4.8 Article

Core-shell metal-organic frameworks with fluorescence switch to trigger an enhanced photodynamic therapy

期刊

THERANOSTICS
卷 9, 期 10, 页码 2791-2799

出版社

IVYSPRING INT PUBL
DOI: 10.7150/thno.34740

关键词

Metal-organic frameworks; Core-shell structure; Fluorescence switch; Photodynamic therapy

资金

  1. National Institute of Biomedical Imaging and Bioengineering (NIBIB), National Institutes of Health (NIH)
  2. intramural research program of Faculty of Health Science
  3. University of Macau [SRG2018-00130-FHS]

向作者/读者索取更多资源

The design of hybrid metal-organic framework (MOF) nanomaterials by integrating inorganic nanoparticle into MOF (NP@MOF) has demonstrated outstanding potential for obtaining enhanced, collective, and extended novel physiochemical properties. However, the reverse structure of MOF-integrated inorganic nanoparticle (MOF@NP) with multifunction has rarely been reported. Methods: We developed a facile in-situ growth method to integrate MOF nanoparticle into inorganic nanomaterial and designed a fluorescence switch to trigger enhanced photodynamic therapy. The influence of switch on the photodynamic activity was studied in vitro. The in vivo mice with tumor model was applied to evaluate the switch-triggered enhanced photodynamic therapy efficacy. Results: A core-satellites structure with fluorescence off and on function was obtained when growing MnO2 on the surface of fluorescent zeolitic imidazolate framework (ZIF-8) nanoparticles. Furthermore, A core-shell structure with photodynamic activity off and on function was achieved by growing MnO2 on the surface of porphyrinic ZrMOF nanoparticles (ZrMOF@MnO2). Both the fluorescence and photodynamic activities can be turned off by MnO2 and turned on by GSH. The GSH-responsive activation of photodynamic activity of ZrMOF@MnO2 significantly depleted the intracellular GSH via a MnO2 reduction reaction, thus triggering an enhanced photodynamic therapy efficacy. Finally, the GSH-reduced Mn2+ provided a platform for magnetic resonance imaging-guided tumor therapy. Conclusion: This work highlights the impact of inorganic nanomaterial on the MOF properties and provides insight to the rational design of multifunctional MOF-inorganic nanomaterial complexes.

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