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首页> 外文期刊>Journal of biomedical materials research, Part A >A multilayered scaffold for regeneration of smooth muscle and connective tissue layers
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A multilayered scaffold for regeneration of smooth muscle and connective tissue layers

机译:用于再生光滑肌肉和结缔组织层的多层脚手架

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Tissue regeneration often requires recruitment of different cell types and rebuilding of two or more tissue layers to restore function. Here, we describe the creation of a novel multilayered scaffold with distinct fiber organizations-aligned to unaligned and dense to porous-to template common architectures found in adjacent tissue layers. Electrospun scaffolds were fabricated using a biodegradable, tyrosine-derived terpolymer, yielding densely-packed, aligned fibers that transition into randomly-oriented fibers of increasing diameter and porosity. We demonstrate that differently-oriented scaffold fibers direct cell and extracellular matrix (ECM) organization, and that scaffold fibers and ECM protein networks are maintained after decellularization. Smooth muscle and connective tissue layers are frequently adjacent in vivo; we show that within a single scaffold, the architecture supports alignment of contractile smooth muscle cells and deposition by fibroblasts of a meshwork of ECM fibrils. We rolled a flat scaffold into a tubular construct and, after culture, showed cell viability, orientation, and tissue-specific protein expression in the tube were similar to the flat-sheet scaffold. This scaffold design not only has translational potential for reparation of flat and tubular tissue layers but can also be customized for alternative applications by introducing two or more cell types in different combinations.
机译:组织再生通常需要招募不同类型的细胞,并重建两个或更多组织层以恢复功能。在这里,我们描述了一种新型多层支架的创建,该支架具有不同的纤维组织,这些纤维组织与相邻组织层中发现的常见结构对齐,从致密到多孔。电纺支架是用一种可生物降解的酪氨酸衍生三元共聚物制成的,可产生密集排列的纤维,这些纤维转变为直径和孔隙率增加的随机取向纤维。我们证明了不同取向的支架纤维指导细胞和细胞外基质(ECM)的组织,脱细胞后支架纤维和ECM蛋白质网络得以维持。在体内,平滑肌和结缔组织层经常是相邻的;我们发现,在单个支架内,该结构支持收缩平滑肌细胞的排列,并支持成纤维细胞沉积ECM纤维网。我们将一个平面支架卷成管状结构,培养后,显示细胞活力、方向和管中的组织特异性蛋白表达与平板支架相似。这种支架设计不仅具有修复扁平和管状组织层的平移潜力,还可以通过以不同组合引入两种或多种细胞类型来定制替代应用。

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