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An integrated manufacturing strategy to fabricate delivery system using gelatin/alginate hybrid hydrogels: 3D printing and freeze-drying

机译:使用明胶/藻酸盐杂交水凝胶制备递送系统的综合制造策略:3D印刷和冷冻干燥

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摘要

The extrusion-based 3D printing system was used to fabricate the bioscaffold with hybrid hydrogels of gelatin and alginate (G/A), with different total solid concentrations (3%, 5%, and 7%) and G/A ratios (1:2, 1:1, and 2:1). Rheological properties were related to the 3D printability and shape retention capacity of the hybrid hydrogels. For extrusion-based 3D printing using the current platform, the materials that were considered 3D printable showed shear-thinning flow behavior. Also, the printable materials demonstrated a storage modulus (G') higher than the loss modulus (G('')), with a loss factor (tan delta = G('')/G') in the range of 0.48-0.58 during the frequency sweep of 15-40 rad/s, which is the corresponding frequency that can be related to our 3D printing settings. Texture profile analysis indicated that among the optimal formulas for 3D printing, the bioscaffold fabricated with the hybrid gels of 7% 1:2 G/A had the highest hardness and adhesiveness. After freeze-drying, the hardness increased significantly (p 0.05). The 3D printed bioscaffold was also freeze-dried to extend the shelf life and enhance the mechanical properties of the fabricated structure, moisture content, and water activity reduced significantly after freeze-drying. The scanning electron microscopy (SEM) results demonstrated that the 3D printed scaffolds had porous structures, which has the potential to encapsulate and deliver other bioactive compounds, such as enzymes, vitamins, antioxidants, and probiotics.
机译:基于挤出的3D印刷系统用于用明胶和藻酸盐(G / A)的杂交水凝胶制造生物膦晶体,不同的总固体浓度(3%,5%和7%)和G / A比率(1: 2,1:1和2:1)。流变性质与杂合水凝胶的3D印刷性和形状保持能力有关。对于使用当前平台的基于挤出的3D印刷,所考虑的3D可印刷的材料显示出剪切变薄流动行为。此外,可打印材料显示比损耗模量高的存储模量(G')(G('')),损耗因子(Tan delta = g(')/ g')在0.48-0.58的范围内在15-40 rad / s的频率扫描期间,这是与我们的3D打印设置有关的相应频率。纹理谱分析表明,在3D打印的最佳公式中,用7%1:2g / a的杂交凝胶制造的Bioscaff形状具有最高的硬度和粘合性。冷冻干燥后,硬度显着增加(P <0.05)。在冷冻干燥后,3D印刷的BioscaffOld也会冷冻干燥以延长制备结构,水分含量,水分含量,水活的机械性能。扫描电子显微镜(SEM)结果表明,3D印刷支架具有多孔结构,其具有封装和递送其他生物活性化合物,例如酶,维生素,抗氧化剂和益生菌。

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