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用于再生医学和组织修复的液晶网络。

Liquid Crystalline Networks toward Regenerative Medicine and Tissue Repair.

机构信息

European Laboratory for Non-Linear Spectroscopy, via N. Carrara 1, Sesto F. No., 50019, Italy.

Dipartimento di Scienze Biomediche Sperimentali e Cliniche "Mario Serio", Università degli Studi di Firenze, Viale Morgagni 50, Firenze, 50134, Italy.

出版信息

Small. 2017 Dec;13(46). doi: 10.1002/smll.201702677. Epub 2017 Oct 17.

Abstract

The communication reports the use of liquid crystalline networks (LCNs) for engineering tissue cultures with human cells. Their ability as cell scaffolds for different cell lines is demonstrated. Preliminary assessments of the material biocompatibility are performed on human dermal fibroblasts and murine muscle cells (C2C12), demonstrating that coatings or other treatments are not needed to use the acrylate-based materials as support. Moreover, it is found that adherent C2C12 cells undergo differentiation, forming multinucleated myotubes, which show the typical elongated shape, and contain bundles of stress fibers. Once biocompatibility is demonstrated, the same LCN films are used as a substrate for culturing human induced pluripotent stem cell-derived cardiomyocites (hiPSC-CMs) proving that LCNs are capable to develop adult-like dimensions and a more mature cell function in a short period of culture in respect to standard supports. The demonstrated biocompatibility together with the extraordinary features of LCNs opens to preparation of complex cell scaffolds, both patterned and stimulated, for dynamic cell culturing. The ability of these materials to improve cell maturation and differentiation will be developed toward engineered heart and skeletal muscular tissues exploring regenerative medicine toward bioartificial muscles for injured sites replacement.

摘要

该通讯报道了使用液晶网络(LCNs)来构建具有人类细胞的组织培养物。展示了它们作为不同细胞系的细胞支架的能力。对人真皮成纤维细胞和鼠肌肉细胞(C2C12)进行了材料生物相容性的初步评估,证明不需要对基于丙烯酸盐的材料进行涂层或其他处理即可将其用作支撑物。此外,发现附着的 C2C12 细胞发生分化,形成多核肌管,其呈现典型的细长形状,并包含束状的应激纤维。一旦证明了生物相容性,相同的 LCN 薄膜就被用作培养人诱导多能干细胞衍生的心肌细胞(hiPSC-CMs)的基板,证明 LCNs 能够在短时间的培养中达到类似于成人的尺寸和更成熟的细胞功能,而不是标准的支持物。所展示的生物相容性以及 LCNs 的非凡特性为复杂的细胞支架的制备开辟了道路,这些支架既可以进行图案化,也可以进行刺激,用于动态细胞培养。这些材料改善细胞成熟和分化的能力将被开发用于工程心脏和骨骼肌肉组织,探索用于受伤部位替代的生物人工肌肉的再生医学。

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