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Organized nanofibrous scaffolds that mimic the macroscopic and microscopic architecture of the knee meniscus

机译:模仿膝盖半月板的宏观和微观结构的有组织的纳米纤维支架

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摘要

The menisci are crescent-shaped fibrocartilaginous tissues whose structural organization consists of dense collagen bundles that are locally aligned but show a continuous change in macroscopic directionality. This circumferential patterning is necessary for load transmission across the knee joint and is a key design parameter for tissue engineered constructs. To address this issue we developed a novel electrospinning method to produce scaffolds composed of circumferentially aligned (CircAl) nanofibers, quantified their structure and mechanics, and compared them with traditional linearly aligned (LinAl) scaffolds. Fibers were locally oriented in CircAl scaffolds, but their orientation varied considerably as a function of position (P < 0.05). LinAl fibers did not change in orientation over a similar length scale (P > 0.05). Cell seeding of CircAl scaffolds resulted in a similar cellular directionality. Mechanical analysis of CircAl scaffolds revealed significant interactions between scaffold length and region (P < 0.05), with the tensile modulus near the edge of the scaffolds decreasing with increasing scaffold length. No such differences were detected in LinAl specimens (P > 0.05). Simulation of the fiber deposition process produced "theoretical" fiber populations that matched the fiber organization and mechanical properties observed experimentally. These novel scaffolds, with spatially varying local orientations and mechanics, will enable the formation of functional anatomic meniscus constructs.
机译:半月板是月牙形的纤维软骨组织,其结构组织由致密的胶原束组成,这些束在局部排列但在宏观方向上显示出连续的变化。这种圆周图案对于跨膝关节的载荷传递是必需的,并且是组织工程构造的关键设计参数。为了解决这个问题,我们开发了一种新颖的静电纺丝方法来生产由圆周排列的(CircAl)纳米纤维组成的支架,量化其结构和力学,并将其与传统的线性排列的(LinAl)支架进行比较。纤维在CircAl支架中局部取向,但它们的取向随位置而变化很大(P <0.05)。在相似的长度范围内,LinAl纤维的取向没有变化(P> 0.05)。 CircAl支架的细胞接种导致相似的细胞方向性。 CircAl支架的力学分析显示,支架长度与区域之间存在显着的相互作用(P <0.05),支架边缘附近的拉伸模量随支架长度的增加而降低。在LinAl标本中未检测到此类差异(P> 0.05)。纤维沉积过程的模拟产生了“理论”纤维种群,其与实验观察到的纤维组织和机械性能相匹配。这些新颖的支架具有在空间上变化的局部方向和力学,将能够形成功能性解剖半月板构造。

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