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Micro-injection molded, poly(vinyl alcohol)-calcium salt templates for precise customization of 3D hydrogel internal architecture

机译:微注塑成型,聚(乙烯醇) - 用于精确定制3D水凝胶内部架构的盐模板

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摘要

In tissue engineering applications, sacrificial molding of hydrogel monoliths is a versatile technique for creating 3D molds to control tissue morphology. Previous sacrificial templates fabricated by serial processes such as solvent casting and thermal extrusion/fiber drawing can be used to effectively mold internal geometries within rapidly polymerizing, bulk curing hydrogels. However, they display poorer performance in controlling the geometry of diffusion limited, ionically cross-linked hydrogels, such as alginate. Here, we describe the use of poly(vinyl alcohol)-calcium salt templates (PVOH-Ca) fabricated by micro-injection molding, a parallel mass-production process, to conveniently cast internal geometries within both bulk curing hydrogels and ionically cross-linked alginate hydrogels. Calcium salt solubility was discovered to be a critical factor in optimizing the polymer composite's manufacturability, mechanical properties, and the quantity of calcium released upon template dissolution. Metrological and computed tomography (CT) analysis showed that the template's calcium release enables precise casting of microscale channel geometries within alginate hydrogels (6.4 +/- 7.2% average error). Assembly of modular PVOH-Ca templates to mold 3D channel networks within alginate hydrogels is presented to demonstrate engineering scalability. Moreover, the platform is used to create hydrogel molds for engineering human embryonic stem cell (hESC)-derived neuroepithelial organoids of a microscale, biomimetic cylindrical morphology. Thus, injection molded PVOH-Ca templates facilitate customization of hydrogel sacrificial molding, which can be used to generate 3D hydrogels with complex internal microscale architecture for diverse tissue engineering applications.
机译:在组织工程应用中,水凝胶整料的牺牲模塑是一种用于创造3D模具以控制组织形态的通用技术。通过诸如溶剂铸造和热挤出/纤维拉伸的连续方法制造的先前牺牲模板可用于有效地模塑内部几何形状,在快速聚合,散装固化水凝胶中。然而,它们在控制扩散有限的几何形状,离子交联的水凝胶等较差的性能下显示较差的性能,例如藻酸盐。这里,我们描述了通过微注射成型,平行的大规模生产过程制造的聚(乙烯醇) - 钙盐模板(PVOH-CA),以方便地在散装固化水凝胶中方便地浇铸内部几何形状并离子交联海藻酸盐水凝胶。发现钙盐溶解度是优化聚合物复合材料的可制造性,机械性能和在模板溶解时释放的钙的量的关键因素。计量和计算断层扫描(CT)分析表明,模板的钙释放能够精确地铸造藻酸盐水凝胶中的微观通道几何形状(6.4 +/- 7.2%误差)。提出了模块化PVOH-CA模板的组装到藻酸盐水凝胶中的模具3D通道网络,以展示工程可扩展性。此外,该平台用于制造用于工程人类胚胎干细胞(HESC)的水凝胶模具 - 微尺寸的微观圆柱形形态的神经上皮细胞体。因此,注塑的PVOH-CA模板促进了水凝胶牺牲模塑的定制,其可用于产生具有复杂内部微观架构的3D水凝胶,用于各种组织工程应用。

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