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首页> 外文期刊>Journal of biomedical materials research, Part A >Design of a multiphase osteochondral scaffold III: Fabrication of layered scaffolds with continuous interfaces
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Design of a multiphase osteochondral scaffold III: Fabrication of layered scaffolds with continuous interfaces

机译:多相骨软骨支架的设计III:具有连续界面的分层支架的制造

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摘要

There is a need to improve current treatments for articular cartilage injuries. This article is the third in a series describing the design and development of an osteochondral scaffold based on collagen-glycosaminoglycan and calcium phosphate technologies for regenerative repair of articular cartilage defects. The previous articles in this series described methods for producing porous, threedimensional mineralized collagen-GAG (CGCaP) scaffolds whose composition can be reproducibly varied to mimic the composition of subchondral bone, and pore microstructure and mineral phase can be modified. This article describes a method, "liquid-phase cosynthesis," that enables the production of porous, layered scaffolds that mimic the composition and structure of articular cartilage on one side, subchondral bone on the other side, and the continuous, gradual or "soft" interface between these tissues: the tidemark of articular joints. This design enables the layered scaffolds to be inserted into the subchondral bone at an osteochondral defect site without the need for sutures, glue, or screws, with a highly interconnected porous network throughout the entire osteochondral defect. Moreover, the differential moduli of the osseous and cartilaginous compartments enable these layered scaffolds to exhibit compressive deformation behavior that mimics the behavior observed in natural articular joints.
机译:需要改善目前对关节软骨损伤的治疗。本文是描述基于胶原-糖胺聚糖和磷酸钙技术的骨软骨支架再生修复关节软骨缺损的设计和开发的系列文章中的第三篇。该系列中的前几篇文章描述了生产多孔,三维矿化胶原蛋白GAG(CGCaP)支架的方法,该支架的组成可以可复制地改变以模仿软骨下骨的组成,并且可以修饰孔的微结构和矿物相。本文介绍了一种“液相共合成”方法,该方法能够生产多孔的分层支架,该支架模仿一侧的关节软骨,另一侧的软骨下骨以及连续,渐进或“柔软”的组成和结构。这些组织之间的界面:关节的潮汐。这种设计使分层支架可以在骨软骨缺损部位插入软骨下骨中,而无需缝合,胶水或螺钉,并且在整个骨软骨缺损中具有高度互连的多孔网络。此外,骨腔和软骨腔的微分模量使这些分层的支架能够表现出压缩变形行为,该行为模仿了在天然关节中观察到的行为。

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