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首页> 外文期刊>The Journal of craniofacial surgery >Fabrication of precise cylindrical three-dimensional tissue engineering scaffolds for in vitro and in vivo bone engineering applications.
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Fabrication of precise cylindrical three-dimensional tissue engineering scaffolds for in vitro and in vivo bone engineering applications.

机译:用于体外和体内骨骼工程应用的精密圆柱三维组织工程支架的制造。

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摘要

It is sometimes necessary to form highly porous polymeric tissue engineering scaffolds into various shapes and sizes. Ideally, in these cases, the three-dimensional morphology should be maintained to the outer margins of the scaffold so as to provide optimum function. Many biodegradable polymeric scaffolds are soft and delicate, however, and their poor physical strength presents a challenge when cutting these materials into the required shapes. We describe a simple device that can be used quickly and accurately to cut cylindrical shapes from such delicate polymeric scaffold materials, which maintain their morphological features to the margins of the shapes produced. We demonstrate that the device can be used to create scaffolds with reproducible dimensions having an SD in mass of less then 6%. The in vitro utility of scaffolds cut with the device was established through demonstrating bone marrow-derived cell invasion into fibrin-filled scaffolds that fit precisely into the wells of 24-well plates. We also demonstrate the in vivo utility of precise cylindrically shaped scaffolds by observing rapid bone invasion into 2.4-mm diameter scaffolds that have been placed into drill hole defects in the distal femur of young rats. When scaffolds are filled with fibrin before implantation as part of a bone tissue engineering strategy, less blood fills the defect site and the fibrin is gradually remodeled and replaced by bone. The ability to cut precise cylindrical scaffolds in the millimeter size range has allowed for the creation of a new small animal model that may prove useful for screening tissue engineering scaffolds for further study.
机译:有时有必要将高度多孔的聚合物组织工程支架制成各种形状和大小。理想地,在这些情况下,应将三维形态保持在支架的外边缘以提供最佳功能。然而,许多可生物降解的聚合物支架柔软而细腻,并且当将这些材料切割成所需形状时,其差的物理强度提出了挑战。我们描述了一种简单的设备,该设备可快速,准确地从此类易碎的聚合物支架材料上切割成圆柱形,并保持其形态特征至所产生形状的边缘。我们证明该设备可用于创建具有可重复尺寸的质量为SD小于6%的脚手架。用该装置切割的支架的体外效用是通过证明骨髓衍生的细胞进入纤维蛋白填充的支架中而建立的,该支架恰好适合24孔板的孔。我们还通过观察快速的骨侵入到2.4毫米直径的支架中来证明精确的圆柱形支架的体内效用,该支架已被放置在年轻大鼠股骨远端的钻孔缺损中。当作为骨组织工程策略的一部分在支架植入前用纤维蛋白填充支架时,较少的血液填充缺损部位,并且纤维蛋白逐渐重塑并被骨骼替代。切割毫米尺寸范围内的精确圆柱形支架的能力允许创建新的小动物模型,该模型可能被证明可用于筛选组织工程支架以供进一步研究。

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