Antibacterial Immunonegative Coating with Biocompatible Materials on a Nanostructured Titanium Plate for Orthopedic Bone Fracture Surgery.

IF 9.6 Q1 ENGINEERING, BIOMEDICAL Biomaterials research Pub Date : 2024-09-11 eCollection Date: 2024-01-01 DOI:10.34133/bmr.0070
Jeong-Won Lee, Jung-Ah Cho, Yoo Jin Roh, Min Ae Han, Je-Un Jeong, Sivakumar Allur Subramanian, Eunho Kang, Jiwoo Yeom, Chang-Hun Lee, Sung Jae Kim
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Abstract

Periprosthetic infections resulting from bacterial biofilm formation following surgical bone fracture fixation present important clinical challenges. Conventional orthopedic implant materials, such as titanium, are prone to biofilm formation. This study introduces a novel surface for orthopedic titanium plates, optimized for clinical application in human bone fractures. Leveraging nanostructure-based surface coating technology, the plate achieves an antibacterial/immunonegative surface using biocompatible materials, including poloxamer 407, epigallocatechin gallate, and octanoic acid. These materials demonstrate high biocompatibility and thermal stability after autoclaving. The developed plate, named antibacterial immunonegative surface, releases antibacterial agents and prevents adhesion between human tissue and metal surfaces. Antibacterial immunonegative surface plates exhibit low cell toxicity, robust antibacterial effects against pathogens such as Staphylococcus aureus and Pseudomonas aeruginosa, high resistance to biofilm formation on the implant surface and surrounding tissues, and minimal immune reaction in a rabbit femoral fracture model. This innovation holds promise for addressing periprosthetic infections and improving the performance of orthopedic implants.

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用于骨科骨折手术的纳米结构钛板上的抗菌免疫涂层与生物相容性材料
手术骨折固定后细菌生物膜形成导致的假体周围感染是一项重要的临床挑战。钛等传统骨科植入材料容易形成生物膜。本研究介绍了一种新型骨科钛板表面,并针对人体骨折的临床应用进行了优化。利用基于纳米结构的表面涂层技术,该钢板使用生物相容性材料(包括聚氧乙烯-407、表没食子儿茶素没食子酸酯和辛酸)实现了抗菌/免疫阴性表面。这些材料具有很高的生物相容性和高压灭菌后的热稳定性。开发出的板材被命名为抗菌免疫阴性表面,可释放抗菌剂,防止人体组织与金属表面粘连。抗菌免疫阴性表面板的细胞毒性低,对金黄色葡萄球菌和铜绿假单胞菌等病原体有很强的抗菌效果,对植入物表面和周围组织生物膜的形成有很强的抵抗力,在兔股骨骨折模型中的免疫反应最小。这项创新有望解决假体周围感染问题,并提高骨科假体的性能。
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