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用于细胞球体形成的尺寸和形状可控的纳米纤维凹微井的多功能制造。

Versatile Fabrication of Size- and Shape-Controllable Nanofibrous Concave Microwells for Cell Spheroid Formation.

机构信息

Department of Mechanical Engineering , Pohang University of Science and Technology (POSTECH) , 77 Cheongam-ro , Pohang , Gyeongbuk 37673 , South Korea.

出版信息

ACS Appl Mater Interfaces. 2018 Nov 7;10(44):37878-37885. doi: 10.1021/acsami.8b15821. Epub 2018 Oct 23.

DOI:10.1021/acsami.8b15821
PMID:30360112
Abstract

Although the microfabrication techniques for microwells enabled to guide physiologically relevant three-dimensional cell spheroid formation, there have been substantial interests to more closely mimic nano/microtopographies of in vivo cellular microenvironment. Here, we developed a versatile fabrication process for nanofibrous concave microwells (NCMs) with a controllable size and shape. The key to the fabrication process was the use of an array of hemispherical convex electrolyte solution drops as the grounded collector for electrospinning, which greatly improved the degree of freedom of the size, shape, and curvature of an NCM. A polymer substrate with through-holes was prepared for the electrolyte solution to come out through the hole and to naturally form a convex shape because of surface tension. Subsequent electrolyte-assisted electrospinning process enabled to achieve various arrays of NCMs of triangular, rectangular, and circular shapes with sizes ranging from 1000 μm down to 250 μm. As one example of biomedical applications, the formation of human hepatoma cell line (HepG2) spheroids was demonstrated on the NCMs. The results indicated that the NCM enabled uniform, size-controllable spheroid formation of HepG2 cells, resulting in 1.5 times higher secretion of albumin from HepG2 cells on the NCM on day 14 compared with those on a nanofibrous flat microwell as a control.

摘要

虽然微制造技术可以用于引导生理相关的三维细胞球状体形成,但人们对更接近模拟体内细胞微环境的纳米/微形貌的兴趣仍然很大。在这里,我们开发了一种用于具有可控尺寸和形状的纳米纤维凹微井(NCM)的多功能制造工艺。制造工艺的关键是使用一系列半球形凸电解质溶液滴作为静电纺丝的接地收集器,这大大提高了 NCM 的尺寸、形状和曲率的自由度。制备了具有通孔的聚合物基底,以使电解质溶液通过孔并由于表面张力而自然形成凸形。随后的电解质辅助静电纺丝工艺能够实现各种形状的三角形、矩形和圆形 NCM 的阵列,尺寸范围从 1000μm 缩小到 250μm。作为生物医学应用的一个示例,在 NCM 上演示了人肝癌细胞系(HepG2)球体的形成。结果表明,NCM 能够均匀地、可控制地形成 HepG2 细胞的球体,与作为对照的纳米纤维平微井相比,在第 14 天,HepG2 细胞在 NCM 上的白蛋白分泌量增加了 1.5 倍。

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