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首页> 外文期刊>Biomaterials >A modular approach to the engineering of a centimeter-sized bone tissue construct with human amniotic mesenchymal stem cells-laden microcarriers.
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A modular approach to the engineering of a centimeter-sized bone tissue construct with human amniotic mesenchymal stem cells-laden microcarriers.

机译:用人羊膜间充质干细胞载有微载体的厘米级骨组织构建体的模块化方法。

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Tissue engineering of clinical-relevant large tissue constructs remains a big challenge due to the mass transfer limit. A modular approach via the assembling of modular tissues thus eliminating the mass transfer limit holds great promise for fabricating centimeter-sized constructs. In the present study, we investigated the feasibility of using microcarriers seeded with adult mesenchymal stem cells (MSCs) to fabricate a large bone tissue. It was demonstrated that human amniotic MSCs (hAMSCs) were efficiently seeded onto CultiSpher S microcarriers (made of porcine gelatin) in a spinner flask and quickly proliferated while retaining a great viability. Within a total culture period of 28 days, using a two-stage culture strategy, hAMSCs-laden microcarriers with a high cell density were prepared at the first stage and the cells were then directly induced to undergo osteogenic differentiation in the same culture flask. During this cultivation process, the aggregation of cell-laden microcarriers was apparent, which resulted in aggregates of 700-800 mum, a size permissive for maintaining high cell viability. The osteogenic differentiation of hAMSCs on microcarriers was confirmed with increased mineral deposition (Alizarin red S staining and quantification of calcium content), ALP activity as well as gene expression of osteogenic markers (collagen type I and osteocalcin). These modular bone-like tissues were used as building blocks to fabricate a macroscopic bone construct in a cylindrical perfusion culture chamber (2 cm in diameter). After a 7-day perfusion culture, these modular tissues readily assembled into a centimeter-sized construct (diameter x height: 2 cm x 1 cm). Both good cell viability and fairly homogenous distribution of cellular content and bone-characteristic ECM within the macrotissue were elaborated. This paper provided a proof-of-concept study for modularly engineering clinical-relevant large tissue replacements with cell-laden microcarriers.
机译:由于传质限制,与临床相关的大型组织构建体的组织工程仍然是一个巨大的挑战。通过组装模块化组织从而消除传质限制的模块化方法为制造厘米级结构提供了广阔前景。在本研究中,我们调查了使用植入成人间充质干细胞(MSC)的微载体制造大型骨组织的可行性。结果表明,人类羊膜间充质干细胞(hAMSCs)可有效地接种到微调瓶中的CultiSpher S微载体(由猪明胶制成)上,并在保持巨大活力的同时迅速增殖。在28天的总培养期间内,采用两阶段培养策略,在第一阶段制备了载有hAMSCs的具有高细胞密度的微载体,然后在同一培养瓶中直接诱导细胞进行成骨分化。在此培养过程中,充满细胞的微载体明显聚集,从而形成700-800微米的聚集体,其大小可保持较高的细胞活力。通过增加矿物质沉积(茜素红S染色和钙含量定量),ALP活性以及成骨标记物(I型胶原和骨钙蛋白)的基因表达,证实了hAMSC在微载体上的成骨分化。这些模块化的骨样组织被用作构建块,以在圆柱形的灌注培养室(直径2 cm)中制造宏观的骨构造。经过7天的灌注培养后,这些模块化组织易于组装成厘米大小的构造(直径x高度:2 cm x 1 cm)。阐述了良好的细胞活力以及大组织内细胞含量和骨特征性ECM的相当均匀的分布。本文为用载有细胞的微载体模块化工程化临床相关的大型组织置换提供了概念验证研究。

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