三维打印空间功能化骨软骨组织工程支架的制备。

Journal of biological methods Pub Date : 2021-03-22 eCollection Date: 2021-01-01 DOI:10.14440/jbm.2021.353
Paula Camacho, Matthew Fainor, Kelly B Seims, John W Tolbert, Lesley W Chow
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引用次数: 4

摘要

生物可降解聚合物的三维(3D)打印已迅速成为组织工程中制造支架的一种流行方法。该技术能够制造复杂的结构和高分辨率的多个组件的逐层空间控制。所得到的支架还可以在表面呈现不同的化学基团或生物活性线索,以指导细胞行为。然而,表面功能化通常包括一个或多个后处理步骤,这通常会产生具有均匀分布的化学物质的生物材料,无法模仿天然组织中的生化组织。作为替代方案,我们的实验室开发了一种新颖的方法,将溶剂铸造3D打印与肽聚合物偶联物相结合,在单个支架中空间呈现多种生化线索,而无需制作后修改。在这里,我们描述了一种详细的、逐步的方案来制造肽功能化支架,并表征了它们的物理结构和生化空间组织。我们使用这些3d打印支架通过控制促软骨肽和促骨肽的空间呈现来指导人间充质干细胞分化和骨软骨组织形成。该方案还描述了如何种子支架和评估由肽组织驱动的基质沉积。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Fabricating spatially functionalized 3D-printed scaffolds for osteochondral tissue engineering.

Fabricating spatially functionalized 3D-printed scaffolds for osteochondral tissue engineering.

Fabricating spatially functionalized 3D-printed scaffolds for osteochondral tissue engineering.

Fabricating spatially functionalized 3D-printed scaffolds for osteochondral tissue engineering.

Three-dimensional (3D) printing of biodegradable polymers has rapidly become a popular approach to create scaffolds for tissue engineering. This technique enables fabrication of complex architectures and layer-by-layer spatial control of multiple components with high resolution. The resulting scaffolds can also present distinct chemical groups or bioactive cues on the surface to guide cell behavior. However, surface functionalization often includes one or more post-fabrication processing steps, which typically produce biomaterials with homogeneously distributed chemistries that fail to mimic the biochemical organization found in native tissues. As an alternative, our laboratory developed a novel method that combines solvent-cast 3D printing with peptide-polymer conjugates to spatially present multiple biochemical cues in a single scaffold without requiring post-fabrication modification. Here, we describe a detailed, stepwise protocol to fabricate peptide-functionalized scaffolds and characterize their physical architecture and biochemical spatial organization. We used these 3D-printed scaffolds to direct human mesenchymal stem cell differentiation and osteochondral tissue formation by controlling the spatial presentation of cartilage-promoting and bone-promoting peptides. This protocol also describes how to seed scaffolds and evaluate matrix deposition driven by peptide organization.

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