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Engineered cartilaginous tubes for tracheal tissue replacement via self-assembly and fusion of human mesenchymal stem cell constructs

机译:工程化软骨管通过人间充质干细胞构建体的自组装和融合来替代气管组织

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摘要

There is a critical need to engineer a neotrachea because currently there are no long-term treatments for tracheal stenoses affecting large portions of the airway. In this work, a modular tracheal tissue replacement strategy was developed. High-cell density, scaffold-free human mesenchymal stem cell-derived cartilaginous rings and tubes were successfully generated through employment of custom designed culture wells and a ring-to-tube assembly system. Furthermore, incorporation of transforming growth factor-β1-delivering gelatin microspheres into the engineered tissues enhanced chondrogenesis with regard to tissue size and matrix production and distribution in the ring- and tube-shaped constructs, as well as luminal rigidity of the tubes. Importantly, all engineered tissues had similar or improved biomechanical properties compared to rat tracheas, which suggests they could be transplanted in a small animal model for airway defects. The modular, bottom up approach used to grow stem cell-based cartilaginous tubes in this report is a promising platform to engineer complex organs (e.g., trachea), with control over tissue size and geometry, and has the potential to be used to generate autologous tissue implants for human clinical applications.
机译:迫切需要对新气管进行工程改造,因为目前尚无影响气道大部分的气管狭窄的长期治疗方法。在这项工作中,开发了模块化的气管组织替代策略。高细胞密度,无支架的人间充质干细胞衍生的软骨环和管是通过使用定制设计的培养孔和环对管组装系统成功生成的。此外,在组织尺寸和基质在环状和管状结构中的产生和分布以及管的管腔刚度方面,将转化生长因子-β1传递明胶微球掺入到工程组织中增强了软骨形成。重要的是,与大鼠气管相比,所有工程组织都具有相似或改善的生物力学特性,这表明可以将它们移植到气道缺损的小型动物模型中。在本报告中,用于生长基于干细胞的软骨管的模块化,自下而上的方法是一个有前途的平台,可对复杂的器官(例如气管)进行工程设计,并控制组织的大小和几何形状,并有可能被用于生成自体的用于人类临床应用的组织植入物。

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