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Benomyl, a benzimidazole fungicide, induces oxidative stress and apoptosis in neural cells

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Autore
Kara M., Oztas E., Ramazanoğulları R., Kouretas D., Nepka C., Tsatsakis A.M., Veskoukis A.S.
Data
2020
Language
en
DOI
10.1016/j.toxrep.2020.04.001
Soggetto
benomyl
benzimidazole
glutathione peroxidase
reactive oxygen metabolite
apoptosis
apoptosis assay
Article
cell culture
cell death
cell proliferation
cell viability
chemical structure
comet assay
confocal laser scanning microscopy
controlled study
cytotoxicity
cytotoxicity assay
DNA damage
flow cytometry
fluorescence microscopy
human
human cell
MTT assay
necrosis
nerve cell
neurotoxicity
oxidative stress
priority journal
protein expression
SH-SY5Y cell line
Elsevier Inc.
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Abstract
Fungicides are used in the agricultural sector against the harmful action of fungi, however they are potential toxic agents for the environment and the living organisms. Benomyl is a widely encountered benzimidazole fungicide that exerts its toxicity via inhibiting microtubule formation in the nervous system and the male reproductive and endocrine systems, whilst it is a known teratogen. Since toxic effects of benomyl and its molecular mechanisms are not fully understood, we aimed to detect its neurotoxic potential via evaluating cytotoxicity, oxidative stress and apoptosis in SH-SY5Y cell line. The cells were incubated with benomyl in a concentration range between 1 and 6 μM for 24 h. Our results indicated a concentration-dependent enhancement of reactive oxygen species measured through flow cytometry and DNA damage evaluated via the comet assay. Additionally, it induced apoptosis in all tested concentrations. According to the findings of the present study, benomyl is a xenobiotic, which it appears to exert its toxic action via a redox-related mechanism that, finally, induces cell apoptosis and death. We believe that this study will offer further insight in the toxicity mechanism of benomyl, although further studies are recommended in order to elucidate these mechanisms in the molecular level. © 2020 The Authors
URI
http://hdl.handle.net/11615/74315
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