脚手架
材料科学
生物相容性
成骨细胞
压电
3d打印
复合数
松质骨
生物医学工程
骨组织
抗压强度
骨愈合
模拟体液
复合材料
碱性磷酸酶
骨形成
组织工程
陶瓷
压电系数
骨生长
纳米技术
矿化(土壤科学)
作者
Y.X. Chen,Guangteng Zhang,Dongdong Ge,Meichen Wang,Tao Wu,Zheng Long Zou
标识
DOI:10.1016/j.matdes.2025.115004
摘要
• Biodegradable PVDF-TrFE-CPS scaffold addresses PVDF’s clinical limitations. • 3D-printed scaffold replicates bone strength and supports complex geometries. • Piezoelectricity mimics bone signals to enhance osteoblast differentiation. • CPS enhances hydroxyapatite formation and osteoinductive performance. • Stable degradation ensures safe environment for bone tissue regeneration. The repair of bone defects remains a significant clinical challenge due to their structural complexity and patient-specific variability. Poly(vinylidene fluoride) (PVDF)-based piezoelectric materials have attracted considerable attention owing to their excellent biocompatibility and piezoelectric properties; however, their non-degradability restricts further application in bone tissue engineering. To address this limitation, a composite scaffold composed of degradable poly(vinylidene fluoride-trifluoroethylene) (PVDF-TrFE) and calcium phosphate silicate (CPS) was fabricated via three-dimensional (3D) printing, integrating structural customizability with multifunctional performance. The results demonstrated that after 7 days of hydration, the scaffold exhibited a compressive strength of 7.6–8.38 MPa and a piezoelectric coefficient (d 33 ) of 6.01 pC/N, exceeding that of native cancellous bone while maintaining good stability. Moreover, the scaffold displayed enhanced mineralization capacity, promoted osteoblast proliferation (102.7–107.6 %) and alkaline phosphatase activity, and maintained moderate mass loss with stable pH during degradation, thereby providing a favorable microenvironment for bone regeneration. Collectively, the 3D-printed PVDF-TrFE-CPS composite scaffold demonstrated synergistic effects in structural regulation, mechanical support, piezoelectric stimulation, and osteoinductivity, offering a promising strategy for the personalized repair of complex bone defects.
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