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Radiation Damage Mechanisms of Chemotherapeutically Active Nitroimidazole Derived Compounds

Authors :
Jacopo Chiarinelli
Anna Rita Casavola
Mattea Carmen Castrovilli
Paola Bolognesi
Antonella Cartoni
Feng Wang
R. Richter
Daniele Catone
Sanja Tosic
Bratislav P. Marinkovic
Lorenzo Avaldi
Source :
Frontiers in Chemistry, Vol 7 (2019), Frontiers in Chemistry 7 (2019). doi:10.3389/fchem.2019.00329, info:cnr-pdr/source/autori:Chlarinelli, Jacopo; Casavola, Anna Rita; Castrovilli, Mattea Carmen; Bolognesi, Paola; Cartoni, Antonella; Wang, Feng; Richter, R.; Catone, Daniele; Tosic, Sanja; Marinkovic, Bratislav P.; Avaldi, Lorenzo/titolo:Radiation Damage Mechanisms of Chemotherapeutically Active Nitroimidazole Derived Compounds/doi:10.3389%2Ffchem.2019.00329/rivista:Frontiers in Chemistry/anno:2019/pagina_da:/pagina_a:/intervallo_pagine:/volume:7, Frontiers in Chemistry
Publication Year :
2019
Publisher :
Frontiers Media S.A., 2019.

Abstract

Photoionization mass spectrometry, photoelectron- photoion coincidence spectroscopic technique, and computational methods have been combined to investigate the fragmentation of two nitroimidazole derived compounds: the metronidazole and misonidazole. These molecules are used in radiotherapy thanks to their capability to sensitize hypoxic tumor cells to radiation by "mimicking" the effects of the presence of oxygen as a damaging agent. Previous investigations of the fragmentation patterns of the nitroimidazole isomers (Bolognesi et al., 2016; Cartoni et al., 2018) have shown their capacity to produce reactive molecular species such as nitric oxide, carbon monoxide or hydrogen cyanide, and their potential impact on the biological system. The results of the present work suggest that different mechanisms are active for the more complex metronidazole and misonidazole molecules. The release of nitric oxide is hampered by the efficient formation of nitrous acid or nitrogen dioxide. Although both metronidazole and misonidazole contain imidazole ring in the backbone, the side branches of these molecules lead to very different bonding mechanisms and properties.

Details

Language :
English
ISSN :
22962646
Volume :
7
Database :
OpenAIRE
Journal :
Frontiers in Chemistry
Accession number :
edsair.doi.dedup.....3058a7a6b321ef0f063548a861926960
Full Text :
https://doi.org/10.3389/fchem.2019.00329/full