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Updated: Aug 5, 2026

A High-throughput Cell Microarray Platform for Correlative Analysis of Cell Differentiation and Traction Forces
Published on: March 1, 2017
Cells perceive the distribution differences of adhesion ligands and consequently establish cellular polarization to
Jinsheng Li1,2, Ming Yang2, Guowen Duan3
1Division of Sports Medicine and Adult Reconstructive Surgery, Department of Orthopedic Surgery, Nanjing Drum Tower Hospital, Affiliated Hospital of Medical School, Nanjing University, Nanjing, Jiangsu, 210008, PR China.
Abstract:
Engineering implant topography has emerged as a promising strategy to promote bone regeneration in complex fractures and large bone defects. Among such topographies, TiO2 nanotubes serve as a model topography and have been shown, within a certain range, to positively regulate osteogenic differentiation through diameter-dependent effects. However, the underlying mechanisms remains fragmentary. Here, we revealed how cells perceived nanotube interfaces and identified the intracellular force-based mechanotransduction that arose from interface perception. We unexpectedly found that cellular perception of nanotube interfaces depended on diameter-associated topographical cues that induced differential distribution of adhesive ligands. Cells engaged these adhesive ligands to modulate focal adhesion (FA) organization, with small and many FAs forming on the small-diameter nanotubes (30 nm), whereas fewer but larger FAs formed on the large-diameter nanotubes (100 nm). Fewer but larger FAs regulated cytoskeletal assembly, generating greater intracellular force and enhancing cellular polarization. Furthermore, large-diameter nanotubes promoted nuclear pore deformation and YAP nuclear translocation, leading to enhanced osteogenic differentiation both in vitro and in vivo. Together, our findings suggest that nanotube diameter-dependent geometry regulates the spatial presentation of adhesive ligands and subsequently influences FA maturation, cellular polarization, and YAP-associated mechanotransduction. This study provides mechanistic insight into how implant nanotopography modulates osteogenic responses and offers a theoretical basis for the rational design of osteogenic implant surfaces.
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