A NIR‐II Photoactivatable “ROS Bomb” with High‐Density Cu2O‐Supported MoS2 Nanoflowers for Anticancer Therapy

Author:

Huang Jia123,Deng Guiming4,Wang Shuya23,Zhao Tianjiao23,Chen Qiaohui23,Yang Yuqi15,Yang Yongqi23,Zhang Jinping15,Nan Yayun6,Liu Zhaoqian23,Cao Ke7,Huang Qiong15,Ai Kelong23ORCID

Affiliation:

1. Department of Pharmacy Xiangya Hospital Central South University Changsha 410008 China

2. Department of Pharmacology, Xiangya School of Pharmaceutical Sciences Central South University Changsha 410078 China

3. Hunan Provincial Key Laboratory of Cardiovascular Research Xiangya School of Pharmaceutical Sciences Central South University Changsha 410078 China

4. Department of infection and liver disease The First Hospital of Hunan University of Chinese Medicine Changsha 410007 China

5. National Clinical Research Center for Geriatric Disorders Xiangya Hospital Central South University Changsha 410008 China

6. Geriatric Medical Center People's Hospital of Ningxia Hui Autonomous Region Yinchuan Ningxia 750002 China

7. Department of Oncology The Third Xiangya Hospital of Central South University Changsha 410013 China

Abstract

AbstractThe fast conversion of hydrogen peroxide (H2O2) into reactive oxygen species (ROS) at tumor sites is a promising anticancer strategy by manipulating nanomedicines with near‐infrared light in the second region (NIR‐II). However, this strategy is greatly compromised by the powerful antioxidant capacity of tumors and the limited ROS generation rate of nanomedicines. This dilemma mainly stems from the lack of an effective synthesis method to support high‐density copper‐based nanocatalysts on the surface of photothermal nanomaterials. Herein, a multifunctional nanoplatform (MCPQZ) with high–density cuprous (Cu2O) supported molybdenum disulfide (MoS2) nanoflowers (MC NFs) is developed for the efficient killing of tumors via a potent ROS storm by an innovative method. Under NIR‐II light irradiation, the ROS intensity and maximum reaction velocity (Vmax) produced by MC NFs are 21.6 and 33.8 times that of the non–irradiation group in vitro, which is much higher than most current nanomedicines. Moreover, the strong ROS storm in cancer cells is efficiently formed by MCPQZ (increased by 27.8 times compared to the control), thanks to the fact that MCPQZ effectively pre–weakens the multiple antioxidant systems of cancer cells. This work provides a novel insight to solve the bottleneck of ROS‐based cancer therapy.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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