| Literature DB >> 27422776 |
Shunsong Tang1,2,3, Qijun Du2, Tianlong Liu2, Longfei Tan2, Meng Niu1, Long Gao1, Zhongbing Huang4, Changhui Fu2, Tengchuang Ma1, Xianwei Meng5, Haibo Shao6.
Abstract
Herein, we develop a novel integrated strategy for the preparation of theranostic chitosan microcapsules by encapsulating ion liquids (ILs) and Fe3O4 nanoparticles. The as-prepared chitosan/Fe3O4@IL microcapsules exhibit not only significant heating efficacy in vitro under microwave (MW) irradiation but also obvious enhancement of T2-weighted magnetic resonance (MR) imaging, besides the excellent biocompatibility in physiological environments. The chitosan/Fe3O4@IL microcapsules show ideal temperature rise and therapeutic efficiency when applied to microwave thermal therapy in vivo. Complete tumor elimination is realizing after MW irradiation at an ultralow power density (1.8 W/cm(2)), while neither the MW group nor the chitosan microcapsule group has significant influence on the tumor development. The applicability of the chitosan/Fe3O4@IL microcapsules as an efficient contrast agent for MR imaging is proved in vivo. Moreover, the result of in vivo systematic toxicity shows that chitosan/Fe3O4@IL microcapsules have no acute fatal toxicity. Our study presents an interesting type of multifunctional platform developed by chitosan microcapsule promising for imaging-guided MW thermotherapy.Entities:
Keywords: Chitosan; Ionic liquids; MR imaging; Microcapsules; Microwave; Thermotherapy
Year: 2016 PMID: 27422776 PMCID: PMC4947076 DOI: 10.1186/s11671-016-1536-0
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Chitosan synthesis and characterization. a A schematic illustration of microcapsules synthesis. b SEM images of chitosan, chitosan/Fe3O4, and chitosan/Fe3O4@IL microcapsules. c FT-IR spectra of chitosan, chitosan/Fe3O4, and chitosan/Fe3O4@ILmicrocapsules. d Heating curves of water, saline, and microcapsules under MW irradiation at a power density of 1.8 W/cm2 for 5 min
Fig. 2In vitro cytotoxicity. a Hemolyticrate of red blood cells incubated with chitosan/Fe3O4@IL microcapsules at various concentrations for 3 h, using PBS (−) and deionized water (+) as negative and positive controls, respectively. Inset: the photo images for direct observation of hemolysis for microcapsules. b Viabilities of HepG2 cells incubated with chitosan/Fe3O4@IL microcapsules with different concentrations for 24 h
Fig. 3In vivo MW therapy. a IR thermal imaging of tumor-bearing mice injected with none and chitosan/Fe3O4@IL microcapsules under MW irradiation (1.8 W/cm2, 5 min). b The temperature changes on tumor of mice under different treatment in a. c Tumor growth curves of different groups of tumor after various treatment. d Representative photos of mice bearing H22 tumor after different treatments indicated
Fig. 4Magnetic properties of chitosan/Fe3O4@ILmicrocapsules. a The T2 relaxation rates (r 2) of chitosan/Fe3O4@IL microcapsules at different concentrations. b T2-weighted MR images of chitosan/Fe3O4@IL. c T2-weight MR imaging of H22 tumor-bearing mice before (left) and after (right) intratumoral injection of chitosan/Fe3O4@IL microcapsules
Fig. 5In vivo systematic toxicity. a Body weight curves from healthy ICR mice injected subcutaneously in the axillary region with 2000 mg/kg, 200 mg/kg, and without treatment. b H&E stained images of major organs. Healthy ICR mice injected with microcapsules were sacrificed 16 days. No noticeable abnormality was observed in major organs including the liver, kidney, spleen, and lung