Computed Tomography Imaging Guided Microenvironment‐Responsive Ir@WO3−x Dual‐Catalytic Nanoreactor for Selective Radiosensitization

Author:

Song Jiayu12,Feng Yue3,Yan Jiazhuo1,Wang Ying1,Yan Weixiao2,Yang Nan1,Wu Tusheng1,Liu Sijia1,Wang Yuan1,Zheng Nannan24,He Liangcan24ORCID,Zhang Yunyan1

Affiliation:

1. Department of Gynecological Radiotherapy Harbin Medical University Cancer Hospital Harbin 150001 China

2. School of Medicine and Health Key Laboratory of Microsystems and Microstructures Manufacturing Harbin Institute of Technology Harbin 150001 China

3. Department of Gynecological Oncology Zhejiang Cancer Hospital Zhengzhou Zhejiang 310022 China

4. Zhengzhou Research Institute Harbin Institute of Technology Zhengzhou Henan 450000 China

Abstract

AbstractRadiotherapy (RT) is often administered, either alone or in combination with other therapies, for most malignancies. However, the degree of tumor oxygenation, damage to adjacent healthy tissues, and inaccurate guidance remain issues that result in discontinuation or failure of RT. Here, a multifunctional therapeutic platform based on Ir@WO3−x is developed which simultaneously addresses these critical issues above for precision radiosensitization. Ir@WO3−x nanoreactors exhibit strong absorption of X‐ray, acting as radiosensitizers. Moreover, ultrasmall Ir enzyme‐mimic nanocrystals (NCs) are decorated onto the surface of the nanoreactor, where NCs have catalyst‐like activity and are sensitive to H2O2 in the tumor microenvironment (TME) under near infrared‐II (NIR‐II) light stimulation. They efficiently catalyze the conversion of H2O2 to O2, thereby ameliorating hypoxia, inhibiting the expression of HIF‐1α, and enhancing RT‐induced DNA damage in cancerous tissue, further improving the efficiency of RT. Additionally, in response to high H2O2 levels in TME, the Ir@WO3−x nanoreactor also exerts peroxidase‐like activity, boosting exogenous ROS, which increases oxidative damage and enhances ROS‐dependent death signaling. Furthermore, Ir@WO3−x can serve as a high‐quality computed tomography contrast agent due to its high X‐ray attenuation coefficient and generation of pronounced tumor‐tissue contrast. This report highlights the potential of advanced health materials to enhance precision therapeutic modalities.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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