Prévôt Marianne E, Ustunel Senay, Hegmann Elda
Liquid Crystal Institute, Kent State University, Kent, OH 44242, USA.
Chemical Physics Interdisciplinary Program (CPIP), Kent State University, Kent, OH 44242, USA.
Materials (Basel). 2018 Mar 3;11(3):377. doi: 10.3390/ma11030377.
The development of appropriate materials that can make breakthroughs in tissue engineering has long been pursued by the scientific community. Several types of material have been long tested and re-designed for this purpose. At the same time, liquid crystals (LCs) have captivated the scientific community since their discovery in 1888 and soon after were thought to be, in combination with polymers, artificial muscles. Within the past decade liquid crystal elastomers (LCE) have been attracting increasing interest for their use as smart advanced materials for biological applications. Here, we examine how LCEs can potentially be used as dynamic substrates for culturing cells, moving away from the classical two-dimensional cell-culture nature. We also briefly discuss the integration of a few technologies for the preparation of more sophisticated LCE-composite scaffolds for more dynamic biomaterials. The anisotropic properties of LCEs can be used not only to promote cell attachment and the proliferation of cells, but also to promote cell alignment under LCE-stimulated deformation. 3D LCEs are ideal materials for new insights to simulate and study the development of tissues and the complex interplay between cells.
科学界长期以来一直在寻求开发能够在组织工程领域取得突破的合适材料。为此,几种类型的材料已经经过了长期测试并重新设计。与此同时,液晶(LCs)自1888年被发现以来就吸引了科学界的关注,此后不久人们就认为它们与聚合物结合可成为人造肌肉。在过去十年中,液晶弹性体(LCE)作为用于生物应用的智能先进材料越来越受到关注。在此,我们研究了LCE如何有可能用作培养细胞的动态基质,摆脱传统的二维细胞培养方式。我们还简要讨论了整合一些技术以制备更复杂的LCE复合支架,用于制造更具动态性的生物材料。LCE的各向异性特性不仅可用于促进细胞附着和细胞增殖,还可用于在LCE刺激变形下促进细胞排列。3D LCE是用于模拟和研究组织发育以及细胞间复杂相互作用的新见解的理想材料。