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Research Articles

Poly-β-Cyclodextrin-coated neodymium-containing copper sulphide nanoparticles as an effective anticancer drug carrier

, , , , & ORCID Icon
Pages 409-418 | Received 26 Feb 2022, Accepted 20 Jun 2022, Published online: 07 Jul 2022

References

  • Ahmed, N., Fessi, H., and Elaissari, A., 2012. Theranostic applications of nanoparticles in cancer. Drug discovery today, 17 (17–18), 928–934.
  • Antony, E.J., et al., 2016. Loading of atorvastatin and linezolid in β-cyclodextrin–conjugated cadmium selenide/silica nanoparticles: a spectroscopic study. Materials science & engineering. C, materials for biological applications, 65, 194–198.
  • Bakandritsos, A., et al., 2010. Preparation, stability and cytocompatibility of magnetic/PLA-PEG hybrids. Nanoscale, 2 (4), 564–572.
  • Chavez, K.J., Garimella, S.V., and Lipkowitz, S., 2010. Triple negative breast cancer cell lines: one tool in the search for better treatment of triple negative breast cancer. Breast disease, 32 (1–2), 35–48.
  • Cullity, B. D., and Stock, S. R., 2001. Elements of X-ray diffraction. 3rd ed. Upper Saddle River, NJ: Prentice-Hall Inc., 96–102.
  • Curcio, A., et al., 2019. Iron oxide nanoflowers@CuS hybrids for cancer tri-therapy: interplay of photothermal therapy, magnetic hyperthermia and photodynamic therapy. Theranostics, 9 (5), 1288–1302.
  • Dongol, M., et al., 2015. Thermal annealing effect on the structural and the optical properties of nano CdTe films. Optik, 126 (14), 1352–1357.
  • Enoch, I.V.M.V., et al., 2018. Cyclodextrin–PEG conjugate-wrapped magnetic ferrite nanoparticles for enhanced drug loading and release. Applied nanoscience, 8 (3), 273–284.
  • Gao, W., et al., 2018. Copper sulfide nanoparticles as a photothermal switch for TRPV1 signaling to attenuate atherosclerosis. Nature communications, 9 (1), 231.
  • Han, L., et al., 2016. Protein-modified hollow copper sulfide nanoparticles carrying indocyanine green for photothermal and photodynamic therapy. Journal of materials chemistry B, 4 (1), 105–112.
  • Hariharan, M.S., et al., 2019. 5-Fluorouracil-loaded β-cyclodextrin-carrying polymeric poly (methylmethacrylate)-coated samarium ferrite nanoparticles and their anticancer activity. Journal of materials science, 54 (6), 4942–4951.
  • Huang, X., et al., 2008. Plasmonic photothermal therapy (PPTT) using gold nanoparticles. Lasers in medical science, 23 (3), 217–228.
  • Huang, X., et al., 2021. Recent strategies for nano-based PTT combined with immunotherapy: from a biomaterial point of view. Theranostics, 11 (15), 7546–7569.
  • Kaliyamoorthy, K., et al., 2021a. β-Cyclodextrin-folate functionalized poly (lactic-co-glycolide)–superparamagnetic ytterbium ferrite hybrid nanocarrier for targeted delivery of camptothecin. Materials science & engineering. C, materials for biological applications, 122, 111796.
  • Kaliyamoorthy, K., et al., 2021b. Designed poly (ethylene glycol) conjugate-erbium-doped magnetic nanoparticle hybrid carrier: enhanced activity of anticancer drug. Journal of materials science, 56 (5), 3925–3934.
  • Karikalan, N., et al., 2017. Sonochemical synthesis of sulfur doped reduced graphene oxide supported CuS nanoparticles for the non-enzymatic glucose sensor applications. Scientific reports, 7 (1), 2494.
  • Kato, Y., et al., 2013. Acidic extracellular microenvironment and cancer. Cancer cell international, 13 (1), 89–88.
  • Kim, C.W., et al., 2013. Facile synthesis and magnetic phase transformation of Nd–Fe–B nanoclusters by oxygen bridging. Journal of materials chemistry C, 1 (2), 275–281.
  • Koopmans, C., and Ritter, H., 2008. Formation of physical hydrogels via host-guest interactions of β-cyclodextrin polymers and co-polymers bearing adamantly group. Macromolecules, 41 (20), 7418–7422.
  • Lee, S.H., et al., 2014. Paramagnetic inorganic nanoparticles as T1 MRI contrast agents. Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology, 6 (2), 196–209.
  • Li, X., et al., 2019. From one to all: self-assembled theranostic nanoparticles for tumor-targeted imaging and programmed photoactive therapy. Journal of nanbiotechnology, 17, 1–2.
  • Li, X., et al., 2021. Biocompatible copper sulfide–based nanocomposites for artery interventional chemo-photothermal therapy of orthotropic hepatocellular carcinoma. Materials today bio, 12, 100128.
  • Liu, N., et al., 2021. Persistent luminescence nanoparticles for cancer theranostics application. Journal of nanbiotechnology, 19, 1–24.
  • Liu, Y., Liu, M., and Swihart, M.T., 2017. Plasmonic copper sulfide-based materials: a brief introduction to their synthesis, doping, alloying, and applications. The journal of physical chemistry C, 121 (25), 13435–13447.
  • Mahmoudian, M., et al., 2021. Bortezomib-loaded lipidic-nano drug delivery systems; formulation, therapeutic efficacy, and pharmacokinetics. Journal of microencapsulation, 38 (3), 192–202.
  • Marin, R., et al., 2018. Highly efficient copper sulfide‐based near‐infrared photothermal agents: Exploring the limits of macroscopic heat conversion. Small, 14 (49), 1803282.
  • Ramasamy, S., David, R.J.R.S., and Enoch, I.V.M.V., 2018a. Folate-molecular encapsulator-tethered biocompatible polymer grafted with magnetic nanoparticles for augmented drug delivery. Artificial cells, nanomedicine, and biotechnology, 46 (sup2), 675–682.
  • Ramasamy, S., et al., 2021. Magnetic hydroxyapatite nanomaterial–cyclodextrin tethered polymer hybrids as anticancer drug carriers. Materials advances, 2 (10), 3315–3327.
  • Ramasamy, S., Enoch, I.V.M.V., and Rajkumar, S.R.J., 2020. Polymeric cyclodextrin-dextran spooled nickel ferrite nanoparticles: expanded anticancer efficacy of loaded camptothecin. Materials letters. 261, 127114.
  • Ramasamy, S., et al., 2018b. Molecular encapsulator on the surface of magnetic nanoparticles. Controlled drug release from calcium ferrite/cyclodextrin–tethered polymer hybrid. Colloids and surfaces. B, biointerfaces, 161, 347–355.
  • Rosa, L., Blackledge, J., and Boretti, A., 2017. Nano-magnetic resonance imaging (nano-MRI) gives personalized medicine a new perspective. Biomedicines, 5 (4), 7.
  • Sa, Y., et al., 2017. Are different crystallinity-index-calculating methods of hydroxyapatite efficient and consistent? New journal of chemistry, 41 (13), 5723–5731.
  • Seleci, M., et al., 2016. Smart multifunctional nanoparticles in nanomedicine. BioNanoMater, 17, 33–41.
  • Selvam, R., et al., 2018. Molecular encapsulator–appended poly(vinyl alcohol) shroud on ferrite nanoparticles. Augmented cancer–drug loading and anticancer property. Materials science & engineering. C, materials for biological applications, 93, 125–133.
  • Shao, J., et al., 2021. A smart multifunctional nanoparticle for enhanced near-infrared image-guided photothermal therapy against gastric cancer. International journal of nanomedicine, 16, 2897–2915.
  • Shariatinia, Z., and Sardsahra, F.B., 2016. Synthesis and characterization of novel spinel Zn1.114La1.264Al0.5O4. 271 nanoparticles. Journal of alloys and compounds, 686, 384–393.
  • Shown, I., et al., 2010. Synthesis of cyclodextrin and sugar‐based oligomers for the efavirenz drug delivery. Macromolecular symposia, 287 (1), 51–59.
  • Shukla, S., et al., 2015. The impact of aspect ratio on the biodistribution and tumor homing of rigid soft‐matter nanorods. Advanced healthcare materials, 4 (6), 874–882.
  • Wang, L., et al., 2019. Fe-doped copper sulfide nanoparticles for in vivo magnetic resonance imaging and simultaneous photothermal therapy. Nanotechnology, 30 (41), 415101.
  • Wang, S., et al., 2021. Ultrathin CuFe2S3 nanosheets derived from CuFe-layered double hydroxide as an efficient nanoagent for synergistic chemodynamic and NIR-II photothermal therapy. Chemical engineering journal and the biochemical engineering journal. 419, 129458.
  • Wang, Y., et al., 2017. Ultrasmall superparamagnetic iron oxide nanoparticle for T2-weighted magnetic resonance imaging. ACS applied materials & interfaces, 9 (34), 28959–28966.
  • Wu, H., and Chen, W., 2011. Synthesis and reaction temperature-tailored self-assembly of copper sulfide nanoplates. Nanoscale, 3 (12), 5096–5102.
  • Xiang, B., et al., 2015. Using a novel and easy-to-use sandwich structure device to evaluate the cooling properties of cool materials. International journal of polymer analysis and characterization. 20 (6), 529–540.
  • Yang, C., et al., 2013. Surface plasmon-enhanced Ag/CuS nanocomposites for cancer treatment. Cancer nanotechnology, 4 (4-5), 81–89.
  • Zhu, A., et al., 2009. Polysaccharide surface modified Fe3O4 nanoparticles for camptothecin loading and release. Acta biomaterialia, 5 (5), 1489–1498.

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