脚手架
微型多孔材料
互连性
材料科学
自愈水凝胶
多孔性
组织工程
纳米技术
渗透(HVAC)
生物医学工程
复合材料
计算机科学
医学
人工智能
高分子化学
作者
Rui‐Chian Tang,Lily Shang,Philip O. Scumpia,Dino Di Carlo
标识
DOI:10.1002/adhm.202302477
摘要
Abstract Hydrogels are widely used for tissue engineering applications to support cellular growth, yet the tightly woven structure often restricts cell infiltration and expansion. Consequently, granular hydrogels with microporous architectures have emerged as a new class of biomaterial. Particularly, the development of microporous annealed particle (MAP) hydrogel scaffolds has shown improved stability and integration with host tissue. However, the predominant use of spherically shaped particles limits scaffold porosity, potentially limiting the level of cell infiltration. Here, a novel microporous annealed crescent‐shaped particle (MAC) scaffold that is predicted to have improved porosity and pore interconnectivity in silico is presented. With microfluidic fabrication, tunable cavity sizes that optimize interstitial void space features are achieved. In vitro, cells incorporated into MAC scaffolds form extensive 3D multicellular networks. In vivo, the injectable MAC scaffold significantly enhances cell infiltration compared to spherical MAP scaffolds, resulting in increased numbers of myofibroblasts and leukocytes present within the gel without relying on external biomolecular chemoattractants. The results shed light on the critical role of particle shape in cell recruitment, laying the foundation for MAC scaffolds as a next‐generation granular hydrogel for diverse tissue engineering applications.
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