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Mitochondria-Targeted Degradable Nanocomposite Combined with Laser and Ultrasound for Synergistic Tumor Therapies
Shuang Zhu1, De-Qiang Wang1, Xue-Hua Sun2
1Institute of Rehabilitation Medicine, School of Rehabilitation Medicine, Binzhou Medical University, Yantai 264003, PR China.
Abstract:
Although the development of safe and efficient cancer therapeutic agents is essential, this process remains challenging. In this study, a mitochondria-targeted degradable nanoplatform (PDA-MnO₂-IR780) for synergistic photothermal, photodynamic, and sonodynamic tumor treatment was investigated. PDA-MnO₂-IR780 exhibits superior photothermal properties owing to the integration of polydopamine, MnO₂, and IR780. IR780, a photosensitizer and sonosensitizer, was used for photodynamic therapy and sonodynamic therapy. When PDA-MnO₂-IR780 was delivered to the tumor site, MnO₂ was decomposed by hydrogen peroxide, producing Mn2+ and oxygen. Meanwhile, alleviating tumor hypoxia promoted the production of reactive oxygen species during photodynamic therapy and sonodynamic therapy. Moreover, large amounts of reactive oxygen species could reduce the expression of heat shock proteins and increase the heat sensitivity of tumor cells, thereby improving the photothermal treatment effect. In turn, hyperthermia caused by photothermal therapy accelerated the production of reactive oxygen species in photodynamic therapy. IR780 selectively accumulation in mitochondria also promoted tumor apoptosis. In this system, the mutual promotion of photothermal therapy and photodynamic therapy/sonodynamic therapy had an enhanced therapeutic effect. Moreover, the responsive degradable characteristic of PDA-MnO₂-IR780 in the tumor microenvironment ensured excellent biological safety. These results reveal a great potential of PDA-MnO₂-IR780 for safe and highly-efficiency synergistic therapy for cancer.
Insights
This study introduces a novel nanoplatform (PDA-MnO₂-IR780) for combined photothermal, photodynamic, and sonodynamic cancer therapy. This synergistic approach enhances tumor treatment efficacy and safety through targeted drug delivery and responsive degradation.
Area of Science:
- Biomedical Engineering
- Materials Science
- Oncology
Background:
- Developing safe and effective cancer therapeutics is a critical challenge.
- Synergistic therapies offer improved treatment outcomes compared to single modalities.
Purpose of the Study:
- To investigate a mitochondria-targeted, degradable nanoplatform (PDA-MnO₂-IR780) for synergistic cancer treatment.
- To evaluate the combined photothermal, photodynamic, and sonodynamic therapy effects of the nanoplatform.
Main Methods:
- Synthesized PDA-MnO₂-IR780 nanoplatform integrating polydopamine, MnO₂, and IR780.
- Utilized IR780 as a photosensitizer and sonosensitizer for PDT and SDT.
- Investigated MnO₂ decomposition by H₂O₂ to release Mn²⁺ and O₂, alleviating tumor hypoxia.
- Assessed ROS generation, heat sensitivity, and mitochondrial targeting for enhanced apoptosis.
Main Results:
- PDA-MnO₂-IR780 demonstrated superior photothermal properties and synergistic therapeutic effects.
- The nanoplatform alleviated tumor hypoxia, enhancing ROS production for PDT and SDT.
- ROS reduced heat shock proteins, increasing tumor cell heat sensitivity for improved PTT.
- Mitochondrial targeting of IR780 promoted tumor apoptosis, with enhanced safety due to degradability.
Conclusions:
- The PDA-MnO₂-IR780 nanoplatform shows significant potential for safe and highly efficient synergistic cancer therapy.
- The interplay between PTT and PDT/SDT, along with responsive degradation, offers a promising strategy for cancer treatment.
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