| Literature DB >> 33107221 |
Tao Jia1, Zhao Wang1, Qianqian Sun1, Shuming Dong1, Jiating Xu1, Fangmei Zhang1, Lili Feng1, Fei He1, Dan Yang1, Piaoping Yang1, Jun Lin1,2.
Abstract
Multimodal synergistic therapy based on photodynamic therapy (PDT), photothermal therapy (PTT), and chemodynamic therapy (CDT) has attracted increasing attention in cancer therapy. However, the scant therapeutic efficiency is always a barrier for further application. Herein, a smart tumor microenvironment (TME) responsive nanocatalysts are developed by adopting Fe-Mn layered double hydroxides (FeMn-LDH) as an effective photothermal nanocarrier to load mesoporous silica and chlorin e6 (Ce6)-covalently coated upconversion nanoparticles (UCSP) for multimodal imaging for directed therapy. Under acidic TME, FeMn-LDH degrades into Fe3+ and Mn2+ ions to initiate a Fenton-like reaction inducing CDT and enhancing magnetic resonance imaging. Additionally, Fe3+ can decompose H2 O2 to oxygen (O2 ), enhancing PDT guided by UCSP. As a representative noninvasive imaging probe, the upconversion luminescence will recover after decomposition of FeMn-LDH, and provide high-resolution upconversion luminescent imaging guidance for pinpointed PDT. Moreover, the photothermal properties of FeMn-LDH can further enhance CDT effects. The synergistic therapy and multifunctional imaging can realize the integration of diagnosis and treatment.Entities:
Keywords: Ce6; Fe-Mn layered double hydroxides; Fenton-like reaction; phototherapy; upconversion nanoparticles
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Year: 2020 PMID: 33107221 DOI: 10.1002/smll.202001343
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281