Magnetic Graphene-Based Nanosheets with Pluronic F127-Chitosan Biopolymers Encapsulated α-Mangosteen Drugs for Breast Cancer Cells Therapy.
Andri HardiansyahAhmad RandyRizna Triana DewiMarissa AngelinaNurfina YudasariSri RahayuIka Maria UlfahFaiza MaryaniYen-Zen WangTing-Yu LiuPublished in: Polymers (2022)
In this study, multifunctional chitosan-pluronic F127 with magnetic reduced graphene oxide (MRGO) nanocomposites were developed through the immobilization of chitosan and an amphiphilic polymer (pluronic F127) onto the MRGO. Physicochemical characterizations and in-vitro cytotoxicity of nanocomposites were investigated through field emission scanning electron microscopy (FESEM), X-ray diffraction (XRD), Fourier-transform infrared (FTIR) spectroscopy, particle size analysis, vibrating sample magnetometer, Raman spectroscopy and resazurin-based in-vitro cytotoxicity assay. FESEM observation shows that the magnetic nanoparticles could tethered on the surface of MRGO, promoting the magnetic properties of the nanocomposites. FTIR identification analysis revealed that the chitosan/pluronic F127 were successfully immobilized on the surface of MRGO. Furthermore, α-mangosteen, as a model of natural drug compound, was successfully encapsulated onto the chitosan/pluronic F127@MRGO nanocomposites. According to in-vitro cytotoxicity assay, α-mangosteen-loaded chitosan/pluronic F127@MRGO nanocomposites could significantly reduce the proliferation of human breast cancer (MFC-7) cells. Eventually, it would be anticipated that the novel α-mangosteen-loaded chitosan/pluronic F127@MRGO nanocomposites could be promoted as a new potential material for magnetically targeting and killing cancer cells.
Keyphrases
- reduced graphene oxide
- drug delivery
- wound healing
- gold nanoparticles
- cancer therapy
- electron microscopy
- carbon nanotubes
- hyaluronic acid
- magnetic nanoparticles
- raman spectroscopy
- endothelial cells
- signaling pathway
- visible light
- cell proliferation
- magnetic resonance imaging
- computed tomography
- molecularly imprinted
- magnetic resonance
- stem cells
- ionic liquid
- cell death
- human health
- pi k akt
- highly efficient
- emergency department
- high speed
- pluripotent stem cells