Magnetic Nanoparticles: Synthesis, Surface Modifications and Application in Drug Delivery
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[1] Effect of magnetite nanoparticles on living rate of MCF-7 human breast cancer cells. , 2012, Colloids and surfaces. B, Biointerfaces.
[2] Kenneth A. Barbee,et al. Targeted drug delivery to magnetic implants for therapeutic applications , 2005 .
[3] Pallab Pradhan,et al. Targeted temperature sensitive magnetic liposomes for thermo-chemotherapy. , 2010, Journal of controlled release : official journal of the Controlled Release Society.
[4] R. Banerjee,et al. In vitro application of paclitaxel loaded magnetoliposomes for combined chemotherapy and hyperthermia. , 2012, Colloids and surfaces. B, Biointerfaces.
[5] Liang Zhu,et al. Enhancement in treatment planning for magnetic nanoparticle hyperthermia: Optimization of the heat absorption pattern , 2009, International journal of hyperthermia : the official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group.
[6] Jiang Long,et al. Magnetic lymphatic targeting drug delivery system using carbon nanotubes. , 2008, Medical hypotheses.
[7] G. Sukhorukov,et al. Luminescent polymer microcapsules addressable by a magnetic field. , 2004, Langmuir.
[8] Fangqiong Tang,et al. Controlled drug delivery system based on magnetic hollow spheres/polyelectrolyte multilayer core-shell structure. , 2006, Journal of nanoscience and nanotechnology.
[9] S. Dutz,et al. INSTITUTE OF PHYSICS PUBLISHING JOURNAL OF PHYSICS: CONDENSED MATTER , 2005 .
[10] E. Neuwelt,et al. Imaging, Distribution, and Toxicity of Superparamagnetic Iron Oxide Magnetic Resonance Nanoparticles in the Rat Brain and Intracerebral Tumor , 2005, Neurosurgery.
[11] C. Chuang,et al. Superhigh-magnetization nanocarrier as a doxorubicin delivery platform for magnetic targeting therapy. , 2011, Biomaterials.
[12] R. Issels,et al. Hyperthermia in oncology. , 2001, International journal of hyperthermia : the official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group.
[13] Yuan Tian,et al. Preparation and acute toxicology of nano-magnetic ferrofluid. , 2005, Journal of Huazhong University of Science and Technology. Medical sciences = Hua zhong ke ji da xue xue bao. Yi xue Ying De wen ban = Huazhong keji daxue xuebao. Yixue Yingdewen ban.
[14] Victor C Yang,et al. Cancer theranostics: the rise of targeted magnetic nanoparticles. , 2011, Trends in biotechnology.
[15] F. Guyot,et al. Preparation of chains of magnetosomes, isolated from Magnetospirillum magneticum strain AMB-1 magnetotactic bacteria, yielding efficient treatment of tumors using magnetic hyperthermia. , 2012, International journal of pharmaceutics.
[16] S. Haam,et al. Magnetic PECA nanoparticles as drug carriers for targeted delivery: Synthesis and release characteristics , 2006, Journal of microencapsulation.
[17] M. Rahimi,et al. Development of multiple-layer polymeric particles for targeted and controlled drug delivery. , 2010, Nanomedicine : nanotechnology, biology, and medicine.
[18] P. Chow,et al. Thermoresponsive core–shell magnetic nanoparticles for combined modalities of cancer therapy , 2009, Nanotechnology.
[19] T. S. St. Pierre,et al. Arterial embolization hyperthermia: hepatic iron particle distribution and its potential determination by magnetic resonance imaging. , 2002, Physics in medicine and biology.
[20] M. Saboungi,et al. Synthesis and Evaluation of Novel Biocompatible Super-paramagnetic Iron Oxide Nanoparticles as Magnetic Anticancer Drug Carrier and Fluorescence Active Label , 2010 .
[21] Wolfgang J Parak,et al. Nanopharmacy: Inorganic nanoscale devices as vectors and active compounds. , 2010, Pharmacological research.
[22] Zhenyu Liao,et al. PEG/RGD-modified magnetic polymeric liposomes for controlled drug release and tumor cell targeting. , 2012, International journal of pharmaceutics.
[23] H. Karlsson,et al. Copper oxide nanoparticles are highly toxic: a comparison between metal oxide nanoparticles and carbon nanotubes. , 2008, Chemical research in toxicology.
[24] S. Sahu,et al. Controlling the thickness of polymeric shell on magnetic nanoparticles loaded with doxorubicin for targeted delivery and MRI contrast agent , 2012 .
[25] Bo Zhang,et al. Carbon nanotube-based magnetic-fluorescent nanohybrids as highly efficient contrast agents for multimodal cellular imaging , 2010 .
[26] Seth M Steinberg,et al. Analysis of factors associated with outcome in patients with malignant peritoneal mesothelioma undergoing surgical debulking and intraperitoneal chemotherapy. , 2003, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[27] Hong Yang,et al. Solvothermal synthesis of cobalt ferrite nanoparticles loaded on multiwalled carbon nanotubes for magnetic resonance imaging and drug delivery. , 2011, Acta biomaterialia.
[28] Yong-Keun Lee,et al. Preparation and characterization of magnetic chitosan particles for hyperthermia application , 2005 .
[29] R. Niu,et al. Folate-targeting magnetic core-shell nanocarriers for selective drug release and imaging. , 2012, International journal of pharmaceutics.
[30] Shaobing Zhou,et al. Magnetic micelles as a potential platform for dual targeted drug delivery in cancer therapy. , 2012, International journal of pharmaceutics.
[31] A. Tedesco,et al. In vitro evaluation of combined hyperthermia and photodynamic effects using magnetoliposomes loaded with cucurbituril zinc phthalocyanine complex on melanoma. , 2012, Journal of photochemistry and photobiology. B, Biology.
[32] J. Zee. Heating the patient : a promising approach ? , 2002 .
[33] María Vallet-Regí,et al. Smart drug delivery through DNA/magnetic nanoparticle gates. , 2011, ACS nano.
[34] Dean-Mo Liu,et al. Controlled rupture of magnetic polyelectrolyte microcapsules for drug delivery. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[35] S. Shen,et al. Development of magnetic multiwalled carbon nanotubes combined with near-infrared radiation-assisted desorption for the determination of tissue distribution of doxorubicin liposome injects in rats. , 2011, Journal of chromatography. A.
[36] Takashi Nakagawa,et al. Suitability of commercial colloids for magnetic hyperthermia , 2009 .
[37] Gary Friedman,et al. An approach to targeted drug delivery based on uniform magnetic fields , 2003 .
[38] Christian Bergemann,et al. Iron oxide nanoparticles as a drug delivery vehicle for MRI monitored magnetic targeting of brain tumors. , 2008, Biomaterials.
[39] Xuezhong Zhang,et al. A double-targeted magnetic nanocarrier with potential application in hydrophobic drug delivery. , 2012, Colloids and surfaces. B, Biointerfaces.
[40] Jie Liu,et al. Heating effect and biocompatibility of bacterial magnetosomes as potential materials used in magnetic fluid hyperthermia , 2012 .
[41] R. Faridi‐Majidi,et al. Magnetic polystyrene nanocapsules with core-shell morphology obtained by emulsifier-free miniemulsion polymerization , 2011 .
[42] Feijun Wang,et al. Influence of DS of CMC on morphology and performance of magnetic microcapsules , 2011 .
[43] Jae-Ho Lee,et al. Synthesis of Complexable Fluorescent Superparamagnetic Iron Oxide Nanoparticles (FL SPIONs) and Cell Labeling for Clinical Application , 2008, Advanced materials.
[44] R. Ramanujan,et al. Thermoresponsive magnetic composite nanomaterials for multimodal cancer therapy. , 2010, Acta biomaterialia.
[45] Heyou Han,et al. Probing the interaction of magnetic iron oxide nanoparticles with bovine serum albumin by spectroscopic techniques. , 2009, The journal of physical chemistry. B.
[46] Zhi-Feng Gan,et al. Preparation and properties of a novel drug delivery system with both magnetic and biomolecular targeting , 2009, Journal of materials science. Materials in medicine.
[47] M. Vallet‐Regí,et al. Magnetic mesoporous silica spheres for hyperthermia therapy. , 2010, Acta biomaterialia.
[48] Victor C Yang,et al. Polyethyleneimine-modified iron oxide nanoparticles for brain tumor drug delivery using magnetic targeting and intra-carotid administration. , 2010, Biomaterials.
[49] H. Karlsson,et al. Size-dependent toxicity of metal oxide particles--a comparison between nano- and micrometer size. , 2009, Toxicology letters.
[50] J. Ma,et al. Toxicity of magnetic albumin microspheres bearing adriamycin. , 2000, Journal of Tongji Medical University = Tong ji yi ke da xue xue bao.
[51] C. O'connor,et al. Magnetic properties of variable-sized Fe3O4 nanoparticles synthesized from non-aqueous homogeneous solutions of polyols , 2007 .
[52] S. Dutz,et al. Magnetic particle hyperthermia—biophysical limitations of a visionary tumour therapy , 2007 .
[53] Sungho Jin,et al. Nanotoxicity of iron oxide nanoparticle internalization in growing neurons. , 2007, Biomaterials.
[54] P. Wust,et al. Efficacy and safety of intratumoral thermotherapy using magnetic iron-oxide nanoparticles combined with external beam radiotherapy on patients with recurrent glioblastoma multiforme , 2010, Journal of Neuro-Oncology.
[55] Dongyun Chen,et al. Modification of magnetic silica/iron oxide nanocomposites with fluorescent polymethacrylic acid for cancer targeting and drug delivery , 2010 .
[56] Murali M. Yallapu,et al. Multi-functional magnetic nanoparticles for magnetic resonance imaging and cancer therapy. , 2011, Biomaterials.
[57] M. G. Krukemeyer,et al. Mitoxantrone-iron oxide biodistribution in blood, tumor, spleen, and liver--magnetic nanoparticles in cancer treatment. , 2012, The Journal of surgical research.
[58] C. Galbán,et al. Magnetic brain tumor targeting and biodistribution of long-circulating PEG-modified, cross-linked starch-coated iron oxide nanoparticles. , 2011, Biomaterials.
[59] C. Cho,et al. Biostability of γ-Fe2O3 nano particles Evaluated using an in vitro cytotoxicity assays on various tumor cell lines , 2011 .
[60] L. Deng,et al. Fabrication of cyclodextrin-functionalized superparamagnetic Fe3O4/amino-silane core–shell nanoparticles via layer-by-layer method , 2009 .
[61] S. Doak,et al. The role of iron redox state in the genotoxicity of ultrafine superparamagnetic iron oxide nanoparticles. , 2012, Biomaterials.
[62] J. Xiao,et al. Effect of dissolved organic matter on the stability of magnetite nanoparticles under different pH and ionic strength conditions. , 2010, The Science of the total environment.
[63] Dong Yang,et al. Magnetic functionalised carbon nanotubes as drug vehicles for cancer lymph node metastasis treatment. , 2011, European journal of cancer.
[64] Philip J. Camp,et al. A Magnetically Controlled Molecular Nanocontainer as a Drug Delivery System: The Effects of Carbon Nanotube and Magnetic Nanoparticle Parameters from Monte Carlo Simulations , 2010 .
[65] Lutz Trahms,et al. Cancer therapy with drug loaded magnetic nanoparticles—magnetic drug targeting , 2011 .
[66] Nguyen Thanh Huong,et al. Surface modification of iron oxide nanoparticles and their conjuntion with water soluble polymers for biomedical application , 2009 .
[67] Z. Deng,et al. Magnetic and fluorescent multifunctional chitosan nanoparticles as a smart drug delivery system , 2007 .
[68] M. Mahmoudi,et al. Superparamagnetic iron oxide nanoparticles (SPIONs): development, surface modification and applications in chemotherapy. , 2011, Advanced drug delivery reviews.
[69] P Stroeve,et al. Cell toxicity of superparamagnetic iron oxide nanoparticles. , 2009, Journal of colloid and interface science.
[70] C. Kumar,et al. Magnetic nanomaterials for hyperthermia-based therapy and controlled drug delivery. , 2011, Advanced drug delivery reviews.
[71] A. Curtis,et al. Dextran and albumin derivatised iron oxide nanoparticles: influence on fibroblasts in vitro. , 2003, Biomaterials.
[72] Ying Tian,et al. Layer-by-layer assembly of magnetic polypeptide nanotubes as a DNA carrier , 2008 .
[73] J. A. Ritter,et al. In vitro study of magnetic nanoparticles as the implant for implant assisted magnetic drug targeting , 2011 .
[74] K. Gitter,et al. Experimental investigations on a branched tube model in magnetic drug targeting , 2011 .
[75] M. Farina,et al. Microcapsules of alginate/chitosan containing magnetic nanoparticles for controlled release of insulin. , 2010, Colloids and surfaces. B, Biointerfaces.
[76] D L Bartlett,et al. Laparoscopic continuous hyperthermic peritoneal perfusion. , 2001, Journal of the American College of Surgeons.
[77] I. Puri,et al. The effects of magnetic nanoparticle properties on magnetic fluid hyperthermia , 2010 .
[78] S. Nishijima,et al. Development of Magnetic Field Control for Magnetically Targeted Drug Delivery System Using a Superconducting Magnet , 2007, IEEE Transactions on Applied Superconductivity.
[79] Alexander M. Seifalian,et al. Toxicological considerations of clinically applicable nanoparticles , 2011 .
[80] Q. Huo,et al. Magnetic colloidosomes fabricated by Fe3O4–SiO2 hetero-nanorods , 2011 .
[81] K. Koumoto,et al. Variable on-demand release function of magnetoresponsive hybrid capsules. , 2011, Journal of colloid and interface science.
[82] Kunihito Koumoto,et al. Magnetoresponsive smart capsules formed with polyelectrolytes, lipid bilayers and magnetic nanoparticles. , 2010, ACS applied materials & interfaces.
[83] A. Skumiel. Suitability of water based magnetic fluid with CoFe2O4 particles in hyperthermia , 2006 .
[84] A. Volkov,et al. Magnetic properties of polymer nanocomposites containing iron oxide nanoparticles , 2003 .
[85] Miqin Zhang,et al. Design and fabrication of magnetic nanoparticles for targeted drug delivery and imaging. , 2010, Advanced drug delivery reviews.
[86] W. Weitschies,et al. The effect of field parameters, nanoparticle properties and immobilization on the specific heating power in magnetic particle hyperthermia , 2006 .
[87] Zhi-Jun Zhang,et al. Synthesis of a novel magnetic drug delivery system composed of doxorubicin-conjugated Fe3O4 nanoparticle cores and a PEG-functionalized porous silica shell. , 2010, Chemical communications.
[88] K. Neoh,et al. Multifunctional polyglycerol-grafted Fe₃O₄@SiO₂ nanoparticles for targeting ovarian cancer cells. , 2011, Biomaterials.
[89] P. Jacobs,et al. Physical and chemical properties of superparamagnetic iron oxide MR contrast agents: ferumoxides, ferumoxtran, ferumoxsil. , 1995, Magnetic resonance imaging.
[90] Ning Gu,et al. Preparation and characterization of magnetite nanoparticles coated by amino silane , 2003 .
[91] David Bardenstein,et al. Cell uptake and in vitro toxicity of magnetic nanoparticles suitable for drug delivery. , 2009, Molecular pharmaceutics.
[92] Hao Hong,et al. cRGD-functionalized, DOX-conjugated, and ⁶⁴Cu-labeled superparamagnetic iron oxide nanoparticles for targeted anticancer drug delivery and PET/MR imaging. , 2011, Biomaterials.
[93] A. Rossi,et al. Ca alginate as scaffold for iron oxide nanoparticles synthesis , 2008 .
[94] Deping Wang,et al. Synthesis, characterization and in vitro cytotoxicity of self-regulating magnetic implant material for hyperthermia application , 2009 .
[95] H. Shokrollahi,et al. Ferrite-based magnetic nanofluids used in hyperthermia applications , 2012 .
[96] Mark R Wiesner,et al. In vitro interactions between DMSA-coated maghemite nanoparticles and human fibroblasts: A physicochemical and cyto-genotoxical study. , 2006, Environmental science & technology.
[97] K. Vad,et al. Magnetic particle hyperthermia: Néel relaxation in magnetic nanoparticles under circularly polarized field , 2008, Journal of physics. Condensed matter : an Institute of Physics journal.
[98] Koichiro Hayashi,et al. In situ synthesis of cobalt ferrite nanoparticle/polymer hybrid from a mixed Fe–Co methacrylate for magnetic hyperthermia , 2012 .
[99] Samantha A. Meenach,et al. Poly(ethylene glycol)-based magnetic hydrogel nanocomposites for hyperthermia cancer therapy. , 2010, Acta biomaterialia.
[100] Ingrid Hilger,et al. Magnetic multicore nanoparticles for hyperthermia—influence of particle immobilization in tumour tissue on magnetic properties , 2011, Nanotechnology.
[101] Roland Felix,et al. The effect of thermotherapy using magnetic nanoparticles on rat malignant glioma , 2006, Journal of Neuro-Oncology.
[102] H. Pardoe,et al. A magnetic resonance imaging based method for measurement of tissue iron concentration in liver arterially embolized with ferrimagnetic particles designed for magnetic hyperthermia treatment of tumors. , 2003, Magnetic resonance imaging.
[103] Morteza Mahmoudi,et al. A new approach for the in vitro identification of the cytotoxicity of superparamagnetic iron oxide nanoparticles. , 2010, Colloids and surfaces. B, Biointerfaces.
[104] P. Wust,et al. Inductive heating of ferrimagnetic particles and magnetic fluids: physical evaluation of their potential for hyperthermia. , 1993, International journal of hyperthermia : the official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group.
[105] C. Marquina,et al. Magnetic Hyperthermia With Fe$_{3}$O $_{4}$ Nanoparticles: The Influence of Particle Size on Energy Absorption , 2008, IEEE transactions on magnetics.
[106] P. Wust,et al. Hyperthermia in combined treatment of cancer. , 2002, The Lancet Oncology.
[107] M. Senna,et al. Magnetic properties of ultrafine magnetite particles and their slurries prepared via in-situ precipitation , 1996 .
[108] Maher Salloum,et al. An in-vivo experimental study of temperature elevations in animal tissue during magnetic nanoparticle hyperthermia , 2008, International journal of hyperthermia : the official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group.
[109] Alexander M. Seifalian,et al. Toxicology and clinical potential of nanoparticles , 2011, Nano today.
[110] A. Tedesco,et al. Preparation, Characterization and in vitro Toxicity Test of Magnetic Nanoparticle-Based Drug Delivery System to Hyperthermia of Biological Tissues , 2007, IEEE Transactions on Magnetics.
[111] Kang Sun,et al. Cell-specific cytotoxicity of dextran-stabilized magnetite nanoparticles. , 2010, Colloids and surfaces. B, Biointerfaces.
[112] Morteza Mahmoudi,et al. An in vitro study of bare and poly(ethylene glycol)-co-fumarate-coated superparamagnetic iron oxide nanoparticles: a new toxicity identification procedure , 2009, Nanotechnology.
[113] G. Pilatos,et al. Magnetic carbon nanotubes with particle-free surfaces and high drug loading capacity , 2011, Nanotechnology.
[114] C. Bergemann,et al. Comparison of different particles and methods for magnetic isolation of circulating tumor cells , 2001 .
[115] A. Shahawy. Magnetic nanoparticle-induced hyperthermia treatment under magnetic resonance imaging , 2013 .
[116] Sander R. Dubovy,et al. Evaluation of Magnetic Micro- and Nanoparticle Toxicity to Ocular Tissues , 2011, PloS one.
[117] Mamoun Muhammed,et al. Magnetic behavior of coated superparamagnetic iron oxide nanoparticles in ferrofluids , 2001 .
[118] X. Shuai,et al. Targeting EGFR-overexpressing tumor cells using Cetuximab-immunomicelles loaded with doxorubicin and superparamagnetic iron oxide. , 2010, European journal of radiology.
[119] Yongmin Chang,et al. The effect of static magnetic fields on the aggregation and cytotoxicity of magnetic nanoparticles. , 2011, Biomaterials.
[120] T. Yen,et al. The effectiveness of a magnetic nanoparticle-based delivery system for BCNU in the treatment of gliomas. , 2011, Biomaterials.
[121] X. Qiua,et al. PREPARATION AND CHARACTERIZATION OF PVA COATED MAGNETIC NANOPARTICLES , 2000 .
[122] M. Hiraoka,et al. Preparation of ferromagnetic microcapsules for hyperthermia using water/oil emulsion as a reaction field , 2012 .
[123] A. Tomitaka,et al. Study on increase in temperature of Co–Ti ferrite nanoparticles for magnetic hyperthermia treatment , 2012 .
[124] Matthias Zeisberger,et al. Size-dependant heating rates of iron oxide nanoparticles for magnetic fluid hyperthermia. , 2009, Journal of magnetism and magnetic materials.
[125] Kang Sun,et al. A general approach for providing nanoparticles water-dispersibility by grinding with poly (ethylene glycol) , 2011 .
[126] S. Banerjee,et al. Cyclodextrin-conjugated nanocarrier for magnetically guided delivery of hydrophobic drugs , 2009 .
[127] Y. Javadzadeh,et al. Recent Advances in Novel Drug Carrier Systems , 2012 .
[128] D. Liu,et al. Synthesis of nanocarriers with remote magnetic drug release control and enhanced drug delivery for intracellular targeting of cancer cells. , 2011, Acta biomaterialia.
[129] Isabelle Raynal,et al. Macrophage Endocytosis of Superparamagnetic Iron Oxide Nanoparticles: Mechanisms and Comparison of Ferumoxides and Ferumoxtran-10 , 2004, Investigative radiology.
[130] Xingping Zhou,et al. Magnetic chitosan nanoparticles as a drug delivery system for targeting photodynamic therapy , 2009, Nanotechnology.
[131] T. Osaka,et al. Cytotoxicity evaluation of magnetite (Fe3O4) nanoparticles in mouse embryonic stem cells. , 2012, Colloids and surfaces. B, Biointerfaces.
[132] D. Rüfenacht,et al. The in vivo performance of magnetic particle-loaded injectable, in situ gelling, carriers for the delivery of local hyperthermia. , 2010, Biomaterials.
[133] Mu-Yi Hua,et al. Novel magnetic/ultrasound focusing system enhances nanoparticle drug delivery for glioma treatment. , 2010, Neuro-oncology.
[134] C. Galbán,et al. Polyethylene glycol modified, cross-linked starch-coated iron oxide nanoparticles for enhanced magnetic tumor targeting. , 2011, Biomaterials.
[135] C. Kumar,et al. Investigation of Magnetic Nanoparticle−Polymer Composites for Multiple-controlled Drug Delivery , 2008 .
[136] Clemens Pietzonka,et al. Novel magnetic iron oxide nanoparticles coated with poly(ethylene imine)-g-poly(ethylene glycol) for potential biomedical application: synthesis, stability, cytotoxicity and MR imaging. , 2011, International journal of pharmaceutics.
[137] A. Sezer. Recent Advances in Novel Drug Carrier Systems , 2012 .
[138] Manuel Arruebo,et al. Development of Magnetic Nanostructured Silica-Based Materials as Potential Vectors for Drug-Delivery Applications , 2006 .
[139] Y. Choa,et al. Magnetite nanoparticles dispersed within nanoporous aerogels for hyperthermia application , 2012 .
[140] O. Kuznetsov,et al. Correlation of the coagulation rates and toxicity of biocompatible ferromagnetic microparticles , 1999 .
[141] H. Möhwald,et al. Maghemite nanoparticles protectively coated with poly(ethylene imine) and poly(ethylene oxide)-block-poly(glutamic acid). , 2006, Langmuir : the ACS journal of surfaces and colloids.