Huan Zhijie, Chu Henry K, Yang Jie, Sun Dong
IEEE Trans Biomed Eng. 2017 Apr;64(4):755-764. doi: 10.1109/TBME.2016.2574932. Epub 2016 Jun 1.
Seeding and patterning of cells with an engineered scaffold is a critical process in artificial tissue construction and regeneration. To date, many engineered scaffolds exhibit simple intrinsic designs, which fail to mimic the geometrical complexity of native tissues. In this study, a novel scaffold that can automatically seed cells into multilayer honeycomb patterns for bone tissue engineering application was designed and examined.
The scaffold incorporated dielectrophoresis for noncontact manipulation of cells and intrinsic honeycomb architectures were integrated in each scaffold layer. When a voltage was supplied to the stacked scaffold layers, three-dimensional electric fields were generated, thereby manipulating cells to form into honeycomb-like cellular patterns for subsequent culture.
The biocompatibility of the scaffold material was confirmed through the cell viability test. Experiments were conducted to evaluate the cell viability during DEP patterning at different voltage amplitudes, frequencies, and manipulating time. Three different mammalian cells were examined and the effects of the cell size and the cell concentration on the resultant cellular patterns were evaluated.
Results showed that the proposed scaffold structure was able to construct multilayer honeycomb cellular patterns in a manner similar to the natural tissue.
This honeycomb-like scaffold and the dielectrophoresis-based patterning technique examined in this study could provide the field with a promising tool to enhance seeding and patterning of a wide range of cells for the development of high-quality artificial tissues.
利用工程支架进行细胞接种和图案化是人工组织构建与再生中的关键过程。迄今为止,许多工程支架呈现出简单的固有设计,无法模拟天然组织的几何复杂性。在本研究中,设计并检验了一种新型支架,该支架能够自动将细胞接种成多层蜂窝状图案,用于骨组织工程应用。
该支架结合了介电泳用于细胞的非接触式操控,且在每个支架层中集成了固有的蜂窝结构。当向堆叠的支架层施加电压时,会产生三维电场,从而操控细胞形成蜂窝状细胞图案以便后续培养。
通过细胞活力测试证实了支架材料的生物相容性。进行实验以评估在不同电压幅度、频率和操控时间的介电泳图案化过程中的细胞活力。检测了三种不同的哺乳动物细胞,并评估了细胞大小和细胞浓度对所得细胞图案的影响。
结果表明,所提出的支架结构能够以类似于天然组织的方式构建多层蜂窝状细胞图案。
本研究中检测的这种蜂窝状支架和基于介电泳的图案化技术可为该领域提供一种有前景的工具,以增强多种细胞的接种和图案化,用于高质量人工组织的开发。