4.6 Article

Controllable synthesis of exceptionally small-sized superparamagnetic magnetite nanoparticles for ultrasensitive MR imaging and angiography

期刊

JOURNAL OF MATERIALS CHEMISTRY B
卷 9, 期 4, 页码 958-968

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0tb02337j

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资金

  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. National Natural Science Foundation of China [21401008]
  4. Graduate Student Scientific Research Ability Promotion of BTBU

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The study synthesized monodispersed exceptionally small-sized superparamagnetic magnetite nanoparticles (ESM NPs) with tunable size through a simple method. The ESM NPs showed good biocompatibility, high longitudinal relaxivity, and superior contrast effects in MRI imaging.
The superparamagnetic magnetite nanoparticles have broad application prospects in the diagnosis and treatment of cancer. Herein, a series of monodispersed exceptionally small-sized superparamagnetic magnetite nanoparticles (ESM NPs) with tunable size were synthesized through thermal decomposition of an iron precursor by simply changing the reaction temperature and stabilizing agents. The underlying mechanisms of regulating the size and properties of ESM NPs were studied. The surface of hydrophobic ESM NPs was modified with a carboxyl-polyethylene glycol-phosphoric acid ligand, and the obtained water-soluble ESM NPs showed extremely high long-term stability under various aqueous environments and physiological conditions. The hemolysis and cytotoxicity evaluations showed that the ESM NPs had good blood compatibility and no obvious cytotoxicity. The 2.3 nm ESM NPs exhibited an extremely high longitudinal relaxivity (r(1)) of 6.0 mM(-1) s(-1), which was higher than that of the clinical gadolinium complex contrast agent (r(1) = 3.8 mM(-1) s(-1)), and had an appropriate r(2)/r(1) ratio of 4.0. The in vivo results showed that the nanoparticles exhibited superior contrast effects in both T-1 and T-2 MR imaging, as well as high-resolution contrast in MR angiography. This study provides a general strategy for the controlled synthesis of ESM NPs and reveals the size and property regulation mechanisms, which undoubtedly provides the possibility of designing highly sensitive MR imaging probes based on small-sized magnetic nanoparticles for clinical diagnostic applications.

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