Flower-like gold nanoparticles for enhanced photothermal anticancer therapy by the delivery of pooled siRNA to inhibit heat shock stress response
Autor: | Xu Chen, Shuang Zhao, Chunfang Wei, Jie Liu, Yingyu Zhao, Xiuying Qin, Xufeng Zhu, Meng Xu, Yanan Liu |
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Rok vydání: | 2019 |
Předmět: |
Biomedical Engineering
Metal Nanoparticles Mice Nude 02 engineering and technology 010402 general chemistry 01 natural sciences Heat shock stress Neoplasms Animals Humans General Materials Science RNA Small Interfering Adaptor Proteins Signal Transducing Mice Inbred BALB C Chemistry Flower like Gene Transfer Techniques RNA Signal transducing adaptor protein Genetic Therapy Hep G2 Cells General Chemistry General Medicine Photothermal therapy 021001 nanoscience & nanotechnology Xenograft Model Antitumor Assays 0104 chemical sciences HEK293 Cells Photochemotherapy Colloidal gold Biophysics Gold Apoptosis Regulatory Proteins 0210 nano-technology Heat-Shock Response |
Zdroj: | Journal of Materials Chemistry B. 7:586-597 |
ISSN: | 2050-7518 2050-750X |
DOI: | 10.1039/c8tb02418a |
Popis: | Due to the anti-apoptotic effect employed by cells to protect themselves, recent research shows that photothermal therapy (PTT) can lead to heat shock response, thus reducing the effect of treatment on cancer cells. Small interfering RNA (siRNA), as an effective carrier of RNA interference, can silence the expression of heat shock protein, HSPs or BAG3 genes by inhibiting the expression of specific genes, and thereby inhibiting heat shock response and making cancer cells more sensitive to PTT. In this study, flower-like gold nanoparticles were used as a core for a layer-by-layer strategy to produce a safe and biodegradable nanoparticle platform for gene silencing and photothermal therapy. The results showed that when the mass ratio of the GNFs and siRNA was 20 : 1, the loading efficiency was above 90%, which can effectively silence the expression of BAG3 siRNA. We demonstrated that the GNFs-siRNA still had a good photothermal effect after siRNA modification. In vitro, the GNFs-siRNA showed good biocompatibility and effectively tumor killing properties after laser irradiation. Furthermore, the GNFs-siRNA with laser treatment significantly decreased the expression of BAG3 and remarkably inhibited tumor growth in vivo. This nanosystem establishes an optimized platform for future gene delivery and photothermal therapy. |
Databáze: | OpenAIRE |
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