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首页> 外文期刊>Journal of biomedical materials research, Part A >Winner of the Society for Biomaterials Student Award in the Undergraduate Category, Charlotte, NC, April 15 to 18, 2015 Disruption of cell-cell contact-mediated notch signaling via hydrogel encapsulation reduces mesenchymal stem cell chondrogenic potential
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Winner of the Society for Biomaterials Student Award in the Undergraduate Category, Charlotte, NC, April 15 to 18, 2015 Disruption of cell-cell contact-mediated notch signaling via hydrogel encapsulation reduces mesenchymal stem cell chondrogenic potential

机译:2015年4月15日至18日,在北卡罗来纳州夏洛特获得本科生类别的生物材料学会学生奖,通过水凝胶封装破坏细胞-细胞接触介导的缺口信号传导可降低间充质干细胞的软骨形成潜力

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摘要

Cell-cell contact-mediated Notch signaling is essential for mesenchymal stem cell (MSC) chondrogenesis during development. However, subsequent deactivation of Notch signaling is also required to allow for stem cell chondrogenic progression. Recent literature has shown that Notch signaling can also influence Wnt/-catenin signaling, critical for MSC differentiation, through perturbations in cell-cell contacts. Traditionally, abundant cell-cell contacts, consistent with development, are emulated in vitro using pellet cultures for chondrogenesis. However, cells are often encapsulated within biomaterials-based scaffolds, such as hydrogels, to improve therapeutic cell localization in vivo. To explore the role of Notch and Wnt/-catenin signaling in the context of hydrogel-encapsulated MSC chondrogenesis, we compared signaling and differentiation capacity of MSCs in both hydrogels and traditional pellet cultures. We demonstrate that encapsulation within poly(ethylene glycol) hydrogels reduces cell-cell contacts, and both Notch (7.5-fold) and Wnt/-catenin (84.7-fold) pathway activation. Finally, we demonstrate that following establishment of cell-cell contacts and transient Notch signaling in pellet cultures, followed by Notch signaling deactivation, resulted in a 1.5-fold increase in MSC chondrogenesis. Taken together, these findings support that cellular condensation, and establishment of initial cell-cell contacts is critical for MSC chondrogenesis, and this process is inhibited by hydrogel encapsulation. (c) 2014 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 103A: 1291-1302, 2015.
机译:细胞间接触介导的Notch信号对于发育过程中的间充质干细胞(MSC)软骨形成至关重要。但是,还需要随后激活Notch信号来使干细胞软骨发生发展。最近的文献表明,Notch信号传导还可通过细胞-细胞接触中的扰动影响Wnt /连环蛋白信号传导,这对MSC的分化至关重要。传统上,在体外使用沉淀培养物进行软骨形成来模拟与发育相一致的丰富的细胞间接触。但是,细胞通常被封装在基于生物材料的支架(例如水凝胶)中,以改善体内治疗性细胞的定位。为了探索Notch和Wnt / -catenin信号在水凝胶包裹的MSC软骨形成中的作用,我们比较了水凝胶和传统沉淀培养物中MSC的信号传导和分化能力。我们证明,聚乙二醇水凝胶中的封装减少了细胞间的接触,并且同时激活了Notch(7.5倍)和Wnt / -catenin(84.7倍)通路。最后,我们证明,在沉淀培养物中建立细胞-细胞接触和瞬时Notch信号后,Notch信号失活,导致MSC软骨形成增加1.5倍。综上所述,这些发现支持细胞凝结和建立初始细胞间接触对于MSC软骨形成至关重要,并且该过程被水凝胶封装所抑制。 (c)2014 Wiley Periodicals,Inc.J Biomed Mater Res Part A:103A:1291-1302,2015。

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