<p>The metal oxide nanocarriers are attracting a lot of interest in cancer treatment because of their special characteristics in nanoscale. However, nanomaterials do have several drawbacks in biomedical applications, such as toxicity, biocompatibility, and stability. To reduce the adverse impacts of traditional chemotherapeutics, magnetite (Fe<sub>3</sub>O<sub>4</sub> NPs) nanoparticles are showing promise as nanocarriers. In this study, focused on nano-bio interaction of synthesized cyclophosphamide loaded chitosan encapsulated magnetite nanoparticles (Chitosan@CP@Fe<sub>3</sub>O<sub>4</sub> NPs). The cyclophosphamide-loaded magnetite nanoparticles have more biocompatibility, less toxicity and more drug encapsulation efficiency and releasing efficiency compared to bare cyclophosphamide and magnetite nanoparticles. The cellular nano-bio interaction was studied in hemocompatibility, cell viability assay showed higher cytotoxicity with an IC<sub>50</sub> values of CP (500&#xa0;µg/ml), Fe<sub>3</sub>O<sub>4</sub> NPs (500&#xa0;µg/ml) and Chitosan@CP@Fe<sub>3</sub>O<sub>4</sub> NPs (500&#xa0;µg/ml). The chromosomal level nano-bio interaction was studied in human blood chromosomal aberration assay, onion root tip geno-toxicity assay. The results show that Fe<sub>3</sub>O<sub>4</sub> NPs are induced more cytotoxicity and genotoxicity at higher concentrations, but CP only induced genotoxicity. The combination of chitosan@CP@Fe<sub>3</sub>O<sub>4</sub> NPs induced very less cytotoxicity, genotoxicity and more anti-tumor effects.</p>

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Nano-Chemotherapeutic Approaches of Bio-Synthesized Chitosan Encapsulated Cyclophosphamide Loaded Magnetite Nanoparticles for Enhanced Lung Cancer Therapy

  • Prabu Velumani,
  • Antalin Casmie A.,
  • Rajeswari Senthilvel,
  • Antony Anista Michael,
  • Vijaya Parthasarathy,
  • Thirunavukkarasu Velusamy

摘要

The metal oxide nanocarriers are attracting a lot of interest in cancer treatment because of their special characteristics in nanoscale. However, nanomaterials do have several drawbacks in biomedical applications, such as toxicity, biocompatibility, and stability. To reduce the adverse impacts of traditional chemotherapeutics, magnetite (Fe3O4 NPs) nanoparticles are showing promise as nanocarriers. In this study, focused on nano-bio interaction of synthesized cyclophosphamide loaded chitosan encapsulated magnetite nanoparticles (Chitosan@CP@Fe3O4 NPs). The cyclophosphamide-loaded magnetite nanoparticles have more biocompatibility, less toxicity and more drug encapsulation efficiency and releasing efficiency compared to bare cyclophosphamide and magnetite nanoparticles. The cellular nano-bio interaction was studied in hemocompatibility, cell viability assay showed higher cytotoxicity with an IC50 values of CP (500 µg/ml), Fe3O4 NPs (500 µg/ml) and Chitosan@CP@Fe3O4 NPs (500 µg/ml). The chromosomal level nano-bio interaction was studied in human blood chromosomal aberration assay, onion root tip geno-toxicity assay. The results show that Fe3O4 NPs are induced more cytotoxicity and genotoxicity at higher concentrations, but CP only induced genotoxicity. The combination of chitosan@CP@Fe3O4 NPs induced very less cytotoxicity, genotoxicity and more anti-tumor effects.