Sorbonne universités, Université de Technologie de Compiègne, CNRS, UMR 7338, Biomécanique et Bioingénierie, Centre de recherche Royallieu, CS 60319, Compiègne cedex, 60203, France.
Laboratory for Integrated Micro Mechatronic Systems, Institute of Industrial Sciences, University of Tokyo, CNRS UMI 2820, 4-6-1 Komaba, Meguro-ku, Tokyo, 153-8505, Japan.
J Mater Sci Mater Med. 2017 Jan;28(1):4. doi: 10.1007/s10856-016-5815-1. Epub 2016 Nov 23.
Thin-Film-Transistors Liquid-Crystal Display has become a standard in the field of displays. However, the structure of these devices presents interest not only in that field, but also for biomedical applications. One of the key components, called here TFT substrate, is a glass substrate with a dense and large array of thousands of transparent micro-electrodes that can be considered as a large scale multi-electrode array(s). Multi-electrode array(s) are widely used for in vitro electrical investigations on neurons and brain, allowing excitation, registration, and recording of their activity. However, the range of application of conventional multi-electrode array(s) is usually limited to some tens of cells in a homogeneous cell culture, because of a small area, small number and a low density of the micro-electrodes. TFT substrates do not have these limitations and the authors are currently studying the possibility to use TFT substrates as new tools for in vitro electrical investigation on tissues and organoids. In this respect, experiments to determine the cyto-biocompatibility of TFT substrates with tissues were conducted and are presented in this study. The investigation was performed using an organotypic culture method with explants of brain and liver tissues of chick embryos. The results in term of morphology, cell migration, cell density and adhesion were compared with the results from Thermanox, a conventional plastic for cell culture, and with polydimethylsiloxane, a hydrophobic silicone. The results with TFT substrates showed similar results as for the Thermanox, despite the TFT hydrophobicity. TFT substrates have a weak cell adhesion and promote cell migration similarly to Thermanox. It could be concluded that the TFT substrates are cyto-biocompatible with the two studied organs.
薄膜晶体管液晶显示器已成为显示领域的标准。然而,这些设备的结构不仅在该领域引起了人们的兴趣,而且还引起了生物医学应用的兴趣。这里称为 TFT 衬底的关键组件之一是具有密集且大量数千个透明微电极的玻璃衬底,可以将其视为大规模多电极阵列(s)。多电极阵列(s)广泛用于体外神经元和大脑的电研究,允许激发、记录和记录它们的活动。然而,传统多电极阵列(s)的应用范围通常限于同质细胞培养中的几十种细胞,因为微电极的面积小、数量少且密度低。TFT 衬底没有这些限制,作者目前正在研究将 TFT 衬底用作组织和类器官体外电研究的新工具的可能性。在这方面,进行了确定 TFT 衬底与组织的细胞生物相容性的实验,并在本研究中进行了介绍。该研究使用鸡胚脑和肝组织的器官型培养方法进行。在形态学、细胞迁移、细胞密度和粘附方面的结果与细胞培养的常规塑料 Thermanox 和疏水性硅酮 polydimethylsiloxane 的结果进行了比较。尽管 TFT 具有疏水性,但与 Thermanox 相比,TFT 衬底的结果显示出相似的结果。TFT 衬底的细胞粘附力较弱,细胞迁移方式与 Thermanox 相似。可以得出结论,TFT 衬底与两种研究的器官具有细胞生物相容性。