Peng Feng, Xie Juning, Liu Haiming, Zheng Yufeng, Qian Xin, Zhou Ruixiang, Zhong Hua, Zhang Yu, Li Mei
Medical Research Center, Department of Orthopedics, Guangdong Provincial People's Hospital, Guangdong Academy of Medical Sciences, Guangzhou, 510080, China.
School of Medicine, South China University of Technology, Guangzhou, 510006, China.
Bioact Mater. 2022 Sep 15;21:436-449. doi: 10.1016/j.bioactmat.2022.09.004. eCollection 2023 Mar.
The widespread use of orthopedic implants to support or replace bones is increasingly threatened by the risk of incurable bacterial infections, impenetrable microbial biofilms, and irreversible antibiotic resistance. In the past, the development of anti-infective biomaterials focused solely on direct antibacterial properties while ignoring the host's immune response. Inspired by the clearance of infection by the innate neutrophil response and participation in anti-infectious immunity of Zn ions, we report an innovative neutrophil extracellular traps (NETs) strategy, induced by biodegradable pure Zn, which achieved therapeutic efficacy toward biomaterial-related infections. Our and data showed that pure Zn was favorable for NETs formation by promoting the release of DNA fibers and granule proteins in a reactive oxygen species (ROS)-dependent manner, thereby retraining and degrading bacteria with an efficiency of up to 99.5%. Transcriptome analysis revealed that cytoskeletal rearrangement and toll-like receptor (TLR) signaling pathway were also involved in Zn-induced NETs formation. Furthermore, the results of a ()-infected rat model verified that pure Zn potentiated the bactericidal capability of neutrophils around implants, and promoted osseointegration in -infected rat femurs. This antibacterial immunity concept lays a foundation for the development of other antibacterial biomaterials and holds great promise for treating orthopedic infections.
用于支撑或替代骨骼的骨科植入物的广泛应用,正日益受到无法治愈的细菌感染、难以穿透的微生物生物膜以及不可逆转的抗生素耐药性风险的威胁。过去,抗感染生物材料的研发仅专注于直接抗菌性能,而忽视了宿主的免疫反应。受天然中性粒细胞反应清除感染以及锌离子参与抗感染免疫的启发,我们报告了一种由可生物降解的纯锌诱导的创新型中性粒细胞胞外陷阱(NETs)策略,该策略对生物材料相关感染具有治疗效果。我们的[具体实验]和[具体实验]数据表明,纯锌以依赖活性氧(ROS)的方式促进DNA纤维和颗粒蛋白的释放,有利于NETs的形成,从而捕获并降解细菌,效率高达99.5%。转录组分析显示,细胞骨架重排和Toll样受体(TLR)信号通路也参与了锌诱导的NETs形成。此外,[具体实验]感染大鼠模型的[具体实验]结果证实,纯锌增强了植入物周围中性粒细胞的杀菌能力,并促进了感染[具体细菌名称]的大鼠股骨的骨整合。这种抗菌免疫概念为其他抗菌生物材料的开发奠定了基础,在治疗骨科感染方面具有广阔前景。