DocumentCode :
1759964
Title :
Evaluation of the Cytotoxic Effects of PLGA Coated Iron Oxide Nanoparticles as a Carrier of 5- Fluorouracil and Mega-Voltage X-Ray Radiation in DU145 Prostate Cancer Cell Line
Author :
Hajikarimi, Zahra ; Khoei, Samideh ; Khoee, Sepideh ; Mahdavi, Seied Rabi
Author_Institution :
Med. Phys. Dept., Iran Univ. of Med. Sci., Tehran, Iran
Volume :
13
Issue :
4
fYear :
2014
fDate :
Dec. 2014
Firstpage :
403
Lastpage :
408
Abstract :
The purpose of this study was to investigate the uptake and cytotoxic effects of magnetic poly lactic-co-glycolic acid (PLGA)-coated iron oxide nanoparticles as a carrier of 5-fluorouracil (5-FU) and X-ray on the level of proliferation capacity of DU145 prostate carcinoma cell line in monolayer culture. Following monolayer culture, DU 145 cells were treated with different concentrations of 5-FU or 5-FU loaded nanoparticles for 24 h and 2Gy X-ray (6 Mega-voltage (MV)). The rate of nanoparticles penetration was then measured using atomic adsorption spectroscopy (AAS). The cytotoxicity effect of these nanoparticles with/ without X-ray radiation was evaluated using colony formation assay. Spectroscopy results showed that iron content and therefore the cellular uptake of 5-FU loaded nanoparticles increased with increasing nanoparticle concentrations. Further, the proliferation capacity of the cells decreased with the increase of 5-FU and 5- FU loaded nanoparticle concentrations in combination with X-ray radiation. However the extent of reduction in colony number following treatment with 5-FU-loaded nanoparticles in combination with 2Gy of megavoltage X-ray radiation was significantly more than for free 5-FU. Thus, drug-loaded nanoparticles could deliver 5-FU more efficiently into the cells. PLGA coated iron oxide nanoparticles are therefore effective drug delivery vehicles for 5-FU. PLGA coated iron oxide nanoparticles are biocompatible and this coating is an appropriate surface that can penetrate into the cells.
Keywords :
atomic absorption spectroscopy; biomedical materials; cancer; cellular biophysics; drug delivery systems; iron compounds; magnetic particles; monolayers; nanomagnetics; nanomedicine; nanoparticles; polymer blends; toxicology; 5-FU loaded nanoparticle concentrations; 5-fluorouracil; AAS; DU145 prostate cancer cell line; DU145 prostate carcinoma cell line; Fe3O4; PLGA coated iron oxide nanoparticles; atomic adsorption spectroscopy; biocompatible materials; cellular uptake; colony formation assay; cytotoxic effects; drug delivery vehicles; drug-loaded nanoparticles; iron content; magnetic polylactic-co-glycolic acid-coated iron oxide nanoparticles; megavoltage X-ray radiation; monolayer; nanoparticle penetration rate; proliferation capacity; Cancer; Drugs; Educational institutions; Iron; Nanobioscience; Nanoparticles; Spectroscopy; 5-Fluorouracil; PLGA coated iron oxide nanoparticles; atomic absorption spectroscopy; colony formation assay; prostate cancer;
fLanguage :
English
Journal_Title :
NanoBioscience, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1241
Type :
jour
DOI :
10.1109/TNB.2014.2328868
Filename :
6856193
Link To Document :
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