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A Modular Approach to Creating Large Engineered Cartilage Surfaces

机译:创建大型工程软骨表面的模块化方法

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摘要

Native articular cartilage has limited capacity to repair itself from focal defects or osteoarthritis. Tissue engineering has provided a promising biological treatment strategy that is currently being evaluated in clinical trials. However, current approaches in translating these techniques to developing large engineered tissues remains a significant challenge. In this study, we present a method for developing large-scale engineered cartilage surfaces through modular fabrication. Modular Engineered Tissue Surfaces (METS) uses the well-known, but largely under-utilized self-adhesion properties of de novo tissue to create large scaffolds with nutrient channels. Compressive mechanical properties were evaluated throughout METS specimens, and the tensile mechanical strength of the bonds between attached constructs was evaluated over time. Raman spectroscopy, biochemical assays, and histology were performed to investigate matrix distribution. Results showed that by Day 14, stable connections had formed between the constructs in the METS samples. By Day 21, bonds were robust enough to form a rigid sheet and continued to increase in size and strength over time. Compressive mechanical properties and glycosaminoglycan (GAG) content of METS and individual constructs increased significantly over time. The METS technique builds on established tissue engineering accomplishments of developing constructs with GAG composition and compressive properties approaching native cartilage. This study demonstrated that modular fabrication is a viable technique for creating large-scale engineered cartilage, which can be broadly applied to many tissue engineering applications and construct geometries.
机译:天然关节软骨修复自身缺陷的能力有限。组织工程学提供了一种有前途的生物治疗策略,目前正在临床试验中对其进行评估。但是,当前将这些技术转化为大的工程组织的方法仍然是一个重大挑战。在这项研究中,我们提出了一种通过模块化制造来开发大规模工程软骨表面的方法。模块化工程组织表面(METS)使用从头开始的众所周知但在很大程度上未充分利用的自粘特性来创建具有营养通道的大型支架。在整个METS样品中评估了压缩机械性能,并随时间评估了附着结构之间的结合强度。进行拉曼光谱,生化测定和组织学以研究基质分布。结果表明,到第14天,METS样品中的构建体之间已形成稳定的连接。到第21天,粘合力已经足够坚固到可以形成刚性片材,并且尺寸和强度会随着时间不断增加。随着时间的推移,METS和单个构建体的压缩机械性能和糖胺聚糖(GAG)含量显着增加。 METS技术建立在已开发的组织工程技术基础之上,该技术已开发出具有GAG成分和接近天然软骨的压缩特性的构建体。这项研究表明模块化制造是创建大规模工程软骨的可行技术,可以广泛应用于许多组织工程应用和构建几何体。

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