材料科学
骨整合
涂层
压电
明胶
粘附
钛
复合材料
生物医学工程
烧结
纳米技术
生物材料
细胞粘附
骨组织
复合数
陶瓷
成骨细胞
生物相容性材料
骨愈合
等离子体电解氧化
皮质骨
骨生长
作者
Yì Wáng,Jing Jing,Huiwen Zhang,Jiayi Xu,Ziyun Huang,Chuanrong Zhao,Zengzilu Xia,Kaiyong Cai
摘要
ABSTRACT Titanium implants are not able to exhibit significant osseointegration effects due to their bioinert surfaces and mechanical mismatch. Extensive research has focused on modifying titanium surfaces with micro/nano‐topography and bioactive factors to mimic biochemical microenvironments. However, replicating the bone endogenous electrical microenvironment to enhance osseointegration remains a challenge. Whitlockite (Ca 18 Mg 2 (HPO 4 ) 2 (PO 4 ) 12 , WH) is the second most abundant inorganic constituent in native bone, and it exhibits bioactive properties comparable to hydroxyapatite. It is remarkable that WH NPs subjected to high‐temperature sintering demonstrate pronounced piezoelectric properties. In this work, a titanium‐based composite piezoelectric hydrogel coating was developed by integrating sintered WH NPs with gelatin methacrylate (GelMA)‐sodium alginate (SA) dual‐network hydrogel matrix. This coating possessed a three‐dimensional network structure conducive to cell adhesion and spreading, appropriate mechanical properties, biodegradability, and piezoelectricity. Under low‐intensity pulsed ultrasound stimulation (LIPUS), this titanium‐based piezoelectric hydrogel coating converted mechanical stresses into electrical signals, thereby restoring the electrical microenvironment at the site of bone defects. This coating effectively induced the osteogenic differentiation of BMSCs. It enhances the osseointegration of titanium implants through LIPUS‐assisted piezoelectric stimulation.
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