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Research Article

Electrochemical Determination of Mitomycin C and Its Interaction with Double-Stranded DNA Using a Poly(o-phenylenediamine)-Multi-Walled Carbon Nanotube Modified Pencil Graphite Electrode

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Pages 1295-1308 | Received 29 Feb 2020, Accepted 23 Jul 2020, Published online: 04 Aug 2020

References

  • Alavi-Tabari, S. A. R., M. A. Khalilzadeh, H. Karimi-Maleh, and D. Zareyee. 2018. An amplified platform nanostructure sensor for the analysis of epirubicin in the presence of topotecan as two important chemotherapy drugs for breast cancer therapy. New Journal of Chemistry 42 (5):3828–32. doi:10.1039/C7NJ04430E.
  • Brana, M. F., M. Cacho, A. Gradillas, B. Pascual-Teresa, and A. Ramos. 2001. Intercalators as anticancer drugs. Current Pharmaceutical Design 7 (17):1745–80. doi:10.2174/1381612013397113.
  • Bruzaca, E. E. S., I. C. Lopes, E. H. C. Silva, P. A. V. Carvalho, and A. A. Tanaka. 2017. Electrochemical oxidation of the antitumor antibiotic mitomycin C and in situ evaluation of its interaction with DNA using a DNA-electrochemical sensor. Microchemical Journal 133:81–9. doi:10.1016/j.microc.2017.03.030.
  • Dükar, N., S. Tunç, K. Öztürk, S. Demirci, M. Dumangöz, M. Sönmez Çelebi, and F. Kuralay. 2019. Highly sensitive and selective dopamine sensing in biological fluids with one-pot prepared graphene/poly(o-phenylenediamine) modified electrodes. Materials Chemistry and Physics 228:357–62. doi:10.1016/j.matchemphys.2019.02.043.
  • El-Said, W. A., M. Abdelshakour, J.-H. Choi, and J.-W. Choi. 2020. Application of conducting polymer nanostructures to electrochemical biosensors. Molecules 25 (2):307. doi:10.3390/molecules25020307.
  • Erdem, A., and M. Ozsoz. 2001. Interaction of the anticancer drug epurubicin with DNA. Analytica Chimica Acta 437 (1):107–14. doi:10.1016/S0003-2670(01)00942-4.
  • Gao, M., L. Dai, and G. G. Wallace. 2003. Biosensors based on aligned carbon nanotubes coated with inherently conducting polymers. Electroanalysis 15 (13):1089–94. doi:10.1002/elan.200390131.
  • Gürsoy, S., N. Dükar, Y. T. Yaman, S. Abaci, and F. Kuralay. 2019. Electroactive polyglycine coatings for nanobiosensing applications: Label-free DNA hybridization, DNA-antitumor agent interaction and antitumor agent determination. Analytica Chimica Acta 1072:15–24. doi:10.1016/j.aca.2019.04.044.
  • Hajian, R., P. Hossaini, Z. Mehrayin, P. M. Woi, and N. Shams. 2017. DNA-binding studies of valrubicin as a chemotherapy drug using spectroscopy and electrochemical techniques. Journal of Pharmaceutical Analysis 7 (3):176–80. doi:10.1016/j.jpha.2017.01.003.
  • Hatamluyi, B., F. Lorestani, and Z. Es'haghi. 2018. Au/Pd@rGO nanocomposite decorated with poly (L-Cysteine) as a probe for simultaneous sensitive electrochemical determination of anticancer drugs, Ifosfamide and Etoposide. Biosensors & Bioelectronics 120:22–9. doi:10.1016/j.bios.2018.08.008.
  • Ilkhani, H., T. Hughes, J. Li, C. J. Zhong, and M. Hepel. 2016. Nanostructured SERS-electrochemical biosensors for testing of anticancer drug interactions with DNA. Biosensors & Bioelectronics 80:257–64. doi:10.1016/j.bios.2016.01.068.
  • Jalal, N. R., T. Madrakian, A. Afkhami, and M. Ghamsari. 2019. Ghamsari, Polyethylenimine@Fe3O4@carbon nanotubes nanocomposite as a modifier in glassy carbon electrode for sensitive determination of ciprofloxacin in biological samples. Journal of Electroanalytical Chemistry 833:281–9. doi:10.1016/j.jelechem.2018.12.004.
  • Khodadadi, A., E. Faghih-Mirzaei, H. Karimi-Maleh, A. Abbaspourrad, S. Agarwal, and V. K. Gupta. 2019. A new epirubicin biosensor based on amplifying DNA interactions with polypyrrole and nitrogen-doped reduced graphene: Experimental and docking theoretical investigations. Sensors and Actuators B: Chemical 284:568–74. doi:10.1016/j.snb.2018.12.164.
  • Kuralay, F., M. Dumangöz, and S. Tunç. 2015. Polymer/carbon nanotubes coated graphite surfaces for highly sensitive nitrite detection. Talanta 144:1133–8. doi.org/10.1016/j.talanta.2015.07.095. doi:10.1016/j.talanta.2015.07.095.
  • Kuralay, F., and A. Erdem. 2015. Gold nanoparticle/polymer nanocomposite for highly sensitive drug-DNA interaction. The Analyst 140 (8):2876–80. doi:10.1039/C5AN00061K.
  • Li, N., Y. Ma, C. Yang, L. Guo, and X. Yang. 2005. Interaction of anticancer drug mitoxantrone with DNA analyzed by electrochemical and spectroscopic methods. Biophysical Chemistry 116 (3):199–205. doi:10.1016/j.bpc.2005.04.009.
  • Liang, L., J.-W. Shen, and Q. Wang. 2017. Molecular dynamics study on DNA nanotubes as drug delivery vehicle for anticancer drugs. Colloids and Surfaces. B, Biointerfaces 153:168–73. doi:10.1016/j.colsurfb.2017.02.021.
  • Mahmoudi-Moghaddam, H., S. Tajik, and H. Beitollahi. 2019. A new electrochemical DNA biosensor based on modified carbon paste electrode using graphene quantum dots and ionic liquid for determination of topotecan. Microchemical Journal 150:104085. doi:10.1016/j.microc.2019.104085.
  • Miller, J. N., and J. C. Miller. 2000. Statistics and Chemometrics for Analytical Chemistry. London: Pearson Education.
  • Muti, M., and M. Muti. 2018. Electrochemical monitoring of the interaction between anticancer drug and DNA in the presence of antioxidant. Talanta 178:1033–9. doi:10.1016/j.talanta.2017.08.089.
  • Nemčeková, K., J. Labuda, V. Milata, J. Blaškovičová, and J. Sochr. 2018. Interaction of DNA and mononucleotides with theophylline investigated using electrochemical biosensors and biosensing. Bioelectrochemistry (Amsterdam, Netherlands) 123:182–9. doi:10.1016/j.bioelechem.2018.05.004.
  • Ocak, I., and H. E. Satana Kara. 2018. Phosphorescent detection of DNA-drug interaction based on emission quenching of ZnS quantum dots via photoinduced electron transfer. Journal of Luminescence 197:112–8. doi:10.1016/j.jlumin.2018.01.026.
  • Tajik, S., M. A. Taher, H. Beitollahi, and M. Torkzadeh-Mahani. 2015. Electrochemical determination of the anticancer drug taxol at a ds-DNA modified pencil-graphite electrode and its application as a label-free electrochemical biosensor. Talanta 134:60–4. doi:0.1016/j.talanta.2014.10.063 doi:10.1016/j.talanta.2014.10.063.
  • Vural, T., F. Kuralay, C. Bayram, S. Abaci, and E. B. Denkbas. 2010. Preparation and physical/electrochemical characterization of carbon nanotube-chitosan modified pencil graphite electrode. Applied Surface Science 257 (2):622–7. doi:10.1016/j.apsusc.2010.07.048.
  • Xie, W., Y. Ye, A. Shen, L. Zhou, Z. Lou, X. Wang, and J. Hu. 2008. Evaluation of DNA-targeted anti-cancer drugs by Raman spectroscopy. Vibrational Spectroscopy 47 (2):119–23. doi:10.1016/j.vibspec.2008.03.003.
  • Yáñez-Sedeño, P., S. Campuzano, and J. M. Pingarrón. 2019. Pushing the limits of electrochemistry toward challenging applications in clinical diagnosis, prognosis, and therapeutic action. Chemical Communications (Cambridge, England) 55 (18):2563–92. doi:10.1039/C8CC08815B.
  • Zembrzuska, D., J. Kalecki, M. Cieplak, W. Lisowski, P. Borowicz, K. Noworyta, and P. S. Sharma. 2019. Electrochemically initiated co-polymerization of monomers of different oxidation potentials for molecular imprinting of electroactive analyte. Sensors and Actuators B: Chemical 298:126884. doi:10.1016/j.snb.2019.126884.
  • Zhu, C., J. Zhai, D. Wen, and S. Dong. 2012. Graphene oxide/polypyrrole nanocomposites: One-step electrochemical doping, coating and synergistic effect for energy storage. Journal of Materials Chemistry 22 (13):6300–6. doi:10.1039/c2jm16699b.

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