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Anatomical region-dependent enhancement of 3-dimensional chondrogenic differentiation of human mesenchymal stem cells by soluble meniscus extracellular matrix

机译:可溶性半月板细胞外基质增强人间充质干细胞三维成软骨分化的解剖学区域依赖性

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摘要

Extracellular matrix (ECM) derived from decellularized tissues has been found to promote tissue neogenesis, most likely mediated by specific biochemical and physical signaling motifs that promote tissue-specific differentiation of progenitor cells. Decellularized ECM has been suggested to be efficacious for the repair of tissue injuries. However, decellularized meniscus contains a dense collagenous structure, which impedes cell seeding and infiltration and is not readily applicable for meniscus repair. In addition, the meniscus consists of two distinct anatomical regions that differ in vascularity and cellular phenotype. The purpose of this study was to explore the region-specific bioactivity of solubilized ECM derived from the inner and outer meniscal regions as determined in 2D and 3D cultures of adult mesenchymal stem cells (MSCs). When added as a medium supplement to 2D cultures of MSCs, urea-extracted fractions of the inner (imECM) and outer meniscal ECM (omECM) enhanced cell proliferation while imECM most strongly upregulated fibrochondrogenic differentiation on the basis of gene expression profiles. When added to 3D cultures of MSCs seeded in photocrosslinked methacrylated gelatin (GelMA) hydrogels, both ECM fractions upregulated chondrogenic differentiation as determined by gene expression and protein analyses, as well as elevated sulfated glycosaminoglycan sGAG content, compared to ECM-free controls. The chondrogenic effect at day 21 was most pronounced with imECM supplementation, but equivalent between ECM groups by day 42. Despite increased cartilage matrix, imECM and omECM constructs possessed compressive moduli similar to controls. In conclusion, soluble meniscal ECM may be considered for use as a tissue-specific reagent to enhance chondrogenesis for MSC-based 3D cartilage tissue engineering.
机译:已发现衍生自脱细胞组织的细胞外基质(ECM)促进组织新生,最有可能由促进祖细胞组织特异性分化的特定生化和物理信号基序介导。已经提出去细胞的ECM对于修复组织损伤是有效的。然而,脱细胞的半月板含有致密的胶原结构,这阻碍了细胞的播种和浸润,并且不易用于半月板的修复。此外,半月板由两个不同的解剖区域组成,这些区域的血管和细胞表型不同。这项研究的目的是探讨成年间充质干细胞(MSCs)的2D和3D培养中确定的,来自内,外半月板区域的增溶ECM的区域特异性生物活性。当作为培养基添加到MSC的2D培养中时,内部(imECM)和外部半月板ECM(omECM)的尿素提取馏分增强了细胞增殖,而imECM根据基因表达谱最强烈地上调了纤维软骨成纤维细胞的分化。与不含ECM的对照相比,当将ECM馏分添加到接种在光交联的甲基丙烯酸明胶(GelMA)水凝胶中的MSC的3D培养物中时,这两种ECM馏分均通过基因表达和蛋白质分析确定了软骨分化,并提高了硫酸化糖胺聚糖sGAG的含量。补充imECM后,第21天的软骨形成作用最为明显,但到第42天,ECM组之间的软骨形成作用相当。尽管软骨基质增加,imECM和omECM构建物的压缩模量与对照组相似。总之,可考虑将可溶性半月板ECM用作组织特异性试剂,以增强基于MSC的3D软骨组织工程的软骨形成。

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