Ångstrom-scale silver particle-infused hydrogels eliminate orthopedic implant infections and support fracture healing.

Biomaterials Translational Pub Date : 2025-03-25 eCollection Date: 2025-01-01 DOI:10.12336/biomatertransl.2025.01.007
Wei Du, Jiang-Shan Gong, Xia Chen, Yang Wu, Yu Yang, Sheng Zhu, Yu Zhang, Bei Chen, Yi-Wei Liu, Ze-Hui He, Zhe Guan, Yan Zhang, Zhen-Xing Wang, Hui Xie
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Abstract

Orthopedic implant-associated infections pose a significant clinical challenge, often requiring surgical intervention along with systemic antibiotic treatments. To address this issue, we developed a novel approach using Ångstrom-scale silver particles (AgÅPs) with broad-spectrum antibacterial properties. Specifically, we formulated a polyethylene glycol hydrogel infused with AgÅPs (Gel-AgÅPs) designed for treating fracture fixation infections. This novel hydrogel formulation is injectable, ensuring precise adherence to both the exposed tissue and fracture surfaces, thereby allowing the direct targeted action of AgÅPs at the infection site. The Gel-AgÅPs significantly reduced the infection caused by Escherichia coli (a model pathogen of orthopedic implant infection) in a murine femoral fracture model. Moreover, the Gel-AgÅPs-treated infected fractures healed completely within 6 weeks, exhibiting bone formation and mechanical strength comparable to those of uninfected fractures. Further analysis revealed a significant downregulation of local inflammatory response as evidenced by a lower expression of inflammatory markers in Gel-AgÅPs-treated fractures compared to untreated infected controls. Furthermore, Gel-AgÅPs exhibited a unique ability to inhibit osteoclast differentiation, a critical factor in infection-induced bone degradation, without impacting osteoblast activity. In conclusion, Gel-AgÅPs exerted a dual therapeutic effect by eradicating bacterial infection and mitigating inflammation-induced osteoclast activity, thereby expediting infected fracture healing. This innovative approach is a promising therapeutic alternative to conventional antibiotic treatments, potentially transforming the treatment landscape for orthopedic implant-associated infections.

Ångstrom-scale银颗粒注入水凝胶消除骨科植入物感染,支持骨折愈合。
骨科植入物相关感染是一个重大的临床挑战,通常需要手术干预和全身抗生素治疗。为了解决这个问题,我们开发了一种使用具有广谱抗菌特性的Ångstrom-scale银粒子(AgÅPs)的新方法。具体来说,我们配制了一种注入AgÅPs (Gel-AgÅPs)的聚乙二醇水凝胶,用于治疗骨折固定感染。这种新型的水凝胶配方是可注射的,确保了对暴露组织和骨折表面的精确粘附,从而允许AgÅPs在感染部位的直接靶向作用。Gel-AgÅPs可显著降低小鼠股骨骨折模型中大肠杆菌(骨科植入物感染的模型病原体)的感染。此外,Gel-AgÅPs-treated感染骨折在6周内完全愈合,其骨形成和机械强度与未感染骨折相当。进一步的分析显示,与未治疗的感染对照组相比,Gel-AgÅPs-treated骨折中炎症标志物的表达较低,证明了局部炎症反应的显著下调。此外,Gel-AgÅPs表现出一种独特的抑制破骨细胞分化的能力,而不影响成骨细胞的活性,破骨细胞分化是感染诱导骨降解的关键因素。总之,Gel-AgÅPs具有根除细菌感染和减轻炎症诱导的破骨细胞活性的双重治疗作用,从而加速感染骨折愈合。这种创新的方法是传统抗生素治疗的一种有前途的治疗选择,有可能改变骨科植入物相关感染的治疗前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.70
自引率
0.00%
发文量
9
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