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用于3D细胞培养的水凝胶渗透性-刚性依赖性的仿生调节

Bioinspired tuning of hydrogel permeability-rigidity dependency for 3D cell culture.

作者信息

Lee Min Kyung, Rich Max H, Baek Kwanghyun, Lee Jonghwi, Kong Hyunjoon

机构信息

Department of Chemical and Biomolecular Engineering, Institute of Genomic Biology, University of Illinois at Urbana-Champaign, Urbana, Illinois, 61801, USA.

Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, Illinois, 61801, USA.

出版信息

Sci Rep. 2015 Mar 10;5:8948. doi: 10.1038/srep08948.

Abstract

Hydrogels are being extensively used for three-dimensional immobilization and culture of cells in fundamental biological studies, biochemical processes, and clinical treatments. However, it is still a challenge to support viability and regulate phenotypic activities of cells in a structurally stable gel, because the gel becomes less permeable with increasing rigidity. To resolve this challenge, this study demonstrates a unique method to enhance the permeability of a cell-laden hydrogel while avoiding a significant change in rigidity of the gel. Inspired by the grooved skin textures of marine organisms, a hydrogel is assembled to present computationally optimized micro-sized grooves on the surface. Separately, a gel is engineered to preset aligned microchannels similar to a plant's vascular bundles through a uniaxial freeze-drying process. The resulting gel displays significantly increased water diffusivity with reduced changes of gel stiffness, exclusively when the microgrooves and microchannels are aligned together. No significant enhancement of rehydration is achieved when the microgrooves and microchannels are not aligned. Such material design greatly enhances viability and neural differentiation of stem cells and 3D neural network formation within the gel.

摘要

水凝胶在基础生物学研究、生化过程和临床治疗中被广泛用于细胞的三维固定和培养。然而,在结构稳定的凝胶中维持细胞活力并调节其表型活性仍是一项挑战,因为随着凝胶硬度增加,其渗透性会降低。为解决这一挑战,本研究展示了一种独特方法,可提高负载细胞的水凝胶的渗透性,同时避免凝胶硬度发生显著变化。受海洋生物带凹槽皮肤纹理的启发,组装了一种水凝胶,使其表面呈现经计算优化的微米级凹槽。另外,通过单轴冷冻干燥过程设计一种凝胶,预设类似于植物维管束的对齐微通道。仅当微凹槽和微通道对齐时,所得凝胶的水扩散率显著增加,凝胶硬度变化减小。当微凹槽和微通道未对齐时,复水没有显著增强。这种材料设计极大地提高了凝胶内干细胞的活力和神经分化以及三维神经网络的形成。

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