小旋翼机
脚手架
材料科学
机械生物学
组织工程
纳米技术
生物医学工程
仿生材料
再生(生物学)
曲率
再生医学
骨愈合
拓扑优化
生物物理学
仿生学
机械转化
拓扑(电路)
曲面(拓扑)
最小曲面
剪应力
微流控
作者
Dong-Gyu Kim,Giheon Ha,Minseok Kim,Min‐Jin Kwak,Han‐Jun Kim,Junmin Lee
标识
DOI:10.1002/adhm.202502773
摘要
The interplay between scaffold geometry and mechanical cues is critical in regulating osteogenesis within engineered bone microenvironments. To better mimic native bone physiology and improve regeneration strategies, it is essential to integrate precise topological control with physiologically relevant flow. Here, a bone-on-a-chip (BoC) system coupled with triply periodic minimal surface (TPMS)-based 3D scaffolds is presented to investigate how geometric parameters-pore shape and solidity-govern osteogenic responses under dynamic perfusion. Using Gyroid and Schwarz diamond TPMS architectures, scaffolds with controlled pore geometries are created to modulate wall shear stress (WSS). Under flow conditions in the BoC system, pre-osteoblasts exhibit geometry-dependent behaviors in terms of infiltration, alkaline phosphatase activity, calcium deposition, and collagen formation. Scaffolds with intermediate solidity and curvature optimize WSS distribution and significantly enhance osteogenic differentiation. Additionally, a critical pore size threshold is identified beyond which flow-mediated signaling is attenuated, highlighting the importance of geometric precision. The results demonstrate the synergistic role of scaffold topology and interstitial flow in directing osteogenesis. This integrated platform provides a versatile tool for studying bone mechanobiology and offers a promising strategy for designing biomimetic scaffolds in regenerative medicine and bone tissue engineering.
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