4.7 Article

Water-soluble superparamagnetic dysprosium-doped iron oxide flowerlike nanoclusters for high-resolution MR imaging

Journal

JOURNAL OF ALLOYS AND COMPOUNDS
Volume 847, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2020.156549

Keywords

Magnetic resonance imaging; Contrast agents; Iron oxide nanoclusters; Dysprosium doping; Relaxivity

Funding

  1. project of High-level Teachers in Beijing Municipal Universities in the Period of 13th Five-year Plan [CITTCD201804025]
  2. Beijing Municipal Education Commission [KM201910011009]
  3. Construction of Scientific and Technological Innovation and Service Capability-Basic Scientific Research Funding Project [PXM2018_014213_000033]
  4. National Natural Science Foundation of China [21401008]
  5. Graduate Student Scientific Research Ability Promotion of BTBU

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Magnetic nanomaterials have great application prospects in water treatment, disease diagnosis and therapy, surface adsorption and other fields. Herein, the water-soluble, biocompatible and superparamagnetic dysprosium-doped iron oxide flowerlike nanoclusters (DyIO NCs) were synthesized by thermal decomposition of iron oleate and dysprosium oleate in high-boiling solvent of phenyl ether with alpha,omega-dicarboxyl poly(ethylene glycol) as a capping agent. The size of the nanoclusters and the amount of Dy ions in the clusters can be controlled by simply adjusting the reaction parameters. The DyIO NCs exhibited excellent colloid stability under physiological conditions. The saturation magnetization and transverse relaxivity (r(2)) of DyIO NCs were significantly improved by the doping of Dy ions. The r(2) value of 21 nm Dy0.209Fe2.791O4 NCs was 485.6 mM(-1) s(-1), which is 9 times that of Dy-doped iron oxide nanoparticles (55.6 mM(-1)s(-1)), 4 times that of commercial Feridex (123.6 mM(-1) s(-1)) and 2 times that of iron oxide nanoclusters (253.9 mM(-1) s(-1)). In vivo imaging showed that DyIO NCs exhibited long blood circulation time and excellent enhancement for T-2-weighted magnetic resonance imaging. In addition, the DyIO NCs can be functionalized with tumor targeting ligand cyclic Arg-Gly-Asp peptide and fluorescein isothiocyanate isomer I. This study provides an effective strategy for the development of new sensitive nanoprobes and drug delivery systems, and other applications requiring strong magnetic responses. (C) 2020 Elsevier B.V. All rights reserved.

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