Prévôt Marianne E, Ustunel Senay, Bergquist Leah E, Cukelj Richard, Gao Yunxiang, Mori Taizo, Pauline Lindsay, Clements Robert J, Hegmann Elda
Liquid Crystal Institute, Kent State University.
Chemical Physics Interdisciplinary Program, Liquid Crystal Institute, Kent State University.
J Vis Exp. 2017 Apr 11(122):55452. doi: 10.3791/55452.
Here, we present a step-by-step preparation of a 3D, biodegradable, foam-like cell scaffold. These scaffolds were prepared by cross-linking star block co-polymers featuring cholesterol units as side-chain pendant groups, resulting in smectic-A (SmA) liquid crystal elastomers (LCEs). Foam-like scaffolds, prepared using metal templates, feature interconnected microchannels, making them suitable as 3D cell culture scaffolds. The combined properties of the regular structure of the metal foam and of the elastomer result in a 3D cell scaffold that promotes not only higher cell proliferation compared to conventional porous templated films, but also better management of mass transport (i.e., nutrients, gases, waste, etc.). The nature of the metal template allows for the easy manipulation of foam shapes (i.e., rolls or films) and for the preparation of scaffolds of different pore sizes for different cell studies while preserving the interconnected porous nature of the template. The etching process does not affect the chemistry of the elastomers, preserving their biocompatible and biodegradable nature. We show that these smectic LCEs, when grown for extensive time periods, enable the study of clinically relevant and complex tissue constructs while promoting the growth and proliferation of cells.
在此,我们展示了一种三维可生物降解泡沫状细胞支架的逐步制备方法。这些支架是通过交联以胆固醇单元作为侧链悬垂基团的星形嵌段共聚物制备而成的,从而得到近晶-A(SmA)型液晶弹性体(LCE)。使用金属模板制备的泡沫状支架具有相互连接的微通道,使其适合用作三维细胞培养支架。金属泡沫的规则结构与弹性体的综合性能产生了一种三维细胞支架,与传统的多孔模板化薄膜相比,它不仅能促进更高的细胞增殖,还能更好地管理物质运输(即营养物质、气体、废物等)。金属模板的特性使得泡沫形状(如卷状或薄膜状)易于操控,并且能够为不同的细胞研究制备不同孔径的支架,同时保持模板相互连接的多孔性质。蚀刻过程不会影响弹性体的化学性质,从而保留其生物相容性和可生物降解性。我们表明,这些近晶型LCE在长时间生长时,能够在促进细胞生长和增殖的同时,用于研究临床相关的复杂组织构建体。