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Formation of Covalent DNA Adducts by Enzymatically Activated Carcinogens and Drugs In Vitro and Their Determination by 32P-postlabeling
Published on: March 20, 2018
Molecular mechanisms of antineoplastic action of an anticancer drug ellipticine
Marie Stiborova1, Martina Rupertova, Heinz H Schmeiser
1Department of Biochemistry, Faculty of Science, Charles University, Albertov 2030, Prague 2, Czech Republic. stiborov@natur.cuni.cz
Abstract:
Ellipticine is a potent antineoplastic agent exhibiting the multimodal mechanism of its action. This article reviews the mechanisms of predominant pharmacological and cytotoxic effects of ellipticine and shows the results of our laboratories indicating a novel mechanism of its action. The prevalent mechanisms of ellipticine antitumor, mutagenic and cytotoxic activities were suggested to be intercalation into DNA and inhibition of DNA topoisomerase II activity. We demonstrated a new mode of ellipticine action, formation of covalent DNA adducts mediated by its oxidation with cytochromes P450 (CYP) and peroxidases. The article reports the molecular mechanism of ellipticine oxidation by CYPs and identifies human and rat CYPs responsible for ellipticine metabolic activation and detoxication. It also presents a role of peroxidases (i.e. myeloperoxidase, cyclooxygenases, lactoperoxidase) in ellipticine oxidation leading to ellipticine-DNA adducts. The 9-hydroxy- and 7-hydroxyellipticine metabolites formed by CYPs and the major product of ellipticine oxidation by peroxidases, the dimer, in which the two ellipticine skeletons are connected via N(6) of the pyrrole ring of one ellipticine molecule and C9 in the second one, are the detoxication metabolites. On the contrary, 13-hydroxy- and 12-hydroxyellipticine, produced by ellipticine oxidation with CYPs, the latter one formed also spontaneously from another CYP- and peroxidase-mediated metabolite, ellipticine N(2)-oxide, are metabolites responsible for formation of two ellipticine-derived deoxyguanosine adducts in DNA. The results reviewed here allow us to propose species, two carbenium ions, ellipticine-13-ylium and ellipticine-12-ylium, as reactive species generating two major DNA adducts seen in vivo in rats treated with ellipticine. The study forms the basis to further predict the susceptibility of human cancers to ellipticine.
Insights
Ellipticine, an antineoplastic agent, forms DNA adducts via oxidation by cytochromes P450 and peroxidases, revealing a novel cytotoxic mechanism beyond DNA intercalation and topoisomerase II inhibition. This discovery aids in predicting cancer treatment responses.
Area of Science:
- Pharmacology
- Toxicology
- Medicinal Chemistry
Background:
- Ellipticine is a known antineoplastic agent with multimodal action.
- Its primary mechanisms were thought to be DNA intercalation and topoisomerase II inhibition.
- This study investigates a novel mechanism of ellipticine's cytotoxic effects.
Purpose of the Study:
- To review established mechanisms of ellipticine's pharmacological and cytotoxic effects.
- To demonstrate a new mechanism involving covalent DNA adduct formation.
- To identify the enzymes responsible for ellipticine's metabolic activation and detoxification.
Main Methods:
- Review of existing literature on ellipticine's mechanisms of action.
- Experimental investigation of ellipticine oxidation by cytochromes P450 (CYP) and peroxidases.
- Identification of specific human and rat CYPs involved in ellipticine metabolism.
- Characterization of ellipticine metabolites and their role in DNA adduct formation.
Main Results:
- Ellipticine oxidation by CYPs and peroxidases generates covalent DNA adducts, a novel cytotoxic mechanism.
- Detoxification metabolites include 9-hydroxy- and 7-hydroxyellipticine (from CYPs) and a dimer (from peroxidases).
- 13-hydroxy- and 12-hydroxyellipticine are key metabolites responsible for forming two major ellipticine-derived deoxyguanosine adducts in DNA.
Conclusions:
- Ellipticine's cytotoxic activity is significantly mediated by CYP- and peroxidase-dependent formation of DNA adducts.
- Ellipticine-13-ylium and ellipticine-12-ylium carbenium ions are proposed as the reactive species forming these adducts.
- This mechanistic understanding provides a basis for predicting human cancer susceptibility to ellipticine.
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