Graphene Quantum Dots Nanoantibiotic‐Sensitized TiO2−x Heterojunctions for Sonodynamic‐Nanocatalytic Therapy of Multidrug‐Resistant Bacterial Infections

Author:

Qian Ying1,Wang Jingming2,Geng Xudong3,Jia Bingqing3,Wang Lei2,Li Yong‐Qiang3,Geng Bijiang4,Huang Weimin2ORCID

Affiliation:

1. Endocrinology Department 960 Hospital of People's Liberation Army Jinan Shandong 250031 P. R. China

2. Orthopedic Department 960 Hospital of People's Liberation Army Jinan Shandong 250031 P. R. China

3. Institute of Advanced Interdisciplinary Science, School of Physics Shandong University Jinan 250100 P. R. China

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

Abstract

AbstractThe exploration of sonodynamic therapy (SDT) as a possible replacement for antibiotics by creating reactive oxygen species (ROS) is suggested as a non‐drug‐resistant theranostic method. However, the low‐efficiency ROS generation and complex tumor microenvironment which can deplete ROS and promote tumor growth will cause the compromised antibacterial efficacy of SDT. Herein, through an oxygen vacancy engineering strategy, TiO2−x microspheres with an abundance of Ti3+ are synthesized using a straightforward reductant co‐assembly approach. The narrow bandgaps and Ti3+/Ti4+‐mediated multiple‐enzyme catalytic activities of the obtained TiO2−x microspheres make them suitable for use as sonosensitizers and nanozymes. When graphene quantum dot (GQD) nanoantibiotics are deposited on TiO2−x microspheres, the resulting GQD/TiO2−x shows an increased production of ROS, which can be ascribed to the accelerated separation of electron–hole pairs, as well as the peroxidase‐like catalytic activity mediated by Ti3+, and the depletion of glutathione mediated by Ti4+. Moreover, the catalytic activities of TiO2−x microspheres are amplified by the heterojunctions‐accelerated carrier transfer. In addition, GQDs can inhibit Topo I, displaying strong antibacterial activity and further enhancing the antibacterial activity. Collectively, the combination of GQD/TiO2−x‐mediated SDT/NCT with nanoantibiotics can result in a synergistic effect, allowing for multimodal antibacterial treatment that effectively promotes wound healing.

Publisher

Wiley

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