Irreversible marginal bone loss can hinder recovery around dental implants. Insufficient alveolar osteogenesis and stress concentration during chewing contribute to marginal bone resorption and can result in implant failure. A biomaterial with a micropore-channel structure was developed using 3D printing technology. This design facilitated bony ingrowth and provided similar mechanical stimulation at the implant neck during mastication to a natural tooth. The micropore channels provided a guiding structure for bone mesenchymal stem cell proliferation and differentiation without the need for growth factors. Specifically, this was achieved through mechanical transduction by F-actin remodeling and the activation of Yes-associated protein (YAP). The implants were verified in a canine dental implant surgery model, which demonstrated the promising use of biomaterial-based dental implants in future clinical applications.
Preservation of alveolar ridge height through mechanical memory: A novel dental implant design.
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作者:Yin Shi, Zhang Wenjie, Tang Yanmei, Yang Guangzheng, Wu Xiaolin, Lin Sihan, Liu Xuanyong, Cao Huiliang, Jiang Xinquan
| 期刊: | Bioactive Materials | 影响因子: | 20.300 |
| 时间: | 2021 | 起止号: | 2020 Aug 10; 6(1):75-83 |
| doi: | 10.1016/j.bioactmat.2020.07.015 | ||
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