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Cyto- and genotoxicity of copper (II) oxide (CuO) nanoparticles in HeLa cells

Year 2023, Volume: 53 Issue: 2, 126 - 132, 30.08.2023
https://doi.org/10.26650/IstanbulJPharm.2023.1255310

Abstract

Background and Aims: Cancer is a widespread disease responsible for the death of millions every year. Different approaches and drugs are in use to treat cancer, however, there is a need for new drugs with low cost, high activity, and low side effect risks. Nanotechnology and nanomaterials are important to develop those drugs. Copper-based nanoparticles (NPs) are shown to have biological activity as the antibacterial, and cytotoxic potential. Copper (II) oxide (CuO) NPs are widely used among Cu-based NPs. Different studies evaluated its anticancer and cytotoxic activity; however, the results are still controversial.
Methods: It was planned to characterize the NPs using Transmission Electron Microscopy (TEM) in cell culture medium and distilled water and then to evaluate their cytotoxicity in human cervical cancer cells (HeLa) using MTT (3-[4,5-dimethylthiazol-2-yl]-2,5 diphenyl tetrazolium bromide) assay and neutral red uptake (NRU) assays. As one of the cytotoxicity mechanisms, the DNA damage induction potential was evaluated by Comet assay.
Results: The CuO NPs have an average diameter of about 35 nm in distilled water and 39 nm in cell culture medium. The IC50 levels of NPs were 10.7 µg/mL and 6.73 µg/mL by MTT and NRU assays, respectively. The results reveal the NPs dosedependently increased in the DNA damage. The tail moment was 1.3-fold at 3.125 µg/mL, 2.5-fold at 6.25 µg/mL, and 3.8-fold at 12.5 µg/mL.
Conclusion: CuO NPs have high cytotoxic activity in HeLa cancerous cells. The induction of DNA damage could be an important step in the induction of cell death. Further in vivo and in vitro studies in need to improve the safety/low toxicity and understand the molecular mechanism of CuO-induced activity.

Supporting Institution

the Research Fund of İstanbul University

Project Number

TDK-2021-38172

References

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Year 2023, Volume: 53 Issue: 2, 126 - 132, 30.08.2023
https://doi.org/10.26650/IstanbulJPharm.2023.1255310

Abstract

Project Number

TDK-2021-38172

References

  • Abudayyak, M., Guzel, E.E., Özhan, G. (2016a). Copper (II) oxide nanoparticles induce high toxicity in human neuronal cell. Global Journal of Medical Research: B Pharma, Drug Discovery, Toxicology & Medicine; XVI (III):6-15. google scholar
  • Abudayyak, M., Altincekic Gurkaynak, T., & Özhan, G. (2016c). In vitro toxicological assessment of cobalt ferrite nanoparticles in several mammalian cell types. Biological Trace Element Research, 175(2), 458-465. doi:10.1007/s12011-016-0803-3 google scholar
  • Abudayyak, M., Guzel, E. E., & Özhan, G. (2016b). Copper (II) oxide nanoparticles induced nephrotoxicity in vitro conditions. Applied In Vitro Toxicology, 2(3), 157-164. doi:10.1089/aivt.2016.0008 google scholar
  • Abudayyak, M., Guzel, E., & Özhan, G. (2017). Nickel oxide nanopar-ticles are highly toxic to SH-SY5Y neuronal cells. Neurochemistry International, 108, 7-14. doi:10.1016/j.neuint.2017.01.017 google scholar
  • Abudayyak, M., Guzel, E., & Özhan, G. (2020). Cupric oxide nanoparticles induce cellular toxicity in liver and intestine cell lines. Advanced Pharmaceutical Bulletin, 10(2), 213-220. doi:10.34172/apb.2020.025 google scholar
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  • Akhtar, M. J., Ahamed, M., Fareed, M., Alrokayan, S. A., & Kumar, S. (2012). Protective effect of sulphoraphane against oxidative stress mediated toxicity induced by Cuo nanoparticles in mouse em-bryonic fibroblasts Balb 3t3. The Journal of Toxicological Sciences, 37(1), 139-148. doi:10.2131/jts.37.139 google scholar
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  • Cioffi, N., Ditaranto, N., Torsi, L., Picca, R. A., Sabbatini, L., Valen-tini, A., . . . Zambonin, P. G. (2005). Analytical characterization of bioactive fluoropolymer ultra-thin coatings modified by copper nanoparticles. Analytical and Bioanalytical Chemistry, 381(3), 607616. doi:10.1007/s00216-004-2761-4 google scholar
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  • Dadure K.M., Mahapatra D., Haldar A., Potbhare A.K., Chaudhary R.G. (2022). Utilization of mother nature’s gift for the biofabrication of copper/ copper oxide nanoparticles for therapeutic applica-tions. Jordan Journal of Physics, 15(1), 89-99. doi:10.47011/15.1.12 Gnanavel, V., Palanichamy, V., & Roopan, S. M. (2017). Biosynthesis and characterization of copper oxide nanoparticles and its an-ticancer activity on Human Colon Cancer Cell Lines (HCT-116). Journal of Photochemistry and Photobiology B: Biology, 171, 133138. doi:10.1016/j.jphotobiol.2017.05.001 google scholar
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  • Gosens, I., Cassee, F. R., Zanella, M., Manodori, L., Brunelli, A., Costa, A. L., . . . Stone, V. (2016). Organ burden and pulmonary toxicity of nano-sized copper (II) oxide particles after short-term inhalation exposure. Nanotoxicology, 10(8), 1084-1095. doi:10.3109/174353 90.2016.1172678 google scholar
  • Ingle, A. P., Duran, N., & Rai, M. (2014). Bioactivity, mechanism of action, and cytotoxicity of copper-based nanoparticles: A Re-view. Applied Microbiology and Biotechnology, 98(3), 1001-1009. doi:10.1007/s00253-013-5422-8 google scholar
  • Kadammattil, A. V., Sajankila, S. P., Prabhu, S., Rao, B. N., & Rao, B. S. (2018). Systemic toxicity and teratogenicity of copper oxide nanoparticles and copper sulfate. Journal of Nanoscience and Nanotechnology, 18(4), 2394-2404. doi:10.1166/jnn.2018.14542 google scholar
  • Karlsson, H. L., Cronholm, P., Gustafsson, J., & Möller, L. (2008). Cop-per oxide nanoparticles are highly toxic: A comparison between metal oxide nanoparticles and carbon nanotubes. Chemical Re-search in Toxicology, 21(9), 1726-1732. doi:10.1021/tx800064j google scholar
  • Khalid, S., Afzal, N., Khan, J. A., Hussain, Z., Qureshi, A. S., Anwar, H., & Jamil, Y. (2018). Antioxidant resveratrol protects against copper ox-ide nanoparticle toxicity in vivo. Naunyn-Schmiedeberg’s Archives of Pharmacology, 391(10), 1053-1062. doi:10.1007/s00210-018-1526-0 google scholar
  • Lei, R., Wu, C., Yang, B., Ma, H., Shi, C., Wang, Q., . . . Liao, M. (2008). Integrated metabolomic analysis of the nano-sized copper parti-cle-induced hepatotoxicity and nephrotoxicity in rats: A rapid in vivo screening method for nanotoxicity. Toxicology and Applied Pharmacology, 232(2), 292-301. doi:10.1016/j.taap.2008.06.026 google scholar
  • Liu, Y., Gao, Y., Zhang, L., Wang, T., Wang, J., Jiao, F., . . . Chen, C. (2009). Potential health impact on mice after nasal instillation of nano-sized copper particles and their translocation in mice. Journal of Nanoscience and Nanotechnology, 9(11), 6335-6343. doi:10.1166/jnn.2009.1320 google scholar
  • Maksoudian, C., Saffarzadeh, N., Hesemans, E., Dekoning, N., Butt-iens, K., & Soenen, S. J. (2020). Role of inorganic nanoparticle deg-radation in cancer therapy. Nanoscale Advances, 2(9), 3734-3763. doi:10.1039/d0na00286k google scholar
  • Masters, J. R. (2002). Hela cells 50 years on: The good, the bad and the ugly. Nature Reviews Cancer, 2(4), 315-319. doi:10.1038/nrc775 google scholar
  • Meng, H., Chen, Z., Xing, G., Yuan, H., Chen, C., Zhao, F., . . . Zhao, Y. (2007). Ultrahigh reactivity provokes nanotoxicity: Explanation of oral toxicity of nano-copper particles. Toxicology Letters, 175(1-3), 102-110. doi:10.1016/j.toxlet.2007.09.015 google scholar
  • Nagajyothi, P., Muthuraman, P., Sreekanth, T., Kim, D. H., & Shim, J. (2017). Green synthesis: In-vitro anticancer activity of copper oxide nanoparticles against human cervical carcinoma cells. Arabian Journal of Chemistry, 10(2), 215-225. doi:10.1016/j.arab-jc.2016.01.011 google scholar
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There are 51 citations in total.

Details

Primary Language English
Subjects Pharmacology and Pharmaceutical Sciences
Journal Section Original Article
Authors

Fedaa Abo Ras 0000-0002-2290-1622

Gül Özhan 0000-0002-6926-5723

Mahmoud Abudayyak [m. Fırat Kenanoğlu] 0000-0003-2286-4777

Project Number TDK-2021-38172
Publication Date August 30, 2023
Submission Date February 23, 2023
Published in Issue Year 2023 Volume: 53 Issue: 2

Cite

APA Abo Ras, F., Özhan, G., & Abudayyak [m. Fırat Kenanoğlu], M. (2023). Cyto- and genotoxicity of copper (II) oxide (CuO) nanoparticles in HeLa cells. İstanbul Journal of Pharmacy, 53(2), 126-132. https://doi.org/10.26650/IstanbulJPharm.2023.1255310
AMA Abo Ras F, Özhan G, Abudayyak [m. Fırat Kenanoğlu] M. Cyto- and genotoxicity of copper (II) oxide (CuO) nanoparticles in HeLa cells. iujp. August 2023;53(2):126-132. doi:10.26650/IstanbulJPharm.2023.1255310
Chicago Abo Ras, Fedaa, Gül Özhan, and Mahmoud Abudayyak [m. Fırat Kenanoğlu]. “Cyto- and Genotoxicity of Copper (II) Oxide (CuO) Nanoparticles in HeLa Cells”. İstanbul Journal of Pharmacy 53, no. 2 (August 2023): 126-32. https://doi.org/10.26650/IstanbulJPharm.2023.1255310.
EndNote Abo Ras F, Özhan G, Abudayyak [m. Fırat Kenanoğlu] M (August 1, 2023) Cyto- and genotoxicity of copper (II) oxide (CuO) nanoparticles in HeLa cells. İstanbul Journal of Pharmacy 53 2 126–132.
IEEE F. Abo Ras, G. Özhan, and M. Abudayyak [m. Fırat Kenanoğlu], “Cyto- and genotoxicity of copper (II) oxide (CuO) nanoparticles in HeLa cells”, iujp, vol. 53, no. 2, pp. 126–132, 2023, doi: 10.26650/IstanbulJPharm.2023.1255310.
ISNAD Abo Ras, Fedaa et al. “Cyto- and Genotoxicity of Copper (II) Oxide (CuO) Nanoparticles in HeLa Cells”. İstanbul Journal of Pharmacy 53/2 (August 2023), 126-132. https://doi.org/10.26650/IstanbulJPharm.2023.1255310.
JAMA Abo Ras F, Özhan G, Abudayyak [m. Fırat Kenanoğlu] M. Cyto- and genotoxicity of copper (II) oxide (CuO) nanoparticles in HeLa cells. iujp. 2023;53:126–132.
MLA Abo Ras, Fedaa et al. “Cyto- and Genotoxicity of Copper (II) Oxide (CuO) Nanoparticles in HeLa Cells”. İstanbul Journal of Pharmacy, vol. 53, no. 2, 2023, pp. 126-32, doi:10.26650/IstanbulJPharm.2023.1255310.
Vancouver Abo Ras F, Özhan G, Abudayyak [m. Fırat Kenanoğlu] M. Cyto- and genotoxicity of copper (II) oxide (CuO) nanoparticles in HeLa cells. iujp. 2023;53(2):126-32.