Monodisperse and Uniform Mesoporous Silicate Nanosensitizers Achieve Low-Dose X-Ray-Induced Deep-Penetrating Photodynamic Therapy
- PMID: 30848541
- DOI: 10.1002/adma.201808024
Monodisperse and Uniform Mesoporous Silicate Nanosensitizers Achieve Low-Dose X-Ray-Induced Deep-Penetrating Photodynamic Therapy
Erratum in
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Correction to "Monodisperse and Uniform Mesoporous Silicate Nanosensitizers Achieve Low-Dose X-Ray-Induced Deep-Penetrating Photodynamic Therapy".Adv Mater. 2025 Jul 25:e12615. doi: 10.1002/adma.202512615. Online ahead of print. Adv Mater. 2025. PMID: 40709829 No abstract available.
Abstract
X-ray-induced photodynamic therapy (X-PDT) combines both the advantages of radiotherapy (RT) and PDT, and has considerable potential applications in clinical deep-penetrating cancer therapy. However, it is still a major challenge to prepare monodisperse nanoscintillators with uniform size and high light yield. In this study, a general and rapid synthesis method is presented that can achieve large-scale preparation of monodisperse and uniform silicate nanoscintillators. By simply adjusting the metal dopants, silicate nanoscintillators with controllable size and X-ray-excited optical luminescence (450-900 nm) are synthesized by employing a general ion-incorporated silica-templating method. To make full use of external radiation, the silicate nanoscintillators are conjugated with photosensitizer rose bengal and arginylglycylaspartic acid (RGD) peptide, making them intrinsically dual-modal targeted imaging probes. Both in vitro and in vivo experiments demonstrate that the silicate nanosensitizers can accumulate effectively in tumors and achieve significant inhibitory effect on tumor progression under low-dose X-ray irradiation, while minimally affecting normal tissues. The insights gained in this study may provide an attractive route to synthesize nanosensitizers to overcome some of the limitations of RT and PDT in cancer treatment.
Keywords: X-PDT; deep penetration; low radiation dosage; radiotherapy; silicate nanoscintillators.
© 2019 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.
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Grants and funding
- 2018YFA0107301/National Key Research and Development Program of China
- 81771977/National Science Foundation of China
- 51502254/National Science Foundation of China
- 51872247/National Science Foundation of China
- 20720180054/Fundamental Research Funds for the Central Universities of China
- 3502Z20183017/Xiamen Science and Technology Plan Project
- 201810384083/XMU Undergraduate Innovation and Entrepreneurship Training Programs
- 2018J01080/Natural Science Foundation of Fujian Province
- Intramural Research Program
- National Institute of Biomedical Imaging and Bioengineering
- National Institutes of Health
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