Rapid Biofilm Elimination on Bone Implants Using Near-Infrared-Activated Inorganic Semiconductor Heterostructures.

Hong, Li; Liu, Xiangmei; Tan, Lei; Cui, Zhenduo; Yang, Xianjin; Liang, Yanqin; Li, Zhaoyang; Zhu, Shengli et al. · Adv Healthc Mater · 2019

basic_science · Level V

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Abstract

Bacterial infections often cause orthopedic surgery failures. It is hard for the immune system and antibiotics to clear bacteria adhered to implants after they form a mature biofilm, and a secondary surgery is required to remove the infected implants. To avoid this, a hybrid coating of Bi<sub>2</sub> S<sub>3</sub> @Ag<sub>3</sub> PO<sub>4</sub> /Ti is prepared to eliminate biofilm using near-infrared (NIR) light. Bi<sub>2</sub> S<sub>3</sub> nanorod (NR) arrays are prepared on titanium (Ti) implants through hydrothermal methods, and Ag<sub>3</sub> PO<sub>4</sub> nanoparticles (NPs) are loaded on Bi<sub>2</sub> S<sub>3</sub> NR arrays using a stepwise electrostatic adsorption strategy. The introduction of Ag<sub>3</sub> PO<sub>4</sub> NPs enhances the photocatalysis performances of Bi<sub>2</sub> S<sub>3</sub> , and the hybrid coating also exhibits good photothermal effects. After 808 nm light irradiation for 15 min, it shows superior bactericidal efficiency of 99.45% against Staphylococcus aureus, 99.74% against Escherichia coli in vitro, and 94.54% against S. aureus biofilm in vivo. Bi<sub>2</sub> S<sub>3</sub> @Ag<sub>3</sub> PO<sub>4</sub> /Ti also shows good cell viability compared to pure Ti. This NIR-activated-inorganic hybrid semiconductor heterojunction coating is biocompatible and could be employed to eliminate biofilm effectively, which makes it a very promising strategy for the surface modification of bone implant materials.

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