Cytotoxicity and GMI bio-sensor detection of maghemite nanoparticles internalized into cells

被引:59
作者
Blanc-Beguin, F. [1 ]
Nabily, S. [2 ]
Gieraltowski, J. [2 ]
Turzo, A.
Querellou, S.
Salaun, P. Y.
机构
[1] Brest Univ Hosp, Morvan Hosp, Dept Nucl Med, F-29609 Brest, France
[2] Brest Univ, CNRS, FRE 3117, LMB, F-29200 Brest, France
关键词
Cell uptake; Viability; Cytotoxicity; Maghemite nanoparticle; Giant magneto-impedance bio-sensor; MAGNETITE CATIONIC LIPOSOMES; IRON-OXIDE NANOPARTICLES; SUPERPARAMAGNETIC NANOPARTICLES; GIANT-MAGNETOIMPEDANCE; SENSITIVE ELEMENT; PROSTATE-CANCER; BIOSENSOR; BIOMOLECULES; REGRESSION; THERAPY;
D O I
10.1016/j.jmmm.2008.08.104
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this work we determine conditions to produce cell samples for imaging with detection of the modi. cation of the magnetic field by maghemite (Fe2O3) nanoparticles acting as a high sensitivity magnetic bio-sensor based on the giant magneto-impedance (GMI) effect. Mat Ly Lu cells are grown for 24 h with various maghemite nanoparticles concentrations (from 0 to 6mg/ml). The percentage of viable cells is determined by counting labeled cells with trypan blue under an optical microscope. The quantity of nanoparticles internalized into the cells is evaluated by X-ray fluorescence analysis and expressed in iron moles per cell. The GMI bio-sensor was tested with the various samples. We observed that the best sensitivity of the GMI bio-sensor was obtained at a frequency of 1MHz. To confirm these results in the presence of cell samples, four measurement frequencies were pre-selected (from 1 to 100MHz) and tested. Cell growth conditions compatible with an acceptable percentage of cell viability for various concentrations of nanoparticles were also determined. These experiments allow us to conclude that cell growth with 0.1 mg/ml of nanoparticles for 24 h shows modi. cations of the magnetic field detectable optimally at 1MHz frequency. (C) 2008 Elsevier B.V. All rights reserved.
引用
收藏
页码:192 / 197
页数:6
相关论文
共 34 条
[21]   Giant-magnetoimpedance-based sensitive element as a model for biosensors [J].
Kurlyandskaya, GV ;
Sánchez, ML ;
Hernando, B ;
Prida, VM ;
Gorria, P ;
Tejedor, M .
APPLIED PHYSICS LETTERS, 2003, 82 (18) :3053-3055
[22]   Bifunctional magnetic silica nanoparticles for highly efficient human stem cell labeling [J].
Lu, Chen-Wen ;
Hung, Yann ;
Hsiao, Jong-Kai ;
Yao, Ming ;
Chung, Tsai-Hua ;
Lin, Yu-Shen ;
Wu, Si-Han ;
Hsu, Szu-Chun ;
Liu, Hon-Man ;
Mou, Chung-Yuan ;
Yang, Chung-Shi ;
Huang, Dong-Ming ;
Chen, Yao-Chang .
NANO LETTERS, 2007, 7 (01) :149-154
[23]   Magnetic nanoparticle design for medical diagnosis and therapy [J].
Mornet, S ;
Vasseur, S ;
Grasset, F ;
Duguet, E .
JOURNAL OF MATERIALS CHEMISTRY, 2004, 14 (14) :2161-2175
[24]   Applications of magnetic nanoparticles in biomedicine [J].
Pankhurst, QA ;
Connolly, J ;
Jones, SK ;
Dobson, J .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2003, 36 (13) :R167-R181
[25]   Development of functionalized superparamagnetic iron oxide nanoparticles for interaction with human cancer cells [J].
Petri-Fink, A ;
Chastellain, M ;
Juillerat-Jeanneret, L ;
Ferrari, A ;
Hofmann, H .
BIOMATERIALS, 2005, 26 (15) :2685-2694
[26]  
Rabbani SA, 2000, INT J CANCER, V87, P276, DOI 10.1002/1097-0215(20000715)87:2<276::AID-IJC20>3.0.CO
[27]  
2-L
[28]   Aqueous dispersions of magnetite nanoparticles with NH+3 surfaces for magnetic manipulations of biomolecules and MRI contrast agents [J].
Shieh, DB ;
Cheng, FY ;
Su, CH ;
Yeh, CS ;
Wu, MT ;
Wu, YN ;
Tsai, CY ;
Wu, CL ;
Chen, DH ;
Chou, CH .
BIOMATERIALS, 2005, 26 (34) :7183-7191
[29]   Effective cell-seeding technique using magnetite nanoparticles and magnetic force onto decellularized blood vessels for vascular tissue engineering [J].
Shimizu, Kazunori ;
Ito, Akira ;
Arinobe, Manabu ;
Murase, Yosuke ;
Iwata, Yoshihisa ;
Narita, Yuji ;
Kagami, Hideaki ;
Ueda, Minoru ;
Honda, Hiroyuki .
JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2007, 103 (05) :472-478
[30]  
TAMANAHA CR, 2003, P 7 INT C MIN CHEM B