Meinig School of Biomedical Engineering, Cornell University, Ithaca, NY, 14850, USA.
Department of Materials Science and Engineering, Cornell University, Ithaca, NY, 14853, USA.
Adv Healthc Mater. 2019 Apr;8(7):e1800806. doi: 10.1002/adhm.201800806. Epub 2018 Dec 10.
Tissue-engineered menisci hold promise as an alternative to allograft procedures but require a means of robust fixation to the native bone. The insertion of the meniscus into bone is critical for meniscal function and inclusion of a soft tissue-to-bone interface in a tissue engineered implant can aid in the fixation process. The native insertion is characterized by gradients in composition, tissue architecture, and cellular phenotype, which are all difficult to replicate. In this study, a soft tissue-to-bone interface is tissue engineered with a cellular gradient of fibrochondrocytes and mesenchymal stem cells and subjected to a biochemical gradient through a custom media diffusion bioreactor. These constructs, consisting of interpenetrating collagen and boney regions, display improved mechanical performance and collagen organization compared to controls without a cellular or chemical gradient. Media gradient exposure produces morphological features in the constructs that appear similar to the native tissue. Collectively, these data show that cellular and biochemical gradients improve integration between collagen and bone in a tissue engineered soft tissue-to-bone construct.
组织工程半月板有望成为异体移植物手术的替代方法,但需要一种与天然骨牢固固定的方法。半月板插入到骨中的位置对于半月板的功能至关重要,而在组织工程植入物中包含软组织到骨的界面可以有助于固定过程。天然的插入部位具有组成、组织架构和细胞表型的梯度,这些梯度都难以复制。在这项研究中,通过定制的介质扩散生物反应器,使用纤维软骨细胞和间充质干细胞的细胞梯度组织工程化软组织到骨的界面,并通过该生物反应器施加生化梯度。与没有细胞或化学梯度的对照相比,这些由互穿胶原和骨区域组成的构建体显示出更好的机械性能和胶原组织。介质梯度暴露会使构建体产生类似于天然组织的形态特征。总的来说,这些数据表明细胞和生化梯度可改善组织工程软组织到骨构建体中胶原和骨之间的整合。