Department of Chemical Engineering, National Cheng Kung University, Tainan, 701401, Taiwan.
Department of Materials Science and Engineering, National Cheng Kung University, Tainan, 701401, Taiwan.
J Mech Behav Biomed Mater. 2023 Oct;146:106056. doi: 10.1016/j.jmbbm.2023.106056. Epub 2023 Aug 3.
Inspired by the orientation and the fibrous structure of human muscle tissues, we fabricated preconstructed porous liquid crystalline (LC) scaffolds through a two-step polymerization and salt leaching method. A novel strategy combining the aligning properties of LCs and the ease of processing of elastomers for the preparation of elliptical scaffolds for muscle cell culture was proposed in this research. Different from the other types of scaffolds, our biocompatible LC scaffold that can be implanted into the human body using a supporting unit to improve the mechanical properties compared with those of natural muscle. To evaluate the synthesized scaffolds, in vitro experiments using normal human dermal fibroblast (NHDF) cells and smooth muscle cells from rats were carried out, and the sample cells were cultured on each sample scaffold. Based on the results of long-term culture of NHDF cells on the LC scaffolds, it can be confirmed that all three kinds of LC scaffolds have good biocompatibility and provide enough space for cell growth. The addition of gelatin can significantly enhance the biocompatibility of the synthesized scaffolds. Evaluation of scaffold morphologies on cell growth indicates that the molecular arrangement on the scaffolds can induce the growth direction of smooth muscle cells to a certain extent, thereby increasing the formation of highly ordered arrangement tissues. The population doubling time of NHDF cells on the different scaffolds suggest that gelatin can improve the attachment and growth of cells. Investigation of cell viability on LC scaffolds shows that the original LC scaffolds already possess excellent biocompatibility. Additionally, the average cell viability of smooth muscle cells was above 90%, showing that the LC scaffolds in this research are suitable for application in muscle tissue engineering. Based on the results, the gelatin-coated scaffolds are more conducive to the growth of cells in this research and provide promising candidates for tissue engineering in biomedical fields and research fields.
受人体肌肉组织的取向和纤维结构的启发,我们通过两步聚合和盐溶蚀法制备了预制多孔液晶(LC)支架。本研究提出了一种将 LC 的取向性能与弹性体的易于加工相结合的新策略,用于制备用于肌肉细胞培养的椭圆形支架。与其他类型的支架不同,我们的生物相容性 LC 支架可以使用支撑单元植入人体,以提高机械性能,与天然肌肉相比。为了评估合成支架,进行了使用正常人类皮肤成纤维细胞(NHDF)细胞和大鼠平滑肌细胞的体外实验,并在每个样品支架上培养了样品细胞。基于 NHDF 细胞在 LC 支架上的长期培养结果,可以确认所有三种 LC 支架都具有良好的生物相容性,并为细胞生长提供足够的空间。明胶的添加可以显著提高合成支架的生物相容性。对细胞生长的支架形态评估表明,支架上的分子排列可以在一定程度上诱导平滑肌细胞的生长方向,从而增加高度有序排列组织的形成。NHDF 细胞在不同支架上的倍增时间表明,明胶可以改善细胞的附着和生长。对 LC 支架上细胞活力的研究表明,原始 LC 支架已经具有优异的生物相容性。此外,平滑肌细胞的平均细胞活力高于 90%,表明本研究中的 LC 支架适用于肌肉组织工程的应用。基于这些结果,明胶涂覆的支架更有利于细胞在本研究中的生长,并为生物医学领域和研究领域的组织工程提供了有前途的候选物。