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Biomimetic scaffolds and dynamic compression enhance the properties of chondrocyte‐ and MSC MSC ‐based tissue‐engineered cartilage

机译:仿生支架和动态压缩增强了软骨细胞和MSC MSC的组织工程化软骨的性质

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Abstract Adult chondrocytes are surrounded by a protein‐ and glycosaminoglycan‐rich extracellular matrix and are subjected to dynamic mechanical compression during daily activities. The extracellular matrix and mechanical stimuli play an important role in chondrocyte biosynthesis and homeostasis. In this study, we aimed to develop scaffold and compressive loading conditions that mimic the native cartilage micro‐environment and enable enhanced chondrogenesis for tissue engineering applications. Towards this aim, we fabricated porous scaffolds based on silk fibroin (SF) and SF with gelatin/chondroitin sulfate/hyaluronate (SF‐GCH), seeded the scaffolds with either human bone marrow mesenchymal stromal cells (BM‐MSCs) or chondrocytes, and evaluated their performance with and without dynamic compression. Human chondrocytes derived from osteoarthritic joints and BM‐MSCs were seeded in scaffolds, precultured for 1?week, and subjected to compression with 10% dynamic strain at 1?Hz, 1?hr/day for 2?weeks. When dynamic compression was applied, chondrocytes significantly increased expression of aggrecan ( ACAN ) and collagen X ( COL10A1 ) up to fivefold higher than free‐swelling controls. In addition, dynamic compression dramatically improved the chondrogenesis and chondrocyte biosynthesis cultured in both SF and SF‐GCH scaffolds evidenced by glycosaminoglycan (GAG) content, GAG/DNA ratio, and immunostaining of collagen type II and aggrecan. However, both chondrocytes and BM‐MSCs cultured in SF‐GCH scaffolds under dynamic compression showed higher GAG content and compressive modulus than those in SF scaffolds. In conclusion, the micro‐environment provided by SF‐GCH scaffolds and dynamic compression enhances chondrocyte biosynthesis and matrix accumulation, indicating their potential for cartilage tissue engineering applications.
机译:摘要成人软骨细胞被富含蛋白质和糖胺的细胞外基质包围,并在日常活动中进行动态机械压缩。细胞外基质和机械刺激在软骨细胞生物合成和稳态中起重要作用。在这项研究中,我们旨在开发用于模拟天然软骨微环境的支架和压缩载荷条件,并使组织工程应用能够增强软骨菌。为此目的,我们根据丝素蛋白(SF)和具有明胶/软骨素/透明质酸(SF-GCH)的SF制作多孔支架,用人骨髓间充质基质细胞(BM-MSC)或软骨细胞播种支架。使用和无动态压缩评估其性能。衍生自骨关节关节和BM-MSCs的人软骨细胞在支架中接种,预制为1?周,并在1?Hz的1℃,1℃/天/天患上10%的动态菌株的压缩。当施加动态压缩时,软骨细胞显着增加了聚集(Acan)和胶原蛋白X(COL10A1)的表达,其高于比自由溶胀对照的5倍。此外,动态压缩显着改善了通过糖胺聚糖(GAG)含量,GAG / DNA比和II型和Eggecan的胶原蛋白酶(GAG)含量,GAG / DNA比和免疫染色的SF和SF-GCH支架中培养的软骨发生和软骨细胞生物合成。然而,在动态压缩下,在SF-GCH支架中培养的软骨细胞和BM-MSCs显示出比SF支架中的GAG含量和压缩模量更高。总之,SF-GCH支架和动态压缩提供的微环境增强了软骨细胞生物合成和基质累积,表明它们对软骨组织工程应用的潜力。

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