Ultrathin and Biodegradable Bismuth Oxycarbonate Nanosheets with Massive Oxygen Vacancies for Highly Efficient Tumor Therapy

Author:

Shi Shuzhi12,Li Xin3,Zhang Yi2,Huang Haiyan4,Liu Jinliang1,Zhang Jing1,Wang Zhigang4,Niu Haitao3,Zhang Yong5,Mei Qingsong2ORCID

Affiliation:

1. School of Environmental and Chemical Engineering Shanghai University Shanghai 200444 China

2. Department of Medical Biochemistry and Molecular Biology School of Medicine Jinan University Guangzhou Guangdong 510632 China

3. School of Medicine Institute of Laboratory Animal Sciences Jinan University Guangzhou 510632 China

4. Department of Critical Care Medicine The First Affiliated Hospital Jinan University Guangzhou Guangdong 510632 China

5. Department of Biomedical Engineering City University of Hong Kong 83 Tat Chee Avenue Kowloon Hong Kong SAR China

Abstract

AbstractNanomaterials doped with high atom number elements can improve the efficacy of cancer radiotherapy, but their clinical application faces obstacles, such as being difficult to degrade in vivo, or still requiring relatively high radiation dose. In this work, a bismuth oxycarbonate‐based ultrathin nanosheet with the thickness of 2.8 nm for safe and efficient tumor radiotherapy under low dose of X‐ray irradiation is proposed. The high oxygen content (62.5% at%) and selective exposure of the facets of ultrathin 2D nanostrusctures facilitate the escape of large amounts of oxygen atoms on bismuth nanosheets from surface, forming massive oxygen vacancies and generating reactive oxygen species that explode under the action of X‐rays. Moreover, the exposure of almost all atoms to environmental factors and the nature of oxycarbonates makes the nanosheets easily degrade into biocompatible species. In vivo studies demonstrate that nanosheets could induce apoptosis in cancer cells after low dose of X‐ray irradiation without causing any damage to the liver or kidney. The tumor growth inhibition effect of radiotherapy increases from 49.88% to 90.76% with the help of bismuth oxycarbonate nanosheets. This work offers a promising future for nanosheet‐based clinical radiotherapies of malignant cancers.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

China Postdoctoral Science Foundation

Basic and Applied Basic Research Foundation of Guangdong Province

Guangzhou Municipal Science and Technology Project

Publisher

Wiley

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