Radiopaque fluorescence-transparent TaOx decorated upconversion nanophosphors for in vivo CT/MR/UCL trimodal imaging

Qingfeng Xiao, Wenbo Bu, Qingguo Ren, Shengjian Zhang, Huaiyong Xing, Feng Chen, Ming Li, Xiangpeng Zheng, Yanqing Hua, Liangping Zhou, Weijun Peng, Haiyun Qu, Zheng Wang, Kuaile Zhao, Jianlin Shi

Research output: Contribution to journalArticlepeer-review

112 Scopus citations

Abstract

To address the intractable issues such as the low performance or biocompatibility frequently encountered in previous CT, magnetic resonance (MR) and fluorescence trimodal imaging nanoprobes, a nanocomposite has been constructed by decorating gadolinium ions doped upconversion nanoparticle (Gd-doped UCNP) with radiopaque but fluorescence-transparent tantalum oxide (TaOx, x ≈ 1). The as-synthesized water-soluble nanoparticle showed a litchi-like shape with an average size of ∼30 nm and demonstrated extraordinarily high longitudinal and transverse relaxivity values (r1 = 11.45 mM-1s-1 and r2 = 147.3 mM-1s-1) compared with the reported Gd-doped UCNPs to date. Obvious CT contrast enhancement was obtained by the combined effect between the radiopaque TaOx shell and the Gd-doped UCNP inner core. Strong upconversion luminescence (UCL) signal could unobstructedly penetrate out in virtue of high transparency of the TaOx shell. No mutual interference among different modalities of the upconversion nanolitchi (UCNL) was found, which ensured that the individual merits of every imaging modality could be brought into full play, demonstrated by in vitro and in vivo imagings. Furthermore, UCNLs showed only a slight effect on macrophages and RBCs in vitro and tissue in vivo.

Original languageEnglish
Pages (from-to)7530-7539
Number of pages10
JournalBiomaterials
Volume33
Issue number30
DOIs
StatePublished - Oct 2012
Externally publishedYes

Keywords

  • CT
  • Magnetic resonance
  • Tantalum oxide
  • Trimodal imaging
  • Upconversion luminescence

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