Spin Trapping Hydroxyl and Aryl Radicals of One-Electron Reduced Anticancer Benzotriazine 1,4-Dioxides
Wen Qi1, Pooja Yadav1, Cho R Hong2
1School of Chemical Sciences, The University of Auckland, Private Bag 92019, Auckland 1142, New Zealand.
Abstract:
Hypoxia in tumors results in resistance to both chemotherapy and radiotherapy treatments but affords an environment in which hypoxia-activated prodrugs (HAP) are activated upon bioreduction to release targeted cytotoxins. The benzotriazine 1,4-di-N-oxide (BTO) HAP, tirapazamine (TPZ, 1), has undergone extensive clinical evaluation in combination with radiotherapy to assist in the killing of hypoxic tumor cells. Although compound 1 did not gain approval for clinical use, it has spurred on the development of other BTOs, such as the 3-alkyl analogue, SN30000, 2. There is general agreement that the cytotoxin(s) from BTOs arise from the one-electron reduced form of the compounds. Identifying the cytotoxic radicals, and whether they play a role in the selective killing of hypoxic tumor cells, is important for continued development of the BTO class of anticancer prodrugs. In this study, nitrone spin-traps, combined with electron spin resonance, give evidence for the formation of aryl radicals from compounds 1, 2 and 3-phenyl analogues, compounds 3 and 4, which form carbon C-centered radicals. In addition, high concentrations of DEPMPO (5-(diethoxyphosphoryl)-5-methyl-1-pyrroline N-oxide) spin-trap the •OH radical. The combination of spin-traps with high concentrations of DMSO and methanol also give evidence for the involvement of strongly oxidizing radicals. The failure to spin-trap methyl radicals with PBN (N-tert-butylphenylnitrone) on the bioreduction of compound 2, in the presence of DMSO, implies that free •OH radicals are not released from the protonated radical anions of compound 2. The spin-trapping of •OH radicals by high concentrations of DEPMPO, and the radical species arising from DMSO and methanol give both direct and indirect evidence for the scavenging of •OH radicals that are involved in an intramolecular process. Hypoxia-selective cytotoxicity is not related to the formation of aryl radicals from the BTO compounds as they are associated with high aerobic cytotoxicity.
Insights
Hypoxia-activated prodrugs (HAP) like tirapazamine show promise for cancer treatment. This study identifies cytotoxic radicals from benzotriazine 1,4-di-N-oxide compounds, revealing their role in tumor cell killing and guiding future drug development.
Area of Science:
- Medicinal Chemistry
- Organic Chemistry
- Biochemistry
Background:
- Hypoxic tumors resist conventional chemotherapy and radiotherapy.
- Hypoxia-activated prodrugs (HAP) are designed to target and kill hypoxic cells.
- Benzotriazine 1,4-di-N-oxide (BTO) HAP, like tirapazamine (TPZ), have been clinically investigated.
Purpose of the Study:
- To identify the specific cytotoxic radicals generated from BTO compounds.
- To determine if these radicals are responsible for hypoxia-selective cancer cell killing.
- To guide the development of novel BTO-based anticancer prodrugs.
Main Methods:
- Utilized nitrone spin-traps in conjunction with electron spin resonance (ESR) spectroscopy.
- Investigated the bioreduction of BTO compounds (TPZ, SN30000, and analogs).
- Employed spin-trapping agents like DEPMPO and PBN, with co-solvents DMSO and methanol.
Main Results:
- Evidence for aryl radical formation from TPZ and related BTO compounds was observed.
- Spin-trapping of hydroxyl (•OH) radicals by DEPMPO and radical species from DMSO/methanol suggests an intramolecular process.
- Failure to trap methyl radicals implies •OH radicals are not released from protonated radical anions of SN30000.
Conclusions:
- Cytotoxicity of BTO compounds arises from one-electron reduced forms, likely involving •OH radicals.
- Hypoxia-selective cytotoxicity is not directly linked to aryl radical formation.
- Findings provide crucial insights into the mechanism of action for BTO anticancer prodrugs.
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