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Tissue engineering bone-ligament complexes using fiber-guiding scaffolds.

机译:使用纤维引导支架的组织工程骨-韧带复合物。

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Regeneration of bone-ligament complexes destroyed due to disease or injury is a clinical challenge due to complex topologies and tissue integration required for functional restoration. Attempts to reconstruct soft-hard tissue interfaces have met with limited clinical success. In this investigation, we manufactured biomimetic fiber-guiding scaffolds using solid free-form fabrication methods that custom fit complex anatomical defects to guide functionally-oriented ligamentous fibers in vivo. Compared to traditional, amorphous or random-porous polymeric scaffolds, the use of perpendicularly oriented micro-channels provides better guidance for cellular processes anchoring ligaments between two distinct mineralized structures. These structures withstood biomechanical loading to restore large osseous defects. Cell transplantation using hybrid scaffolding constructs with guidance channels resulted in predictable oriented fiber architecture, greater control of tissue infiltration, and better organization of ligament interface than random scaffold architectures. These findings demonstrate that fiber-guiding scaffolds drive neogenesis of triphasic bone-ligament integration for a variety of clinical scenarios.
机译:由于疾病或损伤而破坏的骨韧带复合物的再生是临床挑战,这归因于功能恢复所需的复杂拓扑结构和组织整合。重建软硬组织界面的尝试在临床上取得了有限的成功。在这项研究中,我们使用固体自由形式的制造方法制造了仿生纤维引导支架,该方法可定制适合复杂的解剖缺陷以在体内引导功能性定向韧带纤维。与传统的无定形或无孔聚合物支架相比,垂直取向的微通道的使用为在两个不同矿化结构之间固定韧带的细胞过程提供了更好的指导。这些结构经受住了生物力学载荷以恢复大的骨缺损。与随机支架结构相比,使用具有引导通道的混合支架结构的细胞移植导致可预测的定向纤维结构,对组织浸润的更好控制以及韧带界面的更好组织。这些发现表明,在多种临床情况下,导纤维支架可驱动三相骨-韧带整合的新生。

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