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Updated: Jun 26, 2026

Fabrication of Mechanically Tunable and Bioactive Metal Scaffolds for Biomedical Applications
Published on: December 8, 2015
Topological optimization synergized with a high-activity nano-hydroxyapatite coating to enhance bone regeneration in
Peng Zhao1,2, Yushuan Jia1,2, Jingming Li1,2
1National Engineering Research Center for Biomaterials, Sichuan University, Chengdu 610064, China.
Abstract:
Surface bioinertness-induced fibrosis at and within 3D-printed porous titanium implants critically impairs their repair efficacy. Surface bioactive and evenly distributed coating construction represents an ideal strategy to address this challenge. Herein, a porous titanium alloy scaffold with an appropriate fluid dynamics microenvironment was prepared using computational fluid dynamics simulations and selective laser melting technology. Subsequently, a uniform nano-hydroxyapatite (nHA) coating with about 30 μm thickness and good bonding strength was fabricated on the chemically pretreated scaffold via surface engineering and gradient liquid-phase impregnation. The nHA coating significantly promoted the adhesion, proliferation and osteogenic differentiation of bone marrow mesenchymal stem cells on the scaffold. In a beagle intramuscular model, the rhombic dodecahedron lattice exhibited superior osteoinduction to diamond and hexagonal close-packed lattices, owing to deeper fluid penetration and uniform shear stress. Furthermore, in a rabbit femoral condyle critical-sized defect model, the topology-optimized, surface-modified titanium alloy scaffold exhibited superior interfacial osseointegration and internal bone regeneration. This study not only offers a new approach to addressing current challenges in clinical titanium implant applications but also provides novel insights into the design of 3D-printed functionalized implants.
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