Mesoporous silica nanoparticles functionalized with folic acid for targeted release Cis-Pt to glioblastoma cells
This work reports the preparation, characterization, and a drug release study of mesoporous silica nanoparticles (MNPSiO2) functionalized with folic acid (FA) and loaded with Cis-Pt as a targeted release system to kill glioblastoma cancer cells. The MNPSiO2 were synthesized by the Stöber method usin...
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doaj-74b2c97083de4923b476a0f16a23c94d2021-10-03T07:42:43ZengDe GruyterReviews on Advanced Materials Science1605-81272021-01-01601253710.1515/rams-2021-0009rams-2021-0009Mesoporous silica nanoparticles functionalized with folic acid for targeted release Cis-Pt to glioblastoma cellsOrtiz-Islas Emma0Sosa-Arróniz Anahí1Manríquez-Ramírez Ma Elena2Rodríguez-Pérez C. Ekaterina3Tzompantzi Francisco4Padilla Juan Manuel5Nanotechnology Laboratory. National Institute of Neurology and Neurosurgery. Insurgentes Sur 3877, La Fama, 14269México City, MéxicoNanotechnology Laboratory. National Institute of Neurology and Neurosurgery. Insurgentes Sur 3877, La Fama, 14269México City, México; Universidad Tecnológica del Centro de Veracruz. Av. Universidad No.350, 94910, Cuitláhuac, Veracruz, MéxicoESIQIE-National Polytechnic Institute. Instituto Politécnico Nacional s/n, Col. Zacatenco, 07738México City, MéxicoNeuroimmunoendocrinology Laboratory. National Institute of Neurology and Neurosurgery, Insurgentes sur 3877, Tlalpan, México City14269, MexicoMetropolitan Autonomous University-Iztapalapa. Av. San Rafael Atlixco, Iztapalapa, 09340, MéxicoUniversidad Tecnológica del Centro de Veracruz. Av. Universidad No.350, 94910, Cuitláhuac, Veracruz, MéxicoThis work reports the preparation, characterization, and a drug release study of mesoporous silica nanoparticles (MNPSiO2) functionalized with folic acid (FA) and loaded with Cis-Pt as a targeted release system to kill glioblastoma cancer cells. The MNPSiO2 were synthesized by the Stöber method using hexadecyltrimethylammonium bromide as the templating agent, which was finally removed by calcination at 550°C. The folic acid was chemically anchored to the silica nanoparticles surface by a carbodiimide reaction. Several physicochemical techniques were used for the MNPSiO2 characterization, and a triplicate in vitro Cis-Pt release test was carried out. The release Cis-Pt experimental values were fitted to different theoretical models to find the Cis-Pt release mechanism. The cytotoxicity evaluation of the MNPSiO2 was performed using LN 18 cells (human GBM cells). Homogeneous and well-defined nanoparticles with well-distributed and homogeneous porosity were obtained. The spectroscopic results show the proper functionalization of the mesoporous nanoparticles; besides, MNPSiO2 showed high surface area and large pore size. High correlation coefficients were obtained. Though the best fitted was the Korsmeyer-Peppas kinetic model, the Higuchi model adjusted better to the results obtained for our system. The MNPSiO2-FA were highly biocompatible, and they increased the cytotoxic effect of Cis-Pt loaded in them.https://doi.org/10.1515/rams-2021-0009silica nanoparticlesdrug release vehiclebrain cancer cellscell uptake |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ortiz-Islas Emma Sosa-Arróniz Anahí Manríquez-Ramírez Ma Elena Rodríguez-Pérez C. Ekaterina Tzompantzi Francisco Padilla Juan Manuel |
spellingShingle |
Ortiz-Islas Emma Sosa-Arróniz Anahí Manríquez-Ramírez Ma Elena Rodríguez-Pérez C. Ekaterina Tzompantzi Francisco Padilla Juan Manuel Mesoporous silica nanoparticles functionalized with folic acid for targeted release Cis-Pt to glioblastoma cells Reviews on Advanced Materials Science silica nanoparticles drug release vehicle brain cancer cells cell uptake |
author_facet |
Ortiz-Islas Emma Sosa-Arróniz Anahí Manríquez-Ramírez Ma Elena Rodríguez-Pérez C. Ekaterina Tzompantzi Francisco Padilla Juan Manuel |
author_sort |
Ortiz-Islas Emma |
title |
Mesoporous silica nanoparticles functionalized with folic acid for targeted release Cis-Pt to glioblastoma cells |
title_short |
Mesoporous silica nanoparticles functionalized with folic acid for targeted release Cis-Pt to glioblastoma cells |
title_full |
Mesoporous silica nanoparticles functionalized with folic acid for targeted release Cis-Pt to glioblastoma cells |
title_fullStr |
Mesoporous silica nanoparticles functionalized with folic acid for targeted release Cis-Pt to glioblastoma cells |
title_full_unstemmed |
Mesoporous silica nanoparticles functionalized with folic acid for targeted release Cis-Pt to glioblastoma cells |
title_sort |
mesoporous silica nanoparticles functionalized with folic acid for targeted release cis-pt to glioblastoma cells |
publisher |
De Gruyter |
series |
Reviews on Advanced Materials Science |
issn |
1605-8127 |
publishDate |
2021-01-01 |
description |
This work reports the preparation, characterization, and a drug release study of mesoporous silica nanoparticles (MNPSiO2) functionalized with folic acid (FA) and loaded with Cis-Pt as a targeted release system to kill glioblastoma cancer cells. The MNPSiO2 were synthesized by the Stöber method using hexadecyltrimethylammonium bromide as the templating agent, which was finally removed by calcination at 550°C. The folic acid was chemically anchored to the silica nanoparticles surface by a carbodiimide reaction. Several physicochemical techniques were used for the MNPSiO2 characterization, and a triplicate in vitro Cis-Pt release test was carried out. The release Cis-Pt experimental values were fitted to different theoretical models to find the Cis-Pt release mechanism. The cytotoxicity evaluation of the MNPSiO2 was performed using LN 18 cells (human GBM cells). Homogeneous and well-defined nanoparticles with well-distributed and homogeneous porosity were obtained. The spectroscopic results show the proper functionalization of the mesoporous nanoparticles; besides, MNPSiO2 showed high surface area and large pore size. High correlation coefficients were obtained. Though the best fitted was the Korsmeyer-Peppas kinetic model, the Higuchi model adjusted better to the results obtained for our system. The MNPSiO2-FA were highly biocompatible, and they increased the cytotoxic effect of Cis-Pt loaded in them. |
topic |
silica nanoparticles drug release vehicle brain cancer cells cell uptake |
url |
https://doi.org/10.1515/rams-2021-0009 |
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