- -

Combining magnetic hyperthermia and dual T1/T2 MR imaging using highly versatile iron oxide nanoparticles

RiuNet: Repositorio Institucional de la Universidad Politécnica de Valencia

Compartir/Enviar a

Citas

Estadísticas

  • Estadisticas de Uso

Combining magnetic hyperthermia and dual T1/T2 MR imaging using highly versatile iron oxide nanoparticles

Mostrar el registro completo del ítem

Sánchez-Cabezas, S.; Montes-Robles, R.; Gallo, J.; Sancenón Galarza, F.; Martínez-Máñez, R. (2019). Combining magnetic hyperthermia and dual T1/T2 MR imaging using highly versatile iron oxide nanoparticles. Dalton Transactions. 48(12):3883-3892. https://doi.org/10.1039/c8dt04685a

Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/144556

Ficheros en el ítem

Metadatos del ítem

Título: Combining magnetic hyperthermia and dual T1/T2 MR imaging using highly versatile iron oxide nanoparticles
Autor: Sánchez-Cabezas, Santiago Montes-Robles, Roberto Gallo, J. Sancenón Galarza, Félix Martínez-Máñez, Ramón
Entidad UPV: Universitat Politècnica de València. Instituto de Tecnología Eléctrica - Institut de Tecnologia Elèctrica
Universitat Politècnica de València. Departamento de Química - Departament de Química
Fecha difusión:
Resumen:
[EN] Magnetic hyperthermia and magnetic resonance imaging (MRI) are two of the most important biomedical applications of magnetic nanoparticles (MNPs). However, the design of MNPs with good heating performance for hyperthermia ...[+]
Palabras clave: Contrast agents , Particle Hyperthermia , Size , Exchange , Uniform , Design , Fluid
Derechos de uso: Reserva de todos los derechos
Fuente:
Dalton Transactions. (issn: 1477-9226 )
DOI: 10.1039/c8dt04685a
Editorial:
The Royal Society of Chemistry
Versión del editor: https://doi.org/10.1039/c8dt04685a
Código del Proyecto:
info:eu-repo/grantAgreement/FEDER//NORTE-01-0145-FEDER-028052/
info:eu-repo/grantAgreement/MINECO//AGL2015-70235-C2-2-R/ES/DESARROLLO DE SISTEMAS HIBRIDOS CON OPTIMIZACION DEL ANCLADO DE BIOMOLECULAS Y DISEÑADOS CON PROPIEDADES DE ENCAPSULACION Y LIBERACION CONTROLADA MEJORADAS/
info:eu-repo/grantAgreement/GVA//PROMETEOII%2F2014%2F047/ES/Nuevas aproximaciones para el diseño de materiales de liberación controlada y la detección de compuestos peligrosos/
info:eu-repo/grantAgreement/MINECO//MAT2015-64139-C4-1-R/ES/NANOMATERIALES INTELIGENTES, SONDAS Y DISPOSITIVOS PARA EL DESARROLLO INTEGRADO DE NUEVAS HERRAMIENTAS APLICADAS AL CAMPO BIOMEDICO/
info:eu-repo/grantAgreement/GVA//PROMETEO%2F2018%2F024/ES/Sistemas avanzados de liberación controlada/
Agradecimientos:
We are grateful to the Spanish Government (projects MAT2015-64139-C4-1-R and AGL2015-70235-C2-2-R (MINECO/FEDER)) and the Generalitat Valenciana (Projects PROMETEO/2018/024 and PROMETEOII/2014/047) for financial support. ...[+]
Tipo: Artículo

References

Lee, J.-H., Jang, J., Choi, J., Moon, S. H., Noh, S., Kim, J., … Cheon, J. (2011). Exchange-coupled magnetic nanoparticles for efficient heat induction. Nature Nanotechnology, 6(7), 418-422. doi:10.1038/nnano.2011.95

Hauser, A. K., Wydra, R. J., Stocke, N. A., Anderson, K. W., & Hilt, J. Z. (2015). Magnetic nanoparticles and nanocomposites for remote controlled therapies. Journal of Controlled Release, 219, 76-94. doi:10.1016/j.jconrel.2015.09.039

González, B., Ruiz-Hernández, E., Feito, M. J., López de Laorden, C., Arcos, D., Ramírez-Santillán, C., … Vallet-Regí, M. (2011). Covalently bonded dendrimer-maghemite nanosystems: nonviral vectors for in vitro gene magnetofection. Journal of Materials Chemistry, 21(12), 4598. doi:10.1039/c0jm03526b [+]
Lee, J.-H., Jang, J., Choi, J., Moon, S. H., Noh, S., Kim, J., … Cheon, J. (2011). Exchange-coupled magnetic nanoparticles for efficient heat induction. Nature Nanotechnology, 6(7), 418-422. doi:10.1038/nnano.2011.95

Hauser, A. K., Wydra, R. J., Stocke, N. A., Anderson, K. W., & Hilt, J. Z. (2015). Magnetic nanoparticles and nanocomposites for remote controlled therapies. Journal of Controlled Release, 219, 76-94. doi:10.1016/j.jconrel.2015.09.039

González, B., Ruiz-Hernández, E., Feito, M. J., López de Laorden, C., Arcos, D., Ramírez-Santillán, C., … Vallet-Regí, M. (2011). Covalently bonded dendrimer-maghemite nanosystems: nonviral vectors for in vitro gene magnetofection. Journal of Materials Chemistry, 21(12), 4598. doi:10.1039/c0jm03526b

Gallo, J., Long, N. J., & Aboagye, E. O. (2013). Magnetic nanoparticles as contrast agents in the diagnosis and treatment of cancer. Chemical Society Reviews, 42(19), 7816. doi:10.1039/c3cs60149h

Boyer, C., Whittaker, M. R., Bulmus, V., Liu, J., & Davis, T. P. (2010). The design and utility of polymer-stabilized iron-oxide nanoparticles for nanomedicine applications. NPG Asia Materials, 2(1), 23-30. doi:10.1038/asiamat.2010.6

Wáng, Y. X. J., & Idée, J.-M. (2017). A comprehensive literatures update of clinical researches of superparamagnetic resonance iron oxide nanoparticles for magnetic resonance imaging. Quantitative Imaging in Medicine and Surgery, 7(1), 88-122. doi:10.21037/qims.2017.02.09

Blanco-Andujar, C., Walter, A., Cotin, G., Bordeianu, C., Mertz, D., Felder-Flesch, D., & Begin-Colin, S. (2016). Design of iron oxide-based nanoparticles for MRI and magnetic hyperthermia. Nanomedicine, 11(14), 1889-1910. doi:10.2217/nnm-2016-5001

Shin, T.-H., Choi, Y., Kim, S., & Cheon, J. (2015). Recent advances in magnetic nanoparticle-based multi-modal imaging. Chemical Society Reviews, 44(14), 4501-4516. doi:10.1039/c4cs00345d

Busquets, M. A., Estelrich, J., & Sánchez-Martín, M. J. (2015). Nanoparticles in magnetic resonance imaging: from simple to dual contrast agents. International Journal of Nanomedicine, 1727. doi:10.2147/ijn.s76501

Lee, N., & Hyeon, T. (2012). Designed synthesis of uniformly sized iron oxide nanoparticles for efficient magnetic resonance imaging contrast agents. Chem. Soc. Rev., 41(7), 2575-2589. doi:10.1039/c1cs15248c

Wang, G., Zhang, X., Skallberg, A., Liu, Y., Hu, Z., Mei, X., & Uvdal, K. (2014). One-step synthesis of water-dispersible ultra-small Fe3O4 nanoparticles as contrast agents for T1 and T2 magnetic resonance imaging. Nanoscale, 6(5), 2953. doi:10.1039/c3nr05550g

Kim, B. H., Lee, N., Kim, H., An, K., Park, Y. I., Choi, Y., … Hyeon, T. (2011). Large-Scale Synthesis of Uniform and Extremely Small-Sized Iron Oxide Nanoparticles for High-ResolutionT1Magnetic Resonance Imaging Contrast Agents. Journal of the American Chemical Society, 133(32), 12624-12631. doi:10.1021/ja203340u

Negussie, A. H., Yarmolenko, P. S., Partanen, A., Ranjan, A., Jacobs, G., Woods, D., … Dreher, M. R. (2011). Formulation and characterisation of magnetic resonance imageable thermally sensitive liposomes for use with magnetic resonance-guided high intensity focused ultrasound. International Journal of Hyperthermia, 27(2), 140-155. doi:10.3109/02656736.2010.528140

Hervault, A., & Thanh, N. T. K. (2014). Magnetic nanoparticle-based therapeutic agents for thermo-chemotherapy treatment of cancer. Nanoscale, 6(20), 11553-11573. doi:10.1039/c4nr03482a

Kumar, C. S. S. R., & Mohammad, F. (2011). Magnetic nanomaterials for hyperthermia-based therapy and controlled drug delivery. Advanced Drug Delivery Reviews, 63(9), 789-808. doi:10.1016/j.addr.2011.03.008

Deatsch, A. E., & Evans, B. A. (2014). Heating efficiency in magnetic nanoparticle hyperthermia. Journal of Magnetism and Magnetic Materials, 354, 163-172. doi:10.1016/j.jmmm.2013.11.006

Zhang, J., Li, X., Rosenholm, J. M., & Gu, H. (2011). Synthesis and characterization of pore size-tunable magnetic mesoporous silica nanoparticles. Journal of Colloid and Interface Science, 361(1), 16-24. doi:10.1016/j.jcis.2011.05.038

COROT, C., ROBERT, P., IDEE, J., & PORT, M. (2006). Recent advances in iron oxide nanocrystal technology for medical imaging☆. Advanced Drug Delivery Reviews, 58(14), 1471-1504. doi:10.1016/j.addr.2006.09.013

Gonzales, M., Mitsumori, L. M., Kushleika, J. V., Rosenfeld, M. E., & Krishnan, K. M. (2010). Cytotoxicity of iron oxide nanoparticles made from the thermal decomposition of organometallics and aqueous phase transfer with Pluronic F127. Contrast Media & Molecular Imaging, 5(5), 286-293. doi:10.1002/cmmi.391

Laurent, S., Forge, D., Port, M., Roch, A., Robic, C., Vander Elst, L., & Muller, R. N. (2008). Magnetic Iron Oxide Nanoparticles: Synthesis, Stabilization, Vectorization, Physicochemical Characterizations, and Biological Applications. Chemical Reviews, 108(6), 2064-2110. doi:10.1021/cr068445e

Kiss, L. B., Söderlund, J., Niklasson, G. A., & Granqvist, C. G. (1999). New approach to the origin of lognormal size distributions of nanoparticles. Nanotechnology, 10(1), 25-28. doi:10.1088/0957-4484/10/1/006

De Palma, R., Peeters, S., Van Bael, M. J., Van den Rul, H., Bonroy, K., Laureyn, W., … Maes, G. (2007). Silane Ligand Exchange to Make Hydrophobic Superparamagnetic Nanoparticles Water-Dispersible. Chemistry of Materials, 19(7), 1821-1831. doi:10.1021/cm0628000

Roonasi, P., & Holmgren, A. (2009). A Fourier transform infrared (FTIR) and thermogravimetric analysis (TGA) study of oleate adsorbed on magnetite nano-particle surface. Applied Surface Science, 255(11), 5891-5895. doi:10.1016/j.apsusc.2009.01.031

Yan, K., Li, H., Wang, X., Yi, C., Zhang, Q., Xu, Z., … Whittaker, A. K. (2014). Self-assembled magnetic luminescent hybrid micelles containing rare earth Eu for dual-modality MR and optical imaging. J. Mater. Chem. B, 2(5), 546-555. doi:10.1039/c3tb21381a

Garland, E. R., Rosen, E. P., Clarke, L. I., & Baer, T. (2008). Structure of submonolayer oleic acid coverages on inorganic aerosol particles: evidence of island formation. Physical Chemistry Chemical Physics, 10(21), 3156. doi:10.1039/b718013f

Smolensky, E. D., Park, H.-Y. E., Zhou, Y., Rolla, G. A., Marjańska, M., Botta, M., & Pierre, V. C. (2013). Scaling laws at the nanosize: the effect of particle size and shape on the magnetism and relaxivity of iron oxide nanoparticle contrast agents. Journal of Materials Chemistry B, 1(22), 2818. doi:10.1039/c3tb00369h

Kodama, R. . (1999). Magnetic nanoparticles. Journal of Magnetism and Magnetic Materials, 200(1-3), 359-372. doi:10.1016/s0304-8853(99)00347-9

Bean, C. P., & Livingston, J. D. (1959). Superparamagnetism. Journal of Applied Physics, 30(4), S120-S129. doi:10.1063/1.2185850

Li, Q., Kartikowati, C. W., Horie, S., Ogi, T., Iwaki, T., & Okuyama, K. (2017). Correlation between particle size/domain structure and magnetic properties of highly crystalline Fe3O4 nanoparticles. Scientific Reports, 7(1). doi:10.1038/s41598-017-09897-5

Roca, A. G., Morales, M. P., O’Grady, K., & Serna, C. J. (2006). Structural and magnetic properties of uniform magnetite nanoparticles prepared by high temperature decomposition of organic precursors. Nanotechnology, 17(11), 2783-2788. doi:10.1088/0957-4484/17/11/010

Coey, J. M. D. (1971). Noncollinear Spin Arrangement in Ultrafine Ferrimagnetic Crystallites. Physical Review Letters, 27(17), 1140-1142. doi:10.1103/physrevlett.27.1140

Linderoth, S., Hendriksen, P. V., Bo/dker, F., Wells, S., Davies, K., Charles, S. W., & Mo/rup, S. (1994). On spin‐canting in maghemite particles. Journal of Applied Physics, 75(10), 6583-6585. doi:10.1063/1.356902

Daou, T. J., Grenèche, J. M., Pourroy, G., Buathong, S., Derory, A., Ulhaq-Bouillet, C., … Begin-Colin, S. (2008). Coupling Agent Effect on Magnetic Properties of Functionalized Magnetite-Based Nanoparticles. Chemistry of Materials, 20(18), 5869-5875. doi:10.1021/cm801405n

Serna, C. J., Bødker, F., Mørup, S., Morales, M. P., Sandiumenge, F., & Veintemillas-Verdaguer, S. (2001). Spin frustration in maghemite nanoparticles. Solid State Communications, 118(9), 437-440. doi:10.1016/s0038-1098(01)00150-8

Laurent, S., Dutz, S., Häfeli, U. O., & Mahmoudi, M. (2011). Magnetic fluid hyperthermia: Focus on superparamagnetic iron oxide nanoparticles. Advances in Colloid and Interface Science, 166(1-2), 8-23. doi:10.1016/j.cis.2011.04.003

N. T. Thanh , Magnetic Nanoparticles From Fabrication to Clinical Applications , CRC Press , Boca Raton , 2012

Hergt, R., & Dutz, S. (2007). Magnetic particle hyperthermia—biophysical limitations of a visionary tumour therapy. Journal of Magnetism and Magnetic Materials, 311(1), 187-192. doi:10.1016/j.jmmm.2006.10.1156

Dong-Hyun Kim, Thai, Y. T., Nikles, D. E., & Brazel, C. S. (2009). Heating of Aqueous Dispersions Containing ${\hbox{MnFe}}_{2}{\hbox{O}}_{4}$ Nanoparticles by Radio-Frequency Magnetic Field Induction. IEEE Transactions on Magnetics, 45(1), 64-70. doi:10.1109/tmag.2008.2005329

Rosensweig, R. E. (2002). Heating magnetic fluid with alternating magnetic field. Journal of Magnetism and Magnetic Materials, 252, 370-374. doi:10.1016/s0304-8853(02)00706-0

D. Ortega and Q. A.Pankhurst , in Nanoscience: Volume 1: Nanostructures through Chemistry , ed. P. O'Brien , The Royal Society of Chemistry , Cambridge , 2013 , vol. 1 , pp. 60–88

Wildeboer, R. R., Southern, P., & Pankhurst, Q. A. (2014). On the reliable measurement of specific absorption rates and intrinsic loss parameters in magnetic hyperthermia materials. Journal of Physics D: Applied Physics, 47(49), 495003. doi:10.1088/0022-3727/47/49/495003

Guibert, C., Dupuis, V., Peyre, V., & Fresnais, J. (2015). Hyperthermia of Magnetic Nanoparticles: Experimental Study of the Role of Aggregation. The Journal of Physical Chemistry C, 119(50), 28148-28154. doi:10.1021/acs.jpcc.5b07796

Henoumont, C., Laurent, S., & Vander Elst, L. (2009). How to perform accurate and reliable measurements of longitudinal and transverse relaxation times of MRI contrast media in aqueous solutions. Contrast Media & Molecular Imaging, 4(6), 312-321. doi:10.1002/cmmi.294

Biju, S., Gallo, J., Bañobre‐López, M., Manshian, B. B., Soenen, S. J., Himmelreich, U., … Parac‐Vogt, T. N. (2018). A Magnetic Chameleon: Biocompatible Lanthanide Fluoride Nanoparticles with Magnetic Field Dependent Tunable Contrast Properties as a Versatile Contrast Agent for Low to Ultrahigh Field MRI and Optical Imaging in Biological Window. Chemistry – A European Journal, 24(29), 7388-7397. doi:10.1002/chem.201800283

Rohrer, M., Bauer, H., Mintorovitch, J., Requardt, M., & Weinmann, H.-J. (2005). Comparison of Magnetic Properties of MRI Contrast Media Solutions at Different Magnetic Field Strengths. Investigative Radiology, 40(11), 715-724. doi:10.1097/01.rli.0000184756.66360.d3

Guldris, N., Argibay, B., Kolen’ko, Y. V., Carbó-Argibay, E., Sobrino, T., Campos, F., … Rivas, J. (2016). Influence of the separation procedure on the properties of magnetic nanoparticles: Gaining in vitro stability and T1–T2 magnetic resonance imaging performance. Journal of Colloid and Interface Science, 472, 229-236. doi:10.1016/j.jcis.2016.03.040

Hu, F., & Zhao, Y. S. (2012). Inorganic nanoparticle-based T1 and T1/T2 magnetic resonance contrast probes. Nanoscale, 4(20), 6235. doi:10.1039/c2nr31865b

Daldrup-Link, H. E. (2017). Ten Things You Might Not Know about Iron Oxide Nanoparticles. Radiology, 284(3), 616-629. doi:10.1148/radiol.2017162759

Hu, F., Jia, Q., Li, Y., & Gao, M. (2011). Facile synthesis of ultrasmall PEGylated iron oxide nanoparticles for dual-contrastT1- andT2-weighted magnetic resonance imaging. Nanotechnology, 22(24), 245604. doi:10.1088/0957-4484/22/24/245604

Tegafaw, T., Xu, W., Ahmad, M. W., Baeck, J. S., Chang, Y., Bae, J. E., … Lee, G. H. (2015). Dual-modeT1andT2magnetic resonance imaging contrast agent based on ultrasmall mixed gadolinium-dysprosium oxide nanoparticles: synthesis, characterization, andin vivoapplication. Nanotechnology, 26(36), 365102. doi:10.1088/0957-4484/26/36/365102

Im, G. H., Kim, S. M., Lee, D.-G., Lee, W. J., Lee, J. H., & Lee, I. S. (2013). Fe3O4/MnO hybrid nanocrystals as a dual contrast agent for both T1- and T2-weighted liver MRI. Biomaterials, 34(8), 2069-2076. doi:10.1016/j.biomaterials.2012.11.054

[-]

recommendations

 

Este ítem aparece en la(s) siguiente(s) colección(ones)

Mostrar el registro completo del ítem