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滑动接触加载增强了骨髓间充质干细胞水凝胶的拉伸性能。

Sliding contact loading enhances the tensile properties of mesenchymal stem cell-seeded hydrogels.

机构信息

McKay Orthopaedic Research Laboratory, Department of Orthopaedic Surgery, University of Pennsylvania, Philadelphia, PA 19104, USA.

出版信息

Eur Cell Mater. 2012 Jul 12;24:29-45. doi: 10.22203/ecm.v024a03.

Abstract

The primary goal of cartilage tissue engineering is to recapitulate the functional properties and structural features of native articular cartilage. While there has been some success in generating near-native compressive properties, the tensile properties of cell-seeded constructs remain poor, and key features of cartilage, including inhomogeneity and anisotropy, are generally absent in these engineered constructs. Therefore, in an attempt to instill these hallmark properties of cartilage in engineered cell-seeded constructs, we designed and characterized a novel sliding contact bioreactor to recapitulate the mechanical stimuli arising from physiologic joint loading (two contacting cartilage layers). Finite element modeling of this bioreactor system showed that tensile strains were direction-dependent, while both tensile strains and fluid motion were depth-dependent and highest in the region closest to the contact surface. Short-term sliding contact of mesenchymal stem cell (MSC)-seeded agarose improved chondrogenic gene expression in a manner dependent on both the axial strain applied and transforming growth factor-β supplementation. Using the optimized loading parameters derived from these short-term studies, long-term sliding contact was applied to MSC-seeded agarose constructs for 21 d. After 21 d, sliding contact significantly improved the tensile properties of MSC-seeded constructs and elicited alterations in type II collagen and proteoglycan accumulation as a function of depth; staining for these matrix molecules showed intense localization in the surface regions. These findings point to the potential of sliding contact to produce engineered cartilage constructs that begin to recapitulate the complex mechanical features of the native tissue.

摘要

软骨组织工程的主要目标是复制天然关节软骨的功能特性和结构特征。虽然在生成接近天然压缩特性方面已经取得了一些成功,但细胞接种构建体的拉伸特性仍然很差,软骨的关键特征,包括非均质性和各向异性,通常不存在于这些工程构建体中。因此,为了在工程细胞接种构建体中引入软骨的这些标志性特性,我们设计并表征了一种新颖的滑动接触生物反应器,以再现来自生理关节负载的机械刺激(两个接触的软骨层)。该生物反应器系统的有限元建模表明,拉伸应变具有各向异性,而拉伸应变和流体运动均具有深度依赖性,在最接近接触表面的区域最高。短期的间充质干细胞(MSC)-接种琼脂糖的滑动接触以依赖于施加的轴向应变和转化生长因子-β补充的方式改善了软骨形成基因表达。使用这些短期研究得出的优化加载参数,对 MSC 接种琼脂糖构建体进行了 21 天的长期滑动接触。21 天后,滑动接触显著改善了 MSC 接种构建体的拉伸性能,并根据深度改变了 II 型胶原和蛋白聚糖的积累;这些基质分子的染色显示出在表面区域的强烈定位。这些发现表明滑动接触具有产生开始复制天然组织复杂机械特征的工程软骨构建体的潜力。

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