Department of Mechanical Engineering, Stevens Institute of Technology, Castle Point on Hudson, Hoboken, NJ, 07030, United States.
Department of Civil and Environmental Engineering, Stevens Institute of Technology, Hoboken, NJ, 07030, United States; Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139, United States; Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139, United States.
J Mech Behav Biomed Mater. 2024 Sep;157:106661. doi: 10.1016/j.jmbbm.2024.106661. Epub 2024 Jul 14.
Addressing infected bone defects remains a significant challenge in orthopedics, requiring effective infection control and bone defect repair. A promising therapeutic approach involves the development of dual-functional engineered biomaterials with drug delivery systems that combine antibacterial properties with osteogenesis promotion. The Hydroxyapatite composite scaffolds offer a one-stage treatment, eliminating the need for multiple surgeries and thereby streamlining the process and reducing treatment time. This review delves into the impaired bone repair mechanisms within pathogen-infected and inflamed microenvironments, providing a theoretical foundation for treating infectious bone defects. Additionally, it explores composite scaffolds made of antibacterial and osteogenic materials, along with advanced drug delivery systems that possess both antibacterial and bone-regenerative properties. By offering a comprehensive understanding of the microenvironment of infectious bone defects and innovative design strategies for dual-function scaffolds, this review presents significant advancements in treatment methods for infectious bone defects. Continued research and clinical validation are essential to refine these innovations, ensuring biocompatibility and safety, achieving controlled release and stability, and developing scalable manufacturing processes for widespread clinical application.
解决感染性骨缺损仍然是骨科领域的重大挑战,需要有效控制感染和修复骨缺损。一种有前途的治疗方法是开发具有药物输送系统的双重功能工程生物材料,将抗菌性能与成骨促进作用相结合。羟基磷灰石复合支架提供了一种一站式治疗方法,消除了多次手术的需要,从而简化了治疗过程并缩短了治疗时间。本综述深入探讨了病原体感染和炎症微环境中受损的骨修复机制,为治疗感染性骨缺损提供了理论基础。此外,还探讨了由抗菌和促成骨材料组成的复合支架,以及具有抗菌和骨再生特性的先进药物输送系统。通过全面了解感染性骨缺损的微环境和双重功能支架的创新设计策略,本综述为感染性骨缺损的治疗方法提供了重要进展。持续的研究和临床验证对于完善这些创新至关重要,以确保生物相容性和安全性、实现控制释放和稳定性,并开发可广泛应用于临床的规模化制造工艺。