1,760
Views
13
CrossRef citations to date
0
Altmetric
Articles

Oxidative stress and DNA damage induced by spinosad exposure in Spodoptera frugiperda Sf9 cells

, , , &
Pages 171-181 | Received 20 Jul 2017, Accepted 02 Aug 2017, Published online: 18 Aug 2017

References

  • Ahmed, M. A.-E. (2012). Hepatoprotective effects of antioxidants against non-target toxicity of the bio-insecticide spinosad in rats. African Journal of Pharmacy and Pharmacology, 6(8), 550–559.
  • Asha, K. K., Mathew, S., & Lakshmanan, P. T. (2012). Flavonoids and phenolic compounds in two mangrove species and their antioxidant property. Indian Journal of Geo-Marine Sciences, 41(3), 259–264.
  • Bakhoum, S. F., Kabeche, L., Murnane, J. P., Zaki, B. I., & Compton, D. A. (2014). DNA-damage response during mitosis induces whole-chromosome missegregation. Cancer Discovery, 4(11), 1281–1289. doi:10.1158/2159-8290.CD-14-0403
  • Baysal, E., Gulsen, S., Aytac, I., Celenk, F., Ensari, N., Taysi, S., … Kanlikama, M. (2016). “Oxidative stress in otosclerosis.” Redox Report, 1–5.
  • Böhm, C., Schnyder, M., Thamsborg, S. M., Thompson, C. M., Trout, C., Wolken, S., & Schnitzler, B. (2014). Assessment of the combination of spinosad and milbemycin oxime in preventing the development of canine Angiostrongylus vasorum infections. Veterinary Parasitology, 199(3–4), 272–277. doi:10.1016/j.vetpar.2013.10.024
  • Biondi, A., Mommaerts, V., Smagghe, G., Viñuela, E., Zappalà, L., & Desneux, N. (2012). The non-target impact of spinosyns on beneficial arthropods. Pest Management Science, 68(12), 1523–1536. doi:10.1002/ps.3396
  • Carter, M., Jemth, A.-S., Hagenkort, A., Page, B. D. G., Gustafsson, R., Griese, J. J., … Stenmark, P. (2015). Crystal structure, biochemical and cellular activities demonstrate separate functions of MTH1 and MTH2. Nature Communications, 6, 7871. doi:10.1038/ncomms8871
  • Chen, J., Sun, H., Sun, A., Hua Lin, Q., Wang, Y., & Tao, X. (2012). Studies of the protective effect and antioxidant mechanism of blueberry anthocyanins in a CC14-induced liver injury model in mice. Food and Agricultural Immunology, 23(4), 352–362. doi:10.1080/09540105.2011.634378
  • Du, L., Li, G., Liu, M., Li, Y., Yin, S., Zhao, J., & Zhang, X. (2015). Evaluation of DNA damage and antioxidant system induced by di-n-butyl phthalates exposure in earthworms (Eisenia fetida). Ecotoxicology and Environmental Safety, 115, 75–82. doi:10.1016/j.ecoenv.2015.01.031
  • Goutzourelas, N., Stagos, D., Housmekeridou, A., Karapouliou, C., Kerasioti, E., Aligiannis, N., … Kouretas, D. (2015). Grape pomace extract exerts antioxidant effects through an increase in GCS levels and GST activity in muscle and endothelial cells. International Journal of Molecular Medicine, 36(2), 433–441. doi: https://doi.org/10.3892/ijmm.2015.2246
  • Gweshelo, D., Muswe, R., & Mukanganyama, S. (2016). In vivo and in vitro inhibition of rat liver glutathione transferases activity by extracts from Combretum zeyheri (Combretaceae) and Parinari curatellifolia (Chrysobalanaceae). BMC Complementary and Alternative Medicine, 16(1), 2. doi:10.1186/s12906-016-1235-5
  • Halaby, M. J., Hakem, A., Li, L., El Ghamrasni, S., Venkatesan, S., Hande, P. M., … Hakem, R. (2013). Synergistic interaction of Rnf8 and p53 in the protection against genomic instability and tumorigenesis. PLoS Genetics, 9(1), e1003259. doi:10.1371/journal.pgen.1003259
  • Kirst, H. A. (2010). The spinosyn family of insecticides: Realizing the potential of natural products research. The Journal of Antibiotics, 63(3), 101–111. doi:10.1038/ja.2010.5
  • Lee, W.-L., Huang, J.-Y., & Shyur, L.-F. (2013). Phytoagents for cancer management: Regulation of nucleic acid oxidation, ROS, and related mechanisms. Oxidative Medicine and Cellular Longevity, 2013, 925804. doi:10.1155/2013/925804
  • Leon, J., Sakumi, K., Castillo, E., Sheng, Z., Oka, S., & Nakabeppu, Y. (2016). 8-Oxoguanine accumulation in mitochondrial DNA causes mitochondrial dysfunction and impairs neuritogenesis in cultured adult mouse cortical neurons under oxidative conditions. Scientific Reports, 6, 111. doi:10.1038/srep22086
  • Li, W., Jiang, B., Cao, X., Xie, Y., & Huang, T. (2017). Protective effect of lycopene on fluoride-induced ameloblasts apoptosis and dental fluorosis through oxidative stress-mediated Caspase pathways. Chemico-Biological Interactions, 261, 27–34. doi:10.1016/j.cbi.2016.11.021
  • Li, Y., Wei, L., Cao, J., Qiu, L., Jiang, X., Li, P., … Diao, X. (2016). Oxidative stress, DNA damage and antioxidant enzyme activities in the pacific white shrimp (Litopenaeus vannamei) when exposed to hypoxia and reoxygenation. Chemosphere, 144, 234–240. doi:10.1016/j.chemosphere.2015.08.051
  • Mandal, K., Singh, S., Battu, R. S., & Singh, B. (2013). An overview of persistence of spinosad in biotic and abiotic components of the environment and advances in its estimation techniques. Bulletin of Environmental Contamination and Toxicology, 90(4), 405–413. doi:10.1007/s00128-012-0913-3
  • Mansour, S. A., Mossa, A. H., & Heikal, T. M. (2008). Cytogenetic and hormonal alteration in rats exposed to recommended “safe doses” of spinosad and malathion insecticides. International Journal of Agriculture and Biology, 10(1), 9–14.
  • Marin, D. E., & Taranu, I. (2012). Overview on aflatoxins and oxidative stress. Toxin Reviews, 31(3-4), 32–43. doi:10.3109/15569543.2012.730092
  • Markussen, M. D., & Kristensen, M. (2012). Spinosad resistance in female Musca domestica L. from a field-derived population. Pest Management Science, 68(1), 75–82. doi:10.1002/ps.2223
  • Ma, H., Wallis, L. K., Diamond, S., Li, S., Canas-Carrell, J., & Parra, A. (2014). Impact of solar UV radiation on toxicity of ZnO nanoparticles through photocatalytic reactive oxygen species (ROS) generation and photo-induced dissolution. Environmental Pollution, 193, 165–172. doi:10.1016/j.envpol.2014.06.027
  • Mejdoub, Z., Fahde, A., Loutfi, M., & Kabine, M. (2017). Oxidative stress responses of the mussel Mytilus galloprovincialis exposed to emissary’s pollution in coastal areas of Casablanca. Ocean & Coastal Management, 136, 95–103. doi:10.1016/j.ocecoaman.2016.11.018
  • Ohno, M., Oka, S., & Nakabeppu, Y. (2009). Quantitative analysis of oxidized guanine, 8-oxoguanine, in mitochondrial DNA by immunofluorescence method. In J. A. Stuart (Ed.), Mitochondrial DNA: Methods and protocols (pp. 199–212). Totowa, NJ: Humana Press.
  • Piner, P., & Üner, N. (2013). Oxidative stress and apoptosis was induced by bio-insecticide spinosad in the liver of Oreochromis niloticus. Environmental Toxicology and Pharmacology, 36(3), 956–963. doi:10.1016/j.etap.2013.08.009
  • Piner, P., & Üner, N. (2014). Organic insecticide spinosad causes in vivo oxidative effects in the brain of Oreochromis niloticus. Environmental Toxicology, 29(3), 253–260. doi:10.1002/tox.21753
  • Pérez-Pertejo, Y., Reguera, R. M., Ordóñez, D., & Balaña-Fouce, R. (2008). Alterations in the glutathione-redox balance induced by the bio-insecticide spinosad in CHO-K1 and vero cells. Ecotoxicology and Environmental Safety, 70(2), 251–258. doi:10.1016/j.ecoenv.2007.06.009
  • Shahid, M., Pourrut, B., Dumat, C., Nadeem, M., Aslam, M., & Pinelli, E. (2014). Heavy-metal-induced reactive oxygen species: Phytotoxicity and physicochemical changes in plants. In D. M. Whitacre, Reviews of environmental contamination and toxicology (Vol. 232, pp. 1–44). Cham: Springer.
  • Sheng, Z., Oka, S., Tsuchimoto, D., Abolhassani, N., Nomaru, H., Sakumi, K., … Nakabeppu, Y. (2012). 8-Oxoguanine causes neurodegeneration during MUTYH-mediated DNA base excision repair. Journal of Clinical Investigation, 122(12), 4344–4361. doi:10.1172/JCI65053
  • She, X., Wang, F., Ma, J., Chen, X., Ren, D., & Lu, J. (2016). In vitro antioxidant and protective effects of corn peptides on ethanol-induced damage in HepG2 cells. Food and Agricultural Immunology, 27(1), 99–110. doi:10.1080/09540105.2015.1079597
  • Sparks, T. C., Dripps, J. E., Watson, G. B., & Paroonagian, D. (2012). Resistance and cross-resistance to the spinosyns – A review and analysis. Pesticide Biochemistry and Physiology, 102(1), 1–10. doi:10.1016/j.pestbp.2011.11.004
  • Thévenod, F., Friedmann, J. M., Katsen, A. D., & Hauser, I. A. (2000). Up-regulation of multidrug resistance P-glycoprotein via nuclear factor-κB activation protects kidney proximal tubule cells from cadmium- and reactive oxygen species-induced apoptosis. Journal of Biological Chemistry, 275(3), 1887–1896. doi:10.1074/jbc.275.3.1887
  • Townsend, D. M., Manevich, Y., He, L., Hutchens, S., Pazoles, C. J., & Tew, K. D. (2009). Novel role for glutathione S-transferase π: Regulator of protein S-glutathionylation following oxidative and nitrosative stress. Journal of Biological Chemistry, 284(1), 436–445. doi:10.1074/jbc.M805586200
  • Uggini, G. K., & Suresh, B. (2013). Genotoxic effects of two different classes of insecticide in developing chick embryos. Toxicological and Environmental Chemistry, 95(6), 992–1005. doi:10.1080/02772248.2013.828888
  • Wakabayashi, M., Ishii, C., Hatakeyama, S., Inoue, H., & Tanaka, S. (2010). ATM and ATR homologes of Neurospora crassa are essential for normal cell growth and maintenance of chromosome integrity. Fungal Genetics and Biology, 47(10), 809–817. doi:10.1016/j.fgb.2010.05.010
  • Wang, X., Martínez, M. A., Wu, Q., Ares, I., Martínez-Larrañaga, M. R., Anadón, A., & Yuan, Z. (2016). Fipronil insecticide toxicology: Oxidative stress and metabolism. Critical Reviews in Toxicology, 46(10), 876–899. doi:10.1080/10408444.2016.1223014
  • Wang, J., Wang, J., Wang, G., Zhu, L., & Wang, J. (2016). DNA damage and oxidative stress induced by imidacloprid exposure in the earthworm Eisenia fetida. Chemosphere, 144, 510–517. doi:10.1016/j.chemosphere.2015.09.004
  • Yang, M., Wang, B., Gao, J., Zhang, Y., Xu, W., & Tao, L. (2017). Spinosad induces programmed cell death involves mitochondrial dysfunction and cytochrome C release in Spodoptera frugiperda Sf9 cells. Chemosphere, 169, 155–161. doi:10.1016/j.chemosphere.2016.11.065
  • Yeh, Y.-T., Hsu, Y.-N., Huang, S.-Y., Lin, J.-S., Chen, Z.-F., Chow, N.-H., … Su, S.-J. (2016). Benzyl isothiocyanate promotes apoptosis of oral cancer cells via an acute redox stress-mediated DNA damage response. Food and Chemical Toxicology, 97, 336–345. doi:10.1016/j.fct.2016.09.028
  • Zhang, S., Chen, J., Sun, A., & Zhao, L. (2014). Protective effects and antioxidant mechanism of bamboo leaf flavonoids on hepatocytes injured by CCl4. Food and Agricultural Immunology, 25(3), 386–396. doi:10.1080/09540105.2013.810709
  • Zhang, J., Wang, Y., Sun, K.-M., Fang, K., & Tang, X. (2016). A study of oxidative stress induced by two polybrominated diphenyl ethers in the rotifer Brachionus plicatilis. Marine Pollution Bulletin, 113(1–2), 408–413. doi:10.1016/j.marpolbul.2016.10.032