electrochemistry for studying the reactive drug metabolite trapping (conjugation reactions) was evaluated by the comparison with conventional electrochemical (controlled-potential electrolysis) and enzymatic (microsomal incubation) approaches. 2-OH-AC oxidation products were generated in an electrochemical thin-layer cell. Their tentative structures were assigned based on tandem mass spectrometry in combination with accurate mass measurements. Moreover, the electrochemical conversion of 2-OH-AC in the presence of reduced glutathione and/or N-acetylcysteine unveiled the formation of reactive metabolite-nucleophilic trapping agent conjugates (m/z 517 and m/z 373, respectively) through the thiol group. This glutathione S-conjugate was also identified after electrolysis experiment as well as was detected in liver microsomes. Summing up, the present work illustrates that the electrochemical simulation of metabolic reactions successfully supports the results of classical electrochemical and enzymatic studies. Therefore, it can be a useful tool for synthesis of drug metabolites, including reactive metabolites.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Espectrometría de Masas / Acridinas / Electroquímica / Fase I de la Desintoxicación Metabólica / Fase II de la Desintoxicación Metabólica / Antineoplásicos Límite: Animals / Female / Humans / Male Idioma: En Revista: Xenobiotica Año: 2019 Tipo del documento: Article País de afiliación: Polonia

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Espectrometría de Masas / Acridinas / Electroquímica / Fase I de la Desintoxicación Metabólica / Fase II de la Desintoxicación Metabólica / Antineoplásicos Límite: Animals / Female / Humans / Male Idioma: En Revista: Xenobiotica Año: 2019 Tipo del documento: Article País de afiliación: Polonia