Synthetic nanointerfacial bioengineering of Ti implants: on-demand regulation of implant–bone interactions for enhancing osseointegration

骨整合 植入 材料科学 牙科 生物医学工程 工程类 医学 外科
作者
Yilong Dong,Yan Hu,Xinqiang Hu,Lingshuang Wang,Xinkun Shen,Hao Tian,Menghuan Li,Zhong Luo,Chun-Yuan Cai
出处
期刊:Materials horizons [Royal Society of Chemistry]
卷期号:12 (3): 694-718 被引量:13
标识
DOI:10.1039/d4mh01237b
摘要

Titanium and its alloys are the most commonly used biometals for developing orthopedic implants to treat various forms of bone fractures and defects, but their clinical performance is still challenged by the unfavorable mechanical and biological interactions at the implant-tissue interface, which substantially impede bone healing at the defects and reduce the quality of regenerated bones. Moreover, the impaired osteogenesis capacity of patients under certain pathological conditions such as diabetes and osteoporosis may further impair the osseointegration of Ti-based implants and increase the risk of treatment failure. To address these issues, various modification strategies have been developed to regulate the implant-bone interactions for improving bone growth and remodeling in situ. In this review, we provide a comprehensive analysis on the state-of-the-art synthetic nanointerfacial bioengineering strategies for designing Ti-based biofunctional orthopedic implants, with special emphasis on the contributions to (1) promotion of new bone formation and binding at the implant-bone interface, (2) bacterial elimination for preventing peri-implant infection and (3) overcoming osseointegration resistance induced by degenerative bone diseases. Furthermore, a perspective is included to discuss the challenges and potential opportunities for the interfacial engineering of Ti implants in a translational perspective. Overall, it is envisioned that the insights in this review may guide future research in the area of biometallic orthopedic implants for improving bone repair with enhanced efficacy and safety.
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