Tunable gelatin methacrylate polyethylene glycol diacrylate hydrogels for cell mechanosensing applications

Eya Ferchichi, Samuel T Stealey, Paige Bogert, S. Zustiak
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Abstract

Three-dimensional (3D) tissue-engineered scaffolds mimic the physiological environment of cells by providing essential structural support, biochemical cues, and the mechanical strength needed for cell adhesion, proliferation, migration, and differentiation. Hydrogels like polyethylene glycol diacrylate (PEGDA) are commonly used biomaterials for cell culture due to their affordability, tunable stiffness, and ability to efficiently transport nutrients and gases. However, PEGDA lacks cell adhesion sites essential for cell proliferation and migration and has limited degradability. Methacrylated gelatin (GelMA) produced from denatured bovine collagen, crosslinks under ultraviolet light (UV) resulting in a degradable hydrogel with cell adhesion sites. Here, we synthesized GelMA with variable degree of methacrylation and crosslinked it with PEGDA to produce cell scaffolds with independently tunable mechanical and biochemical properties by varying the ratios of the two polymers. We determined polymer ratios that resulted in scaffolds with different mechanical properties but the same gelatin concentrations (providing cell adhesion and degradation sites) as well as different gelatin concentrations but the same mechanical properties. With the developed scaffold library, we further used a design of experiments approach to probe the parameter space and perform detailed analysis on chemical composition-scaffold properties as well as scaffold properties-cell behavior correlations. Our findings showed that hydrogel properties such as modulus, swelling, pore size, and permeability, strongly depended on total polymer concentration and not on the GelMA fraction. GelMA significantly influenced cell spreading, while addition of any amount of PEGDA delayed cell spreading significantly. We suggest that such analysis will broaden the utility of the GelMA/PEGDA hydrogels, presenting a versatile platform for mechanosensing research in 3D environments.
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用于细胞机械传感应用的可调明胶甲基丙烯酸聚乙二醇二丙烯酸酯水凝胶
三维(3D)组织工程支架通过提供细胞粘附、增殖、迁移和分化所需的基本结构支持、生化线索和机械强度,模拟细胞的生理环境。聚乙二醇二丙烯酸酯(PEGDA)等水凝胶因其价格低廉、硬度可调、能有效运输营养物质和气体而成为细胞培养常用的生物材料。然而,PEGDA 缺乏细胞增殖和迁移所必需的细胞粘附点,而且降解性有限。甲基丙烯酸明胶(GelMA)由变性牛胶原蛋白制成,在紫外线(UV)照射下会发生交联,从而形成具有细胞粘附位点的可降解水凝胶。在这里,我们合成了具有不同甲基丙烯酸化程度的 GelMA,并将其与 PEGDA 交联,通过改变两种聚合物的比例,生产出具有独立可调机械和生化特性的细胞支架。我们确定了两种聚合物的比例,从而得到了机械性能不同但明胶浓度相同(提供细胞粘附和降解位点)的支架,以及明胶浓度不同但机械性能相同的支架。利用所开发的支架库,我们进一步采用实验设计方法探索参数空间,并对化学成分-支架特性以及支架特性-细胞行为相关性进行了详细分析。我们的研究结果表明,水凝胶的特性(如模量、膨胀、孔径和渗透性)在很大程度上取决于聚合物的总浓度,而与 GelMA 的组分无关。GelMA 对细胞扩散有明显影响,而添加任何数量的 PEGDA 都会明显延迟细胞扩散。我们认为这种分析将扩大 GelMA/PEGDA 水凝胶的用途,为三维环境中的机械传感研究提供一个多功能平台。
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