Effect of chain length and electrical charge on properties of ammonium-bearing bisphosphonate-coated superparamagnetic iron oxide nanoparticles: formulation and physicochemical studies

被引:0
作者
Ali Karimi
Benoit Denizot
François Hindré
Robert Filmon
Jean-Marc Greneche
Sophie Laurent
T. Jean Daou
Sylvie Begin-Colin
Jean-Jacques Le Jeune
机构
[1] Inserm U646,Service Commun d’Imagerie et d’Analyses Microscopiques
[2] Université d’Angers,Laboratoire de Physique de I’Etat Condensé UMR 6087
[3] Centre Hospitalier Annemasse-Bonneville,Department of General, Organic and Biochemical Chemistry
[4] Université d’Angers,Institut de Physique et Chimie des Matériaux de Strasbourg
[5] Université du Mans,Laboratoire de Matériaux à Porosité Contrôlée, UMR CNRS 7016
[6] NMR and Molecular Imaging Laboratory,undefined
[7] University of Mons-Hainaut,undefined
[8] UMR CNRS-ULP 7504,undefined
[9] Université de Haute Alsace,undefined
来源
Journal of Nanoparticle Research | 2010年 / 12卷
关键词
Iron oxides; Contrast agents; Superparamagnetic behaviour; Bisphosphonates; NMRD profiles; Mössbauer spectrometry; Colloids; Magnetic Resonance Imaging;
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中图分类号
学科分类号
摘要
Bisphosphonates BP molecules have shown to be efficient for coating superparamagnetic iron oxide particles. In order to clarify the respective roles of electrical charge and the length of the molecules, bisphosphonates with one or two ammonium moieties with an intermediate aliphatic group of 3, 5 or 7 carbons were synthesized and iron oxide nanoparticles coated. The evaluation on their iron core properties was made by transmission electron microscopy (TEM), nuclear magnetic relaxation dispersion (NMRD) profiles and Mössbauer spectra. The core size is close to 5 nm, with a global superparamagnetic behaviour modified by a paramagnetic Fe-based layer, probably due to surface crystal alteration. The hydrodynamic sizes increase slightly with aliphatic chain length (from 9.8 to 18.6 nm). The presence of one or two ammonium group(s) lowers the negative electrophoretic mobility up to bear zero values but reduces their colloidal stability. These BP-coated iron oxide nanoparticles are promising Magnetic Resonance Imaging (MRI) contrast agents.
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页码:1239 / 1248
页数:9
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