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用于空间细胞培养的生物相容性、可生物降解且多孔的液晶弹性体支架。

Biocompatible, biodegradable and porous liquid crystal elastomer scaffolds for spatial cell cultures.

作者信息

Sharma Anshul, Neshat Abdollah, Mahnen Cory J, Nielsen Alek D, Snyder Jacob, Stankovich Tory L, Daum Benjamin G, LaSpina Emily M, Beltrano Gabrielle, Gao Yunxiang, Li Shuo, Park Byung-Wook, Clements Robert J, Freeman Ernest J, Malcuit Christopher, McDonough Jennifer A, Korley LaShanda T J, Hegmann Torsten, Hegmann Elda

机构信息

Chemical Physics Interdisciplinary Program, Kent State University, Kent, (OH), 44242, USA; Liquid Crystal Institute, Kent State University, Kent, (OH), 44242, USA.

出版信息

Macromol Biosci. 2015 Feb;15(2):200-14. doi: 10.1002/mabi.201400325. Epub 2014 Oct 10.

Abstract

Here we report on the modular synthesis and characterization of biodegradable, controlled porous, liquid crystal elastomers (LCE) and their use as three-dimensional cell culture scaffolds. The elastomers were prepared by cross-linking of star block-co-polymers with pendant cholesterol units resulting in the formation of smectic-A LCEs as determined by polarized optical microscopy, DSC, and X-ray diffraction. Scanning electron microscopy revealed the porosity of the as-prepared biocompatible LCEs, making them suitable as 3D cell culture scaffolds. Biodegradability studies in physiological buffers at varying pH show that these scaffolds are intact for about 11 weeks after which degradation sets in at an exponential rate. Initial results from cell culture studies indicate that these smectic LCEs are compatible with growth, survival, and expansion of cultured neuroblastomas and myoblasts when grown on the LCEs for extended time periods (about a month). These preliminary cell studies focused on characterizing the elastomer-based scaffolds' biocompatibility and the successful 3D incorporation as well as growth of cells in 60 to 150-μm thick elastomer sheets.

摘要

在此,我们报告可生物降解、可控多孔液晶弹性体(LCE)的模块化合成与表征,以及它们作为三维细胞培养支架的应用。这些弹性体通过带有胆固醇侧基的星型嵌段共聚物交联制备而成,通过偏光显微镜、差示扫描量热法(DSC)和X射线衍射确定形成了近晶-A型LCE。扫描电子显微镜显示了所制备的生物相容性LCE的孔隙率,使其适合作为三维细胞培养支架。在不同pH值的生理缓冲液中的生物降解性研究表明,这些支架在约11周内保持完整,之后以指数速率开始降解。细胞培养研究的初步结果表明,当在LCE上长时间(约一个月)培养时,这些近晶型LCE与培养的神经母细胞瘤和成肌细胞的生长、存活和增殖兼容。这些初步的细胞研究重点在于表征基于弹性体的支架的生物相容性,以及细胞在60至150μm厚的弹性体薄片中的成功三维整合和生长。

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