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3D-Printed pHEMA Materials for Topographical and Biochemical Modulation of Dorsal Root Ganglion Cell Response

机译:3D印刷的PHEMA材料,用于背根神经节细胞应答的地形和生化调节

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Understanding and controlling the interactions occurring between cells and engineered materials are central challenges toward progress in the development of biomedical devices. In this work, we describe materials for direct ink writing (DIW), an extrusion-based type of 3D printing, that embed a custom synthetic protein (RGD-PDL) within the microfilaments of 3D-hydrogel scaffolds to modify these interactions and differentially direct tissue-level organization of complex cell populations in vitro. The RGD-PDL is synthesized by modifying poly-D-lysine (PDL) to varying extents with peptides containing the integrin-binding motif Arg-Gly-Asp (RGD). Compositional gradients of the RGD-PDL presented by both patterned and thin-film poly(2-hydroxyethyl) methacrylate (pHEMA) substrates allow the patterning of cell-growth compliance in a grayscale form. The surface chemistry-dependent guidance of cell growth on the RGD-PDL-modified pHEMA materials is demonstrated using a model NIH-3T3 fibroblast cell line. The formation of a more complex cellular system-organotypic primary murine dorsal root ganglion (DRG)-in culture is also achieved on these scaffolds, where distinctive forms of cell growth and migration guidance are seen depending on their RGD-PDL content and topography. This experimental platform for the study of physicochemical factors on the formation and the reorganization of organotypic cultures offers useful capabilities for studies in tissue engineering, regenerative medicine, and diagnostics.
机译:理解和控制细胞和工程材料之间发生的相互作用是对生物医学设备发展进展的中心挑战。在这项工作中,我们描述了用于直接墨水写入(DIW)的材料,挤出基3D打印,在3D水凝胶支架的微细丝内嵌入定制合成蛋白(RGD-PDL),以改变这些相互作用和差异直接体外复杂细胞群组织级组织。通过将聚-D-赖氨酸(PDL)改性聚-D-Lysine(PDL)与含有整合蛋白结合基氨酸氨基甲基甲糖(RGD)的肽的不同范围来合成RGD-PDL。由图案化和薄膜聚(2-羟乙基)甲基丙烯酸酯(PHEMA)底物呈现的RGD-PDL的组成梯度允许以灰度形式的细胞生长符合性进行图案化。使用型号NIH-3T3成纤维细胞系来证明了RGD-PDL改性的PHEMA材料对细胞生长的表面化学依赖性指导。在这些支架上还实现了更复杂的细胞系统 - 有机型初级鼠背根神经节(DRG)-IN培养物的形成,其中根据其RGD-PDL含量和形貌,可以看到独特形式的细胞生长和迁移引导。该实验平台研究了对组织工程,再生医学和诊断的研究提供了有用的研究能力。

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