High F-Content Perfluoropolyether-Based Nanoparticles for Targeted Detection of Breast Cancer by 19F Magnetic Resonance and Optical Imaging
Author(s) -
Cheng Zhang,
Shehzahdi S. Moonshi,
Wenqian Wang,
Hang T. Ta,
Yanxiao Han,
Felicity Y. Han,
Hui Peng,
Petr Král,
Barbara E. Rolfe,
J. Justin Gooding,
Katharina Gaus,
Andrew K. Whittaker
Publication year - 2018
Publication title -
acs nano
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.554
H-Index - 382
eISSN - 1936-086X
pISSN - 1936-0851
DOI - 10.1021/acsnano.8b03726
Subject(s) - aptamer , in vivo , materials science , nanoparticle , magnetic resonance imaging , fluorine 19 nmr , conjugated system , nanotechnology , fluorescence , in vitro , preclinical imaging , polymer , nuclear magnetic resonance , chemistry , nuclear magnetic resonance spectroscopy , organic chemistry , biochemistry , microbiology and biotechnology , medicine , physics , radiology , quantum mechanics , composite material , biology
Two important challenges in the field of 19 F magnetic resonance imaging (MRI) are the maintenance of high fluorine content without compromising imaging performance, and effective targeting of small particles to diseased tissue. To address these challenges, we have developed a series of perfluoropolyether (PFPE)-based hyperbranched (HBPFPE) nanoparticles with attached peptide aptamer as targeting ligands for specific in vivo detection of breast cancer with high 19 F MRI sensitivity. A detailed comparison of the HBPFPE nanoparticles (NPs) with the previously reported trifluoroethyl acrylate (TFEA)-based polymers demonstrates that the mobility of fluorinated segments of the HBPFPE nanoparticles is significantly enhanced ( 19 F T 2 > 80 ms vs 31 ms), resulting in superior MR imaging sensitivity. Selective targeting was confirmed by auto- and pair correlation analysis of fluorescence microscopy data, in vitro immunofluorescence, in vivo 19 F MRI, ex vivo fluorescence and 19 F NMR. The results highlight the high efficiency of aptamers for targeting and the excellent sensitivity of the PFPE moieties for 19 F MRI. Of relevance to in vivo applications, the PFPE-based polymers exhibit much faster clearance from the body than the previously introduced perfluorocarbon emulsions ( 1/2 ∼ 20 h vs up to months). Moreover, the aptamer-conjugated NPs show significantly higher tumor-penetration, demonstrating the potential of these imaging agents for therapeutic applications. This report of the synthesis of polymeric aptamer-conjugated PFPE-based 19 F MRI CAs with high fluorine content (∼10 wt %) demonstrates that these NPs are exciting candidates for detecting diseases with high imaging sensitivity.
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