Small‐Bandgap Transducers Induced Carrier Separation for In Situ Dual‐Amplified Tumor Oxidative Stress

Author:

Hu Guangyao12,Wang Jiarui12,Chen Lulu3,Zheng Haoqin12,Lan Yuanpei4,Wang Kaiyang5,Liu Xijian5,You Hongpeng12,Luo Yu5ORCID,Dong Lile12ORCID

Affiliation:

1. Key Laboratory of Rare Earths Chinese Academy of Sciences Ganjiang Innovation Academy Chinese Academy of Sciences Ganzhou 341000 China

2. School of Rare Earths University of Science and Technology of China Hefei 230026 China

3. School of Metallurgical Engineering Jiangxi University of Science and Technology Ganzhou 341000 China

4. Department of Metallurgical Engineering College of Materials and Metallurgy Guizhou University Guiyang 550025 China

5. Shanghai Engineering Research Center of Pharmaceutical Intelligent Equipment Shanghai Frontiers Science Research Center for Druggability of Cardiovascular Non‐coding RNA, Institute for Frontier Medical Technology School of Chemistry and Chemical Engineering Shanghai University of Engineering Science Shanghai 201620 China

Abstract

AbstractThe inherent and unique charge‐carrier release characteristics of piezoelectric sonosensitizers with desired bandgap can be leveraged to initiate reactive oxygen species (ROS) reactions that have considerable potential for sonodynamic therapy (SDT). In this study, a bimetallic Bi4NbO8Br‐polyvinylpyrrolidone (BNOBP) with a small bandgap (2.45 eV) is synthesized as a potential piezoelectric sonosensitizer. The robust interactions within and between the Bi─O and Nb─O layers narrow the bandgap, facilitating carrier transfer. Concurrently, compared with that of TiO2 and BiOBr, BNOBP exhibits a rapid acoustoelectric response and desirable electron–hole separation efficiency, enabling the generation of ·O2 under ultrasound (US) irradiation. Notably, BNOBP alleviates the overexpression of glutathione (GSH) in tumors and prevents the consumption of the generated ROS by GSH. Combining the previous small bandgap endow the high ROS generation efficiency, this study provides a paradigm for in situ regulation of oxidative stress levels in tumor tissue microenvironment based on bimetallic piezoelectric sonosensitizers.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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