Magnetic nanoparticles for cancer therapy

被引:223
作者
Goya, G. F. [1 ]
Grazu, V. [1 ]
Ibarra, M. R. [1 ]
机构
[1] Univ Zaragoza, INA, Zaragoza 50009, Spain
关键词
nanoparticles; superparamagnetism; iron oxides; hyperthermia; MRI-contrast agents; drug delivery; cell separation;
D O I
10.2174/157341308783591861
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Today, technologies based on magnetic nanoparticles (MNPs) are routinely applied to biological systems with diagnostic or therapeutic purposes. The paradigmatic example is the magnetic resonance imaging (MRI), a technique that uses the magnetic moments of MNPs as a disturbance of the proton resonance to obtain images. Similarly, magnetic fluid hyperthermia (MFH) uses MNPs as heat generators to induce localized cell death. The physical basis of these techniques relies on the interaction with external magnetic fields, and therefore the magnetic moment of the particles has to be maximized for these applications. Targeted drug-delivery based on 'smart' nanoparticles is the next step towards more efficient oncologic therapies, by delivering a minimal dose of drug only to the vicinity of the target. Current improvements in this fields relay on a) particle functionalization with specific ligands for targeting cell membrane receptors and b) loading MNPs onto cells (e. g., dendritic cells, T-cells, macrophages) having an active role in tumor grow. Here we review the current state of research on applications of magnetic carriers for cancer therapy, discussing the advances and drawbacks of both passive and targeted delivery of MNPs. The most promising strategies for targeted delivery of MNPs are analyzed, evaluating the expected impact on clinical MRI and MFH protocols.
引用
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页码:1 / 16
页数:16
相关论文
共 125 条
[1]   LONG-CIRCULATING (STERICALLY STABILIZED) LIPOSOMES FOR TARGETED DRUG-DELIVERY [J].
ALLEN, TM .
TRENDS IN PHARMACOLOGICAL SCIENCES, 1994, 15 (07) :215-220
[2]  
Altieri Dario C, 2003, Prog Cell Cycle Res, V5, P447
[3]   THEORY - THE FUNDAMENTALS OF SEPARATION, INCLUDING SHARPLES SIGMA VALUE FOR PREDICTING EQUIPMENT PERFORMANCE [J].
AMBLER, CM .
INDUSTRIAL AND ENGINEERING CHEMISTRY, 1961, 53 (06) :430-433
[4]   A novel anti-apoptosis gene, survivin, expressed in cancer and lymphoma [J].
Ambrosini, G ;
Adida, C ;
Altieri, DC .
NATURE MEDICINE, 1997, 3 (08) :917-921
[5]   Temperature distribution as function of time around a small spherical heat source of local magnetic hyperthermia [J].
Andrä, W ;
d'Ambly, CG ;
Hergt, R ;
Hilger, I ;
Kaiser, WA .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 1999, 194 (1-3) :197-203
[6]   Synthesis, characterization and targeting of biodegradable magnetic nanocomposite particles by external magnetic fields [J].
Asmatulu, R ;
Zalich, MA ;
Claus, RO ;
Riffle, JS .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2005, 292 :108-119
[7]   RECOVERY OF YEAST FROM CULTIVATION MEDIUM BY CONTINUOUS FLOTATION AND ITS DEPENDENCE ON CULTIVATION CONDITIONS [J].
BAHR, KH ;
SCHUGERL, K .
CHEMICAL ENGINEERING SCIENCE, 1992, 47 (01) :11-20
[8]   Colloidal drug carriers: achievements and perspectives [J].
Barratt, G .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2003, 60 (01) :21-37
[9]   Laser pyrolysis preparation of SiO2-coated magnetic nanoparticles for biomedical applications [J].
Bomatí-Miguel, O ;
Leconte, Y ;
Morales, MP ;
Herlin-Boime, N ;
Veintemillas-Verdaguer, S .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2005, 290 :272-275
[10]   Lanthanides in magnetic resonance imaging [J].
Bottrill, Melanie ;
Nicholas, Lilian Kwok ;
Long, Nicholas J. .
CHEMICAL SOCIETY REVIEWS, 2006, 35 (06) :557-571