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Defect-Rich Glassy IrTe 2 with Dual Enzyme-Mimic Activities for Sono-Photosynergistic-Enhanced Oncotherapy.

Ding WenKai LiRuiping DengJing FengHong-Jie Zhang
Published in: Journal of the American Chemical Society (2023)
The complexity, diversity, and heterogeneity of malignant tumors pose a formidable challenge for antitumor therapy. To achieve the goal of significantly enhancing the antitumor effect, nanomedicine-based synergistic therapy is one of the important strategies. Herein, we innovatively report a defect-rich glassy IrTe 2 (G-IrTe 2 ) with weak Ir-Te bond strength for synergistic sonodynamic therapy (SDT), chemodynamic therapy (CDT), and mild photothermal therapy (PTT). G-IrTe 2 sonosensitizer under ultrasound (US) stimuli exhibits excellent reactive oxygen species (ROS) production performance. Besides, catalase (CAT)-like activity of G-IrTe 2 can provide abundant oxygen to enhance the SDT effect. Then, the theoretical calculation verifies that US stimuli can easily make the irregular Ir-Te bond to be broken in amorphous IrTe 2 and free electrons will be released to combine with the oxygen and further form singlet oxygen ( 1 O 2 ). Meanwhile, G-IrTe 2 with peroxidase (POD)-like activity can also catalyze endogenous H 2 O 2 to produce more ROS for chemodynamic therapy (CDT), which is conducive to better tumor ablation. Furthermore, the ROS produced by sono-/chemodynamic processes can cause mitochondrial dysfunction and further give rise to heat shock protein (HSP) downregulated expression, maximizing the efficiency of mild PTT. Therefore, such glassy IrTe 2 with rich defect could be significantly involved in synergistic oncotherapy and then effectively achieve outstanding antitumor efficacy. This study provides a new research idea for expanding the application of inorganic glassy nanomaterials in promoting the therapeutic effect of tumors.
Keyphrases
  • reactive oxygen species
  • heat shock protein
  • cell death
  • magnetic resonance imaging
  • stem cells
  • single cell
  • oxidative stress
  • bone marrow
  • drug delivery
  • ionic liquid
  • heat stress