Bauer Magdalena, Metzger Magdalena, Corea Marvin, Schädl Barbara, Grillari Johannes, Dungel Peter
Ludwig Boltzmann Institute for Traumatology, The Research Center in Cooperation with AUVA, 1200 Vienna, Austria.
Austrian Cluster for Tissue Regeneration, 1200 Vienna, Austria.
Life (Basel). 2022 Aug 10;12(8):1216. doi: 10.3390/life12081216.
In skin research, widely used in vitro 2D monolayer models do not sufficiently mimic physiological properties. To replace, reduce, and refine animal experimentation in the spirit of '3Rs', new approaches such as 3D skin equivalents (SE) are needed to close the in vitro/in vivo gap. Cell culture inserts to culture SE are commercially available, however, these inserts are expensive and of limited versatility regarding experimental settings. This study aimed to design novel cell culture inserts fabricated on commercially available 3D printers for the generation of full-thickness SE. A computer-aided design model was realized by extrusion-based 3D printing of polylactic acid filaments (PLA). Improvements in the design of the inserts for easier and more efficient handling were confirmed in cell culture experiments. Cytotoxic effects of the final product were excluded by testing the inserts in accordance with ISO-norm procedures. The final versions of the inserts were tested to generate skin-like 3D scaffolds cultured at an air-liquid interface. Stratification of the epidermal component was demonstrated by histological analyses. In conclusion, here we demonstrate a fast and cost-effective method for 3D-printed inserts suitable for the generation of 3D cell cultures. The system can be set-up with common 3D printers and allows high flexibility for generating customer-tailored cell culture plastics.
在皮肤研究中,广泛使用的体外二维单层模型无法充分模拟生理特性。为了本着“3R”原则替代、减少和优化动物实验,需要诸如三维皮肤等效物(SE)等新方法来弥合体外/体内差距。用于培养SE的细胞培养插入物有商业产品,但这些插入物价格昂贵,且在实验设置方面通用性有限。本研究旨在设计一种基于市售3D打印机制造的新型细胞培养插入物,用于生成全层SE。通过基于挤出的聚乳酸长丝(PLA)3D打印实现了计算机辅助设计模型。细胞培养实验证实了插入物设计的改进,使其操作更简便、高效。根据ISO标准程序对插入物进行测试,排除了最终产品的细胞毒性作用。对插入物的最终版本进行测试,以生成在气液界面培养的皮肤样三维支架。组织学分析证实了表皮成分的分层。总之,我们在此展示了一种快速且经济高效的方法,用于制造适用于生成三维细胞培养物的3D打印插入物。该系统可以用普通3D打印机搭建,并且在生成定制细胞培养塑料制品方面具有高度灵活性。