首页> 外文会议>ASME Bioengineering Conference >ENGINEERING MENISCUS FORM AND FUNCTION VIA MULTI-LAYER CELL-SEEDED NANOFIBROUS SCAFFOLDS WITH CIRCUMFERENTIALLY ALIGNED FIBERS
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ENGINEERING MENISCUS FORM AND FUNCTION VIA MULTI-LAYER CELL-SEEDED NANOFIBROUS SCAFFOLDS WITH CIRCUMFERENTIALLY ALIGNED FIBERS

机译:通过多层细胞播种纳米纤维支架与圆周取向纤维的工程弯月面和功能

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The menisci are crescent-shaped fibrocartilaginous tissues which function to transmit and distribute complex loading patterns between the femur and tibia of the knee joint. Meniscus function in tension arises from highly aligned collagen fibers which run in a circumferential manner between insertion sites on the tibial plateau (1,2). However, the meniscus is often injured, and partial removal of the meniscus represents the most commonly performed orthopaedic surgery, despite the fact that its removal increases the likelihood of osteoarthritis in the long-term (3). Tissue engineered scaffolds have emerged as a promising alternative to replace portions of the damaged meniscus (4). Toward replacement, we have developed aligned nanofibrous scaffolds that can recapitulate the mechanical anisotropy of the meniscus (5,6). More recently, we have developed an approach to replicate the circumferential macroscopic orientation of fibers using a novel electrospinning method (7). However, these organized scaffolds are relatively thin (<1 mm), and so multilayer scaffolds will be required to replicate the anatomic size of the native tissue. Moreover, cellular interactions will be crucial to the long-term function of these scaffolds. Thus, the objective of this study was to evaluate the morphological characteristics and mechanical properties of single layer and multilayer circumferentially aligned (CircAl) scaffolds seeded with mesenchymal stem cells (MSCs) and to compare them to scaffolds featuring linearly aligned (LinAL) fibers. We hypothesized that with increasing time in culture, matrix formed between layers would provide mechanical reinforcement, particularly in CircAl scaffolds where fiber rotation would be more likely to occur.
机译:Menisci是新月形纤维纤维状组织,其在膝关节的股骨和胫骨之间传递和分配复杂的装载模式。狭窄的椎间盘功能来自高度对齐的胶原纤维,在胫骨平台上的插入位点之间以圆周方式运行(1,2)。然而,弯月面往往受伤,并且部分去除半月板代表最常见的矫形外科手术,尽管其去除增加了长期(3)中的骨关节炎的可能性。组织工程的支架已经出现为替代损坏的弯月面(4)的部分替代方案。朝来更换,我们开发了对齐的纳米纤维支架,可以重新延长弯月面(5,6)的机械各向异性。最近,我们开发了一种使用新颖的静电纺丝方法(7)复制纤维的周向宏观取向的方法。然而,这些有组织的支架相对较薄(<1mm),因此需要多层支架来复制天然组织的解剖学尺寸。此外,细胞相互作用对这些支架的长期功能至关重要。因此,本研究的目的是评估单层的形态特性和机械性能,周向对准(昼夜)支架围绕间充质干细胞(MSC),并将它们与具有线性排列(Linal)纤维的支架进行比较。我们假设随着培养的增加,在层之间形成的基质将提供机械加强,特别是在纤维旋转的气体支架中更容易发生机械加固。

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