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Influences of surface coatings and components of FePt nanoparticles on the suppression of glioma cell proliferation

Malignant gliomas are primary brain tumors with high rates of morbidity and mortality; they are the fourth most common cause of cancer death. Novel diagnostic and therapeutic techniques based on nanomaterials provide promising options in the treatment of malignant gliomas. In order to evaluate the p...

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Autores principales: Sun, Haiming, Chen, Xiaohui, Chen, Dan, Dong, Mingyan, Fu, Xinning, Li, Qian, Liu, Xi, Wu, Qingzhi, Qiu, Tong, Wan, Tao, Li, Shipu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3405879/
https://www.ncbi.nlm.nih.gov/pubmed/22848161
http://dx.doi.org/10.2147/IJN.S32678
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author Sun, Haiming
Chen, Xiaohui
Chen, Dan
Dong, Mingyan
Fu, Xinning
Li, Qian
Liu, Xi
Wu, Qingzhi
Qiu, Tong
Wan, Tao
Li, Shipu
author_facet Sun, Haiming
Chen, Xiaohui
Chen, Dan
Dong, Mingyan
Fu, Xinning
Li, Qian
Liu, Xi
Wu, Qingzhi
Qiu, Tong
Wan, Tao
Li, Shipu
author_sort Sun, Haiming
collection PubMed
description Malignant gliomas are primary brain tumors with high rates of morbidity and mortality; they are the fourth most common cause of cancer death. Novel diagnostic and therapeutic techniques based on nanomaterials provide promising options in the treatment of malignant gliomas. In order to evaluate the potential of FePt nanoparticles (NPs) for malignant glioma therapy, FePt NPs with different surface coatings and components were tunably synthesized using oleic acid/oleylamine (OA/OA) and cysteines (Cys) as the capping agents, respectively. The samples were characterized using X-ray diffraction, transmission electron microscopy (TEM), X-ray photon spectroscopy, Fourier transform infrared spectroscopy, atomic absorption spectrum, and zeta potential. The influence of the surface coatings and components of the FePt NPs on the proliferation of glioma cells was assessed through MTT assay and TEM observation using three typical glioma cell lines (glioma U251 cells, astrocytoma U87 cells, and neuroglioma H4 cells) as in vitro models. The results showed that the proliferation of glioma cells was significantly suppressed by lipophilic FePt-OA/OA NPs in a time- and/or dose-dependent manner, while no or low cytotoxic effects were detected in the case of hydrophilic FePt-Cys NPs. The IC(50) value of FePt-OA/OA NPs on the three glioma cell lines was approximately 5–10 μg mL(−1) after 24 hours’ incubation. Although the cellular uptake of FePt NPs was confirmed regardless of the surface coatings and components of the FePt NPs, the suppression of FePt NPs on glioma cell proliferation was dominantly determined by their surface coatings rather than their components. Therefore, these results demonstrate that, through engineering of the surface coating, FePt NPs can potentially be developed as novel therapeutic agents for malignant gliomas.
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spelling pubmed-34058792012-07-30 Influences of surface coatings and components of FePt nanoparticles on the suppression of glioma cell proliferation Sun, Haiming Chen, Xiaohui Chen, Dan Dong, Mingyan Fu, Xinning Li, Qian Liu, Xi Wu, Qingzhi Qiu, Tong Wan, Tao Li, Shipu Int J Nanomedicine Original Research Malignant gliomas are primary brain tumors with high rates of morbidity and mortality; they are the fourth most common cause of cancer death. Novel diagnostic and therapeutic techniques based on nanomaterials provide promising options in the treatment of malignant gliomas. In order to evaluate the potential of FePt nanoparticles (NPs) for malignant glioma therapy, FePt NPs with different surface coatings and components were tunably synthesized using oleic acid/oleylamine (OA/OA) and cysteines (Cys) as the capping agents, respectively. The samples were characterized using X-ray diffraction, transmission electron microscopy (TEM), X-ray photon spectroscopy, Fourier transform infrared spectroscopy, atomic absorption spectrum, and zeta potential. The influence of the surface coatings and components of the FePt NPs on the proliferation of glioma cells was assessed through MTT assay and TEM observation using three typical glioma cell lines (glioma U251 cells, astrocytoma U87 cells, and neuroglioma H4 cells) as in vitro models. The results showed that the proliferation of glioma cells was significantly suppressed by lipophilic FePt-OA/OA NPs in a time- and/or dose-dependent manner, while no or low cytotoxic effects were detected in the case of hydrophilic FePt-Cys NPs. The IC(50) value of FePt-OA/OA NPs on the three glioma cell lines was approximately 5–10 μg mL(−1) after 24 hours’ incubation. Although the cellular uptake of FePt NPs was confirmed regardless of the surface coatings and components of the FePt NPs, the suppression of FePt NPs on glioma cell proliferation was dominantly determined by their surface coatings rather than their components. Therefore, these results demonstrate that, through engineering of the surface coating, FePt NPs can potentially be developed as novel therapeutic agents for malignant gliomas. Dove Medical Press 2012 2012-07-06 /pmc/articles/PMC3405879/ /pubmed/22848161 http://dx.doi.org/10.2147/IJN.S32678 Text en © 2012 Sun et al, publisher and licensee Dove Medical Press Ltd. This is an Open Access article which permits unrestricted noncommercial use, provided the original work is properly cited.
spellingShingle Original Research
Sun, Haiming
Chen, Xiaohui
Chen, Dan
Dong, Mingyan
Fu, Xinning
Li, Qian
Liu, Xi
Wu, Qingzhi
Qiu, Tong
Wan, Tao
Li, Shipu
Influences of surface coatings and components of FePt nanoparticles on the suppression of glioma cell proliferation
title Influences of surface coatings and components of FePt nanoparticles on the suppression of glioma cell proliferation
title_full Influences of surface coatings and components of FePt nanoparticles on the suppression of glioma cell proliferation
title_fullStr Influences of surface coatings and components of FePt nanoparticles on the suppression of glioma cell proliferation
title_full_unstemmed Influences of surface coatings and components of FePt nanoparticles on the suppression of glioma cell proliferation
title_short Influences of surface coatings and components of FePt nanoparticles on the suppression of glioma cell proliferation
title_sort influences of surface coatings and components of fept nanoparticles on the suppression of glioma cell proliferation
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3405879/
https://www.ncbi.nlm.nih.gov/pubmed/22848161
http://dx.doi.org/10.2147/IJN.S32678
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