Kumar Rahul, Sporn Kyle, Prabhakar Pranay, Paladugu Phani, Khanna Akshay, Ngo Alex, Gowda Chirag, Waisberg Ethan, Jagadeesan Ram, Zaman Nasif, Tavakkoli Alireza
Department of Biochemistry and Molecular Biology, University of Miami Miller School of Medicine, Miami, FL 33136, USA.
Department of Medicine, Norton College of Medicine, Upstate Medical University, Syracuse, NY 13210, USA.
J Funct Biomater. 2025 Jun 23;16(7):232. doi: 10.3390/jfb16070232.
Advancements in load-bearing tissue repair increasingly demand biomaterials that not only support structural integrity but also interact dynamically with the physiological environment. This review examines the latest progress in smart biomaterials designed for skeletal reconstruction, with emphasis on mechanoresponsive scaffolds, bioactive composites, and integrated microsensors for real-time monitoring. We explore material formulations that enhance osseointegration, resist micromotion-induced loosening, and modulate inflammatory responses at the bone-implant interface. Additionally, we assess novel fabrication methods-such as additive manufacturing and gradient-based material deposition-for tailoring stiffness, porosity, and degradation profiles to match host biomechanics. Special attention is given to sensor-augmented platforms capable of detecting mechanical strain, biofilm formation, and early-stage implant failure. Together, these technologies promise a new class of bioresponsive, diagnostic-capable constructs that extend beyond static support to become active agents in regenerative healing and post-operative monitoring. This multidisciplinary review integrates insights from materials science, mechanobiology, and device engineering to inform the future of implantable systems in skeletal tissue repair.
承重组织修复方面的进展对生物材料的需求日益增加,这些生物材料不仅要支持结构完整性,还要与生理环境动态相互作用。本综述探讨了用于骨骼重建的智能生物材料的最新进展,重点关注机械响应性支架、生物活性复合材料以及用于实时监测的集成微传感器。我们探索了能够增强骨整合、抵抗微动引起的松动并调节骨-植入物界面处炎症反应的材料配方。此外,我们评估了新型制造方法,如增材制造和基于梯度的材料沉积,以调整刚度、孔隙率和降解曲线,使其与宿主生物力学相匹配。特别关注能够检测机械应变、生物膜形成和早期植入物失败的传感器增强平台。这些技术共同有望打造出一类新型的生物响应性、具备诊断能力的构建体,它们不仅能提供静态支撑,还能在再生愈合和术后监测中发挥积极作用。这篇多学科综述整合了材料科学、机械生物学和设备工程等方面的见解,为骨骼组织修复中可植入系统的未来发展提供参考。