Design and Performance Analysis of a Bionic Radially Gradient Irregular Bone Scaffold

材料科学 脚手架 多孔性 沃罗诺图 复合材料 磁导率 同种类的 组织工程 生物医学工程 弹性模量 粘附 模数 材料性能 多孔介质 轴对称性 仿生学 有限元法 几何形状 细胞粘附 分布(数学) 刚度
作者
Qingyu Xu,Jizhe Hai,Jie Chen
出处
期刊:ACS Biomaterials Science & Engineering [American Chemical Society]
标识
DOI:10.1021/acsbiomaterials.6c00612
摘要

Irregular porous scaffolds based on Voronoi tessellation have attracted growing interest in bone tissue engineering because their geometric heterogeneity more closely resembles native bone than conventional periodic lattices. However, current Voronoi scaffold designs remain largely limited to homogeneous or axially graded architectures, whereas radially graded irregular scaffolds for long-bone repair have been insufficiently explored. Here, nine biomimetic radially graded irregular scaffolds with a target porosity of 70% were developed by synergistically tailoring seed-point distribution (PG) and strut-diameter gradient (DG) within a Voronoi framework. Their geometric features, mechanical properties, mass transport behavior, and biofunctional performance were systematically evaluated through numerical analysis and experimental validation. The scaffolds exhibited elastic moduli of 4.09−7.29 GPa, yield strengths of 75.30−271.35 MPa, permeabilities of 1.93−2.71 × 10 −8 m 2, and cell adhesion rates of 2.93−9.31%. Seed-point distribution primarily governed permeability and cell adhesion, whereas strut-diameter grading had a stronger effect on mechanical behavior and mechano-regulated cell differentiation. Among all designs, the PG 1 -DG1 scaffold, featuring a radially decreasing porosity, exhibited the highest permeability (2.71 × 10 −8 m 2 ) and cell adhesion rate (9.31%) while maintaining a stress-transfer pattern more consistent with native long bone. These findings provide a rational design strategy for developing load-bearing biomimetic bone scaffolds with balanced mechanical and biological performance.
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