首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Sacrificial nanofibrous composites provide instruction without impediment and enable functional tissue formation
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Sacrificial nanofibrous composites provide instruction without impediment and enable functional tissue formation

机译:牺牲性纳米纤维复合材料可提供无障碍的指导并能形成功能性组织

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摘要

The fibrous tissues prevalent throughout the body possess an ordered structure that underlies their refined and robust mechanical properties. Engineered replacements will require recapitulation of this exquisite architecture in three dimensions. Aligned nanofibrous scaffolds can dictate cell and matrix organization; however, their widespread application has been hindered by poor cell infiltration due to the tight packing of fibers during fabrication. Here, we develop and validate an enabling technology in which tunable composite nanofibrous scaffolds are produced to provide instruction without impediment. Composites were formed containing two distinct fiber fractions: slow-degrading poly(ε-caprolactone) and water-soluble, sacrificial poly(ethylene oxide), which can be selectively removed to increase pore size. Increasing the initial fraction of sacrificial poly(ethylene oxide) fibers enhanced cell infiltration and improved matrix distribution. Despite the removal of >50% of the initial fibers, the remaining scaffold provided sufficient instruction to align cells and direct the formation of a highly organized ECM across multiple length scales, which in turn led to pronounced increases in the tensile properties of the engineered constructs (nearly matching native tissue). This approach transforms what is an interesting surface phenomenon (cells on top of nanofibrous mats) into a method by which functional, 3D tissues (>1 mm thick) can be formed, both in vitro and in vivo. As such, this work represents a marked advance in the engineering of load-bearing fibrous tissues, and will find widespread applications in regenerative medicine.
机译:遍布全身的纤维组织具有有序的结构,这些结构是其精致而坚固的机械性能的基础。工程替代产品将需要在三个维度上对这种精致的架构进行概括。对齐的纳米纤维支架可以决定细胞和基质的组织。然而,由于在制造过程中纤维的紧密堆积,不良的细胞浸润阻碍了它们的广泛应用。在这里,我们开发并验证了一种使能技术,在该技术中,可调谐复合纳米纤维支架被生产出来,以提供无障碍的指导。形成的复合材料包含两种不同的纤维部分:缓慢降解的聚(ε-己内酯)和水溶性的牺牲性聚(环氧乙烷),可以选择性地去除它们以增加孔径。牺牲性聚环氧乙烷纤维的初始分数增加可增强细胞浸润并改善基质分布。尽管除去了> 50%的初始纤维,其余的支架仍提供了足够的指导来对齐细胞并指导跨多个长度尺度的高度组织化的ECM的形成,进而导致工程构建体的拉伸性能显着提高(几乎匹配的天然组织)。这种方法将有趣的表面现象(纳米纤维垫顶部的细胞)转变为一种可以在体外和体内形成功能性3D组织(厚度大于1毫米)的方法。因此,这项工作代表了承重纤维组织工程的显着进步,并将在再生医学中得到广泛应用。

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