Convection-enhanced delivery of maghemite nanoparticles: Increased efficacy and MRI monitoring

被引:74
作者
Perlstein, Benny [2 ]
Ram, Zvi [3 ]
Daniels, Dianne [1 ]
Ocherashvilli, Aharon [1 ]
Roth, Yiftach [1 ]
Margel, Shlomo [2 ]
Mardor, Yael [1 ]
机构
[1] Chaim Sheba Med Ctr, Adv Technol Ctr, IL-52621 Tel Hashomer, Israel
[2] Bar Ilan Univ, Dept Chem, Ramat Gan, Israel
[3] Tel Aviv Med Ctr & Sch Med, Dept Neurosurg, Tel Aviv, Israel
关键词
brain tumors; convection-enhanced drug delivery; drug delivery; magnetic resonance imaging; nanoparticles;
D O I
10.1215/15228517-2008-002
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Convection-enhanced drug delivery (CED) is a novel approach to delivering drugs into brain tissue. Drugs are delivered continuously via a catheter, enabling large volume distributions of high drug concentrations with minimum systemic toxicity. Previously we demonstrated that CED formation/extent of small molecules may be significantly improved by increasing infusate viscosities. In this study we show that the same methodology can be applied to monodispersed maghemite nanoparticles (MNPs). For this purpose we used a normal rat brain model and performed CED of MNPs over short infusion times. By adding 3% sucrose or 3%-6% polyethylene glycol (PEG; molecular weight 400) to saline containing pristine MNPs, we increased infusate viscosity and obtained increased CED efficacy. Further, we show that CED of dextran-coated MNPs (dextran-MNPs) resulted in increased efficacy over pristine MNPs (p < 0.007). To establish the use of MRI for reliable depiction of MNP distribution, CED of fluorescent dextran-MNPs was performed, demonstrating a significant correlation between the distributions as depicted by MRI and spectroscopic images (r(2) = 0.74, p < 0.0002). MRI follow-up showed that approximately 80%-90% of the dextran-MNPs were cleared from the rat brain within 40 days of CED; the rest remained in the brain for more than 4 months. MNPs have been tested for applications such as targeted drug delivery and controlled drug release and are clinically used as a contrast agent for MRI. Thus, combining the CED method with the advantages of MNPs may provide a powerful tool to treat and monitor brain tumors.
引用
收藏
页码:153 / 161
页数:9
相关论文
共 37 条
[1]   Efficient magnetic cell labeling with protamine sulfate complexed to ferumoxides for cellular MRI [J].
Arbab, AS ;
Yocum, GT ;
Kalish, H ;
Jordan, EK ;
Anderson, SA ;
Khakoo, AY ;
Read, EJ ;
Frank, JA .
BLOOD, 2004, 104 (04) :1217-1223
[2]   Dextran and albumin derivatised iron oxide nanoparticles: influence on fibroblasts in vitro [J].
Berry, CC ;
Wells, S ;
Charles, S ;
Curtis, ASG .
BIOMATERIALS, 2003, 24 (25) :4551-4557
[3]   CONVECTION-ENHANCED DELIVERY OF MACROMOLECULES IN THE BRAIN [J].
BOBO, RH ;
LASKE, DW ;
AKBASAK, A ;
MORRISON, PF ;
DEDRICK, RL ;
OLDFIELD, EH .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (06) :2076-2080
[4]   Nanopartide-aptamer bioconjugates: A new approach for targeting prostate cancer cells [J].
Farokhzad, OC ;
Jon, SY ;
Khademhosseini, A ;
Tran, TNT ;
LaVan, DA ;
Langer, R .
CANCER RESEARCH, 2004, 64 (21) :7668-7672
[5]   Glial cell line-derived neurotrophic factor-conjugated nanoparticles suppress acquisition of cocaine self-administration in rats [J].
Green-Sadan, T ;
Kuttner, Y ;
Lublin-Tennenbaum, T ;
Kinor, N ;
Boguslavsky, Y ;
Margel, S ;
Yadid, G .
EXPERIMENTAL NEUROLOGY, 2005, 194 (01) :97-105
[6]   Maghemite nanoparticles with very high AC-losses for application in RF-magnetic hyperthermia [J].
Hergt, R ;
Hiergeist, R ;
Hilger, I ;
Kaiser, WA ;
Lapatnikov, Y ;
Margel, S ;
Richter, U .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2004, 270 (03) :345-357
[7]   Interleukin-4-Pseudomonas exotoxin chimeric fusion protein for malignant glioma therapy [J].
Kawakami, M ;
Kawakami, K ;
Puri, RK .
JOURNAL OF NEURO-ONCOLOGY, 2003, 65 (01) :15-25
[8]   Monitoring PDT-induced damage using spectrally resolved reflectance imaging of tissue oxygenation [J].
Kostenich, G ;
Kimel, S ;
Peled, S ;
Orenstein, A .
CANCER LETTERS, 2005, 219 (02) :169-175
[9]   Real-time visualization and characterization of liposomal delivery into the monkey brain by magnetic resonance imaging [J].
Krauze, MT ;
Mcknight, TR ;
Yamashita, Y ;
Bringas, J ;
Noble, CO ;
Saito, R ;
Geletneky, K ;
Forsayeth, J ;
Berger, MS ;
Jackson, P ;
Park, JW ;
Bankiewicz, KS .
BRAIN RESEARCH PROTOCOLS, 2005, 16 (1-3) :20-26
[10]   Nanoparticulate systems for brain delivery of drugs [J].
Kreuter, J .
ADVANCED DRUG DELIVERY REVIEWS, 2001, 47 (01) :65-81