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Artículo

Paramagnetic nanoparticles as potential MRI contrast agents: characterization, NMR relaxation, simulations and theory

Vuong, Quoc Lam; Van Doorslaer, Sabine; Bridot, Jean Luc; Argante, Corradina; Alejandro, GabrielaIcon ; Hermann, Raphaël; Disch, Sabrina; Mattea, Carlos; Stapf, Siegfried; Gossuin, Yves
Fecha de publicación: 12/2012
Editorial: Springer
Revista: Magnetic Resonance Materials In Physics Biology And Medicine
ISSN: 0968-5243
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Física Atómica, Molecular y Química; Otras Ciencias de la Salud

Resumen

Object Paramagnetic nanoparticles, mainly rare earth oxides and hydroxides, have been produced these last few years for use as MRI contrast agents. They could become an interesting alternative to iron oxide particles. However, their relaxation properties are not well understood. Materials and methods Magnetometry, 1 H and 2 H NMR relaxation results at different magnetic fields and electron paramagnetic resonance are used to investigate the relaxation induced by paramagnetic particles. When combined with computer simulations of transverse relaxation, they allow an accurate description of the relaxation induced by paramagnetic particles. Results For gadolinium hydroxide particles, both T1 and T2 relaxation are due to a chemical exchange of protons between the particle surface and bulk water, called inner sphere relaxation. The inner sphere is also responsible for T1 relaxation of dysprosium, holmium, terbium and erbium containing particles. However, for these latter compounds, T2 relaxation is caused by water diffusion in the field inhomogeneities created by the magnetic particle, the outer-sphere relaxation mechanism. The different relaxation behaviors are caused by different electron relaxation times (estimated by electron paramagnetic resonance). Conclusion These findings may allow tailoring paramagnetic particles: ultrasmall gadolinium oxide and hydroxide particles for T1 contrast agents, with shapes ensuring the highest surface-to-volume ratio. All the other compounds present interesting T2 relaxation performance at high fields. These results are in agreement with computer simulations and theoretical predictions of the outer-sphere and static dephasing regime theories. The T2 efficiency would be optimum for spherical particles of 40–50 nm radius.
Palabras clave: Nanoparticles , Paramagnetic , Contrast Agents , Mri , Relaxation , Simulation , Relaxation Theory
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info:eu-repo/semantics/restrictedAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Unported (CC BY-NC-SA 2.5)
Identificadores
URI: http://hdl.handle.net/11336/11036
URL: http://link.springer.com/article/10.1007%2Fs10334-012-0326-7
DOI: http://dx.doi.org/ 10.1007/s10334-012-0326-7
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Articulos(CCT - PATAGONIA NORTE)
Articulos de CTRO.CIENTIFICO TECNOL.CONICET - PATAGONIA NORTE
Citación
Vuong, Quoc Lam; Van Doorslaer, Sabine; Bridot, Jean Luc; Argante, Corradina; Alejandro, Gabriela; et al.; Paramagnetic nanoparticles as potential MRI contrast agents: characterization, NMR relaxation, simulations and theory; Springer; Magnetic Resonance Materials In Physics Biology And Medicine; 25; 6; 12-2012; 467-478
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