Department of Bionanotechnology and Bio-Convergence Engineering, Jeonbuk National University, Jeonju-si 54896, Jeonbuk, Korea.
Department of PolymerNano Science & Technology and Polymer Materials Fusion Research Center, Jeonju-si 54896, Jeonbuk, Korea.
Molecules. 2022 Aug 27;27(17):5512. doi: 10.3390/molecules27175512.
Cell therapies for age-related macular degeneration (AMD) treatment have been developed by integrating hydrogel-based biomaterials. Until now, cell activity has been observed only in terms of the modulus of the hydrogel. In addition, cell behavior has only been observed in the 2D environment of the hydrogel and the 3D matrix. As time-dependent stress relaxation is considered a significant mechanical cue for the control of cellular activities, it is important to optimize hydrogels for retinal tissue engineering (TE) by applying this viewpoint. Herein, a gellan Gum (GG)/Hyaluronic acid (HA) hydrogel was fabricated using a facile physical crosslinking method. The physicochemical and mechanical properties were controlled by forming a different composition of GG and HA. The characterization was performed by conducting a mass swelling study, a sol fraction study, a weight loss test, a viscosity test, an injection force study, a compression test, and a stress relaxation analysis. The biological activity of the cells encapsulated in 3D constructs was evaluated by conducting a morphological study, a proliferation test, a live/dead analysis, histology, immunofluorescence staining, and a gene expression study to determine the most appropriate material for retinal TE biomaterial. Hydrogels with moderate amounts of HA showed improved physicochemical and mechanical properties suitable for injection into the retina. Moreover, the time-dependent stress relaxation property of the GG/HA hydrogel was enhanced when the appropriate amount of HA was loaded. In addition, the cellular compatibility of the GG/HA hydrogel in in vitro experiments was significantly improved in the fast-relaxing hydrogel. Overall, these results demonstrate the remarkable potential of GG/HA hydrogel as an injectable hydrogel for retinal TE and the importance of the stress relaxation property when designing retinal TE hydrogels. Therefore, we believe that GG/HA hydrogel is a prospective candidate for retinal TE biomaterial.
用于治疗年龄相关性黄斑变性 (AMD) 的细胞疗法是通过整合水凝胶基生物材料开发的。到目前为止,仅观察到水凝胶的模量方面的细胞活性。此外,细胞行为仅在水凝胶的 2D 环境和 3D 基质中观察到。由于时变的应力松弛被认为是控制细胞活性的重要力学线索,因此通过应用这一观点来优化用于视网膜组织工程 (TE) 的水凝胶非常重要。在此,使用简单的物理交联方法制备了结冷胶 (GG)/透明质酸 (HA) 水凝胶。通过形成 GG 和 HA 的不同组成来控制物理化学和机械性能。通过进行质量溶胀研究、溶胶分数研究、失重试验、粘度测试、注射力研究、压缩试验和应力松弛分析来进行表征。通过进行形态学研究、增殖试验、活/死分析、组织学、免疫荧光染色和基因表达研究来评估包封在 3D 构建体中的细胞的生物活性,以确定最适合视网膜 TE 生物材料的材料。具有适量 HA 的水凝胶显示出适合注入视网膜的改善的物理化学和机械性能。此外,当负载适量的 HA 时,GG/HA 水凝胶的时变应力松弛特性得到增强。此外,在快速松弛水凝胶中,GG/HA 水凝胶的体外实验细胞相容性得到了显著改善。总体而言,这些结果表明 GG/HA 水凝胶作为用于视网膜 TE 的可注射水凝胶具有显著的潜力,并且在设计视网膜 TE 水凝胶时,应力松弛特性非常重要。因此,我们相信 GG/HA 水凝胶是视网膜 TE 生物材料的有前途的候选物。