| Literature DB >> 30604607 |
Fan Yang1, Artiom Skripka1, Maryam Sadat Tabatabaei2, Sung Hwa Hong3, Fuqiang Ren1, Antonio Benayas1,4, Jung Kwon Oh3, Sylvain Martel2, Xinyu Liu5, Fiorenzo Vetrone1, Dongling Ma1.
Abstract
Developing multifunctional therapeutic and diagnostic (theranostic) nanoplatforms is critical for addressing challenging issues associated with cancers. Here, self-assembled supernanoparticles consisting of superparamagnetic Fe3O4 nanoparticles and photoluminescent PbS/CdS quantum dots whose emission lies within the second biological window (II-BW) are developed. The proposed self-assembled Fe3O4 and PbS/CdS (II-BW) supernanoparticles [SASNs (II-BW)] exhibit outstanding photoluminescence detectable through a tissue as thick as 14 mm, by overcoming severe light extinction and concomitant autofluorescence in II-BW, and significantly enhanced T2 relaxivity (282 mM-1 s-1, ca. 4 times higher than free Fe3O4 nanoparticles) due to largely enhanced magnetic field inhomogeneity. On the other hand, SASNs (II-BW) possess the dual capacity to act as both magnetothermal and photothermal agents, overcoming the main drawbacks of each type of heating separately. When SASNs (II-BW) are exposed to the dual-mode (magnetothermal and photothermal) heating, the thermal energy transfer efficiency is amplified 7-fold compared with magnetic heating alone. These results, in hand with the excellent photo- and colloidal stability, and negligible cytotoxicity, demonstrate the potential use of SASNs (II-BW) for deep-tissue bimodal (magnetic resonance and photoluminescence) in vivo imaging, while simultaneously providing the possibility of SASNs (II-BW)-mediated amplified dual-mode heating treatment for cancer therapy.Entities:
Keywords: bimodal imaging; dual-modal heating; multifunctional supernanoparticles; second biological window; self-assembly
Year: 2019 PMID: 30604607 DOI: 10.1021/acsnano.8b06563
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881