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Spatial Engineering of Osteochondral Tissue Constructs Through Microfluidically Directed Differentiation of Mesenchymal Stem Cells

机译:通过间质干细胞的微流控分化的骨软骨组织结构的空间工程。

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摘要

The development of tissue engineered osteochondral units has been slowed by a number of technical hurdles associated with recapitulating their heterogeneous nature ex vivo. Subsequently, numerous approaches with respect to cell sourcing, scaffolding composition, and culture media formulation have been pursued, which have led to high variability in outcomes and ultimately the lack of a consensus bioprocessing strategy. As such, the objective of this study was to standardize the design process by focusing on differentially supporting formation of cartilaginous and bony matrix by a single cell source in a spatially controlled manner within a single material system. A cell-polymer solution of bovine mesenchymal stem cells and agarose was cast against micromolds of a serpentine network and stacked to produce tissue constructs containing two independent microfluidic networks. Constructs were fluidically connected to two controlled flow loops and supplied with independently tuned differentiation parameters for chondrogenic and osteogenic induction, respectively. Constructs receiving inductive media showed differential gene expression of both chondrogenic and osteogenic markers in opposite directions along the thickness of the construct that was recapitulated at the protein level with respect to collagens I, II, and X. A control group receiving noninductive media showed homogeneous expression of these biomarkers measured in lower concentrations at both the mRNA and protein level. This work represents an important step in the rational design of engineered osteochondral units through establishment of an enabling technology for further optimization of scaffolding formulations and bioprocessing conditions toward the production of commercially viable osteochondral tissue products.
机译:组织工程化骨软骨单元的发展由于与体外概括其异质性有关的许多技术障碍而减慢了速度。随后,已经寻求了关于细胞来源,支架组成和培养基配制的许多方法,这导致了结果的高度可变性并最终缺乏共识性的生物加工策略。因此,本研究的目的是通过集中于单一材料系统中的单个细胞源以空间控制的方式差异支持软骨和骨基质的形成来标准化设计过程。将牛间充质干细胞和琼脂糖的细胞聚合物溶液浇铸在蛇形网络的微模上,并堆叠以产生包含两个独立的微流体网络的组织构建体。将构建体流体连接至两个受控流回路,并分别提供独立调节的分化参数,用于诱导软骨和成骨。接受诱导性培养基的构建体在沿构建体厚度方向相反的方向上显示了成软骨标记和成骨标记物的差异基因表达,相对于胶原蛋白I,II和X在蛋白质水平上有所概括。接受非诱导性培养基的对照组显示均一表达在mRNA和蛋白质水平上都以较低的浓度测量了这些生物标志物。这项工作代表了合理设计工程骨软骨单元的重要一步,该技术的建立是为了进一步优化脚手架配方和生物加工条件,以实现商业上可行的软骨组织产品的生产。

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