纳米地形
骨整合
生物医学工程
偷看
钙
间质细胞
材料科学
生物相容性
碱性磷酸酶
化学
纳米技术
壳聚糖
植入
间充质干细胞
骨组织
成骨细胞
骨质疏松症
骨细胞
生物相容性材料
表面改性
体外
生物物理学
矿化(土壤科学)
骨形成
人骨
细胞
骨形态发生蛋白2
Ⅰ型胶原
骨生长
作者
Junbo Dang,Panqi Sun,Junhui Jiang,Ruifu Lv,Hongbo Wang,Meng Ma,Nan Zuo,Dahui Sun,Mei Zhang
标识
DOI:10.1021/acsapm.5c02967
摘要
Polyetheretherketone (PEEK) offers advantages for orthopedic implants but suffers from inherent bioinertness and poor osseointegration. To overcome these limitations, we engineered an electromagnetic active nanoengineered surface on PEEK (PEEK@MSN) that synergistically integrates magnetoelectric activation, bioactive nanotopography, and controlled release of alendronate to direct bone regeneration. In vitro, PEEK@MSN exhibited exceptional osteogenic capabilities, significantly enhancing the differentiation of bone marrow stromal cells (BMSCs), the expression of alkaline phosphatase (ALP), and calcium deposition. We elucidated the osteogenic synergy observed on the nanoengineered surface: the gold layer generates responsive currents in response to a magnetic field, activating voltage-gated calcium channels (VGCC) and directly modulating osteogenic signaling. Meanwhile, the nanotopography of the silica layer (MSN) facilitates cell recruitment and adhesion, while the sustained release of alendronate loaded in MSN delivers potent pharmacological osteogenic stimulation. PEEK@MSN demonstrated superior osseointegration versus pristine PEEK, achieving 4.1-fold higher calcium deposition (2.67% → 16.30%) in vitro and 492% greater trabecular bone formation (0.075 → 0.308 mm) in vivo. This work establishes a strategy for smart orthopedic implants, where magnetoelectrically generated currents, nanotopographical cues, and controlled pharmacological release act cooperatively to achieve actively guided mineralization and bone regeneration.
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