首页> 美国卫生研究院文献>Tissue Engineering. Part A >Modulation of Mesenchymal Stem Cell Shape in Enzyme-Sensitive Hydrogels Is Decoupled from Upregulation of Fibroblast Markers Under Cyclic Tension
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Modulation of Mesenchymal Stem Cell Shape in Enzyme-Sensitive Hydrogels Is Decoupled from Upregulation of Fibroblast Markers Under Cyclic Tension

机译:酶敏感水凝胶中的间充质干细胞形状的调节与成纤维细胞标志物在循环张力下的上调解耦

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摘要

Our laboratory has developed a tensile culture bioreactor as a system for understanding mesenchymal stem cell (MSC) differentiation toward a tendon/ligament fibroblast phenotype in response to cyclic tensile strain. In this study, we investigated whether increased degradability of the biomaterial carrier would induce changes in MSC morphology and subsequent upregulation of tendon/fibroblast markers under tensile strain. Degradability of a synthetic poly(ethylene glycol) hydrogel was introduced by incorporating either fast- or slow-degrading matrix metalloproteinase (MMP)–sensitive peptide sequences into the polymer backbone. Although a decline in cellularity was observed over culture in all sample groups, at 14 days, MSCs were significantly more spread in fast-cleaving gels (84%±8%) compared with slow-cleaving gels (59%±4%). Cyclic tensile strain upregulated tendon/ligament fibroblast-related genes, such as collagen III (3.8-fold vs. 2.1-fold in fast-degrading gels) and tenascin-C (2.5-fold vs. 1.7-fold in fast-degrading gels). However, few differences were observed in gene expression between different gel types. Immunostaining demonstrated increased collagen III deposition in dynamically strained gels at day 14, as well as increased collagen I and tenascin-C deposition at day 14 in all groups. Results suggest that cell spreading may not be a major factor controlling MSC response to cyclic strain in this system over 14 days. However, these findings provide key parameters for the design of future biomaterial carriers and strain regimens to prime stem cells to a tendon/ligament phenotype prior to release and use in vivo.
机译:我们的实验室已经开发出一种拉伸培养生物反应器,作为一种系统,以了解间充质干细胞(MSC)响应循环拉伸应变而向肌腱/韧带成纤维细胞表型分化。在这项研究中,我们调查了生物材料载体降解性的增加是否会引起MSC形态的变化以及在拉伸应变下肌腱/成纤维细胞标志物的上调。通过将快速降解或缓慢降解的基质金属蛋白酶(MMP)敏感肽序列掺入聚合物主链中,引入了合成聚乙二醇水凝胶的可降解性。尽管在所有样品组中均观察到整个培养物的细胞减少,但在14天时,MSCs在快速裂解凝胶(84%±8%)中比在慢速裂解凝胶(59%±4%)中分布更大。循环拉伸应变上调了与肌腱/韧带成纤维细胞相关的基因,例如胶原蛋白III(在快速降解的凝胶中为3.8倍对2.1倍)和腱糖蛋白-C(在快速降解的凝胶中为2.5倍对1.7倍) 。但是,在不同凝胶类型之间的基因表达中几乎观察不到差异。免疫染色表明,在第14天,动态过滤的凝胶中的III型胶原沉积增加,而在第14天,所有组中的I型胶原和腱生蛋白C沉积均增加。结果表明,在该系统中,细胞扩散可能不是控制MSC在14天之内对循环菌株响应的主要因素。然而,这些发现为未来的生物材料载体和应变方案的设计提供了关键参数,以在将其释放并在体内使用之前将干细胞引发为肌腱/韧带表型。

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