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Controlling Fluid Diffusion and Release through Mixed-Molecular-Weight Poly(ethylene) Glycol Diacrylate (PEGDA) Hydrogels

机译:通过混合分子量的聚(乙二醇)二丙烯酸乙二醇酯(PEGDA)水凝胶控制流体的扩散和释放

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摘要

Due to their inherent ability to swell in the presence of aqueous solutions, hydrogels offer a means for the delivery of therapeutic agents in a range of applications. In the context of designing functional tissue-engineering scaffolds, their role in providing for the diffusion of nutrients to cells is of specific interest. In particular, the facility to provide such nutrients over a prolonged period within the core of a 3D scaffold is a critical consideration for the prevention of cell death and associated tissue-scaffold failure. The work reported here seeks to address this issue via fabrication of hybrid 3D scaffolds with a component fabricated from mixed-molecular-weight hydrogel formulations capable of storing and releasing nutrient solutions over a predetermined time period. To this end, poly(ethylene) glycol diacrylate hydrogel blends comprising mixtures of PEGDA-575 Mw and PEGDA-2000 Mw were prepared via UV polymerization. The effects of addition of the higher-molecular-weight component and the associated photoinitiator concentration on mesh size and corresponding fluid permeability have been investigated by diffusion and release measurements using a Theophylline as an aqueous nutrient model solution. Fluid permeability across the hydrogel films has also been determined using a Rhodamine B solution and associated fluorescence measurements. The results indicate that addition of PEGDA-2000 Mw to PEGDA-575 Mw coupled with the use of a specific photoinitiator concentration provides a means to change mesh size in a hydrogel network while still retaining an overall microporous material structure. The range of mesh sizes created and their distribution in a 3D construct provides for the conditions required for a more prolonged nutrient release profile for tissue-engineering applications.
机译:由于其固有的在水溶液存在下溶胀的能力,水凝胶提供了在一系列应用中递送治疗剂的手段。在设计功能性组织工程支架的背景下,其在提供营养物向细胞扩散中的作用特别令人关注。特别地,在3D支架的核心区域内长时间提供此类营养素的设施是防止细胞死亡和相关的组织支架衰竭的关键考虑因素。本文报道的工作旨在通过制造混合3D支架来解决这个问题,该支架具有由能够在预定时间段内存储和释放营养液的混合分子量水凝胶制剂制成的组件。为此,通过UV聚合制备包含PEGDA-575 Mw和PEGDA-2000 Mw的混合物的聚(乙二醇)二丙烯酸酯水凝胶共混物。通过使用茶碱作为营养模型水溶液的扩散和释放测量研究了添加较高分子量组分和相关的光引发剂浓度对筛孔尺寸和相应的流体渗透性的影响。还使用罗丹明B溶液和相关的荧光测量方法确定了跨水凝胶薄膜的流体渗透性。结果表明,将PEGDA-2000 Mw添加到PEGDA-575 Mw中,再加上使用特定的光引发剂浓度,可提供一种改变水凝胶网络中筛孔大小的方法,同时仍保留整个微孔材料的结构。生成的筛孔尺寸范围及其在3D构造中的分布为组织工程应用提供了更长的养分释放曲线所​​需的条件。

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