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Updated: Jan 22, 2026

Bioelectric Analyses of an Osseointegrated Intelligent Implant Design System for Amputees
Published on: July 15, 2009
Picosecond laser-engineered osteon-inspired concentric micropatterns on titanium implants regulate cellular behaviour
Kendrick Hii Ru Yie1, Yingyue Sun1, Xinhua Gu2
1School and Hospital of Stomatology, Wenzhou Medical University, Wenzhou, 325027, Zhejiang, China.
None:
Achieving successful osseointegration in dental implants remains challenging due to biological and biomechanical complications. Inspired by the architecture of osteons, the fundamental structural units of cortical bone, this study employs picosecond-ultraviolet laser (PSL-UV) technology to create biomimetic, osteon-like concentric micropatterns with varying groove widths (20 μm, 40 μm, 60 μm, and 80 μm) on titanium (Ti) surfaces. These patterns aim to regulate cellular behavior and enhance osseointegration. In vitro studies demonstrated that groove width critically influenced cellular responses: 20 μm and 80 μm patterns significantly enhanced osteoblast activity while simultaneously regulating or suppressing osteoclast and fibroblastic activity. Gene expression and omics analyses further supported these findings, highlighting the role of micropatterns in modulating cellular differentiation and function. In vivo experiments confirmed substantial new bone formation on implants with 20 μm and 80 μm groove widths, underscoring their osteogenic potential. Moreover, the precision and scalability of PSL-UV technology offer a clinically viable solution for improving implant success rates. By tailoring implant surfaces to modulate cellular responses, this strategy enables personalized implant designs, enhancing long-term implant longevity in diverse patient populations. This study provides a promising pathway for advancing dental implantology through biomimetic surface engineering.
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