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首页> 外文期刊>Journal of biomedical materials research, Part A >Mesenchymal stem cell and gelatin microparticle encapsulation in thermally and chemically gelling injectable hydrogels for tissue engineering
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Mesenchymal stem cell and gelatin microparticle encapsulation in thermally and chemically gelling injectable hydrogels for tissue engineering

机译:间充质干细胞和明胶微粒封装在热和化学凝胶化可注射水凝胶中,用于组织工程

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In this work, we investigated the viability and osteogenic differentiation of mesenchymal stem cells encapsulated with gelatin microparticles (GMPs) in an injectable, chemically and thermally gelling hydrogel system combining poly(N-isopropylacrylamide)-based thermogelling macromers containing pendant epoxy rings with polyamidoamine-based hydrophilic and degradable diamine crosslinking macromers. Specifically, we studied how the parameters of GMP size and loading ratio affected the viability and differentiation of cells encapsulated within the hydrogel. We also examined the effects of cell and GMP co-encapsulation on hydrogel mineralization. Cells demonstrated long-term viability within the hydrogels, which was shown to depend on GMP size and loading ratio. In particular, increased interaction of cells and GMPs through greater available GMP surface area, use of an epoxy-based chemical gelation mechanism, and the tunable high water content of the thermogelled hydrogels led to favorable long-term cell viability. Compared with cellular hydrogels without GMPs, hydrogels co-encapsulating cells and GMPs demonstrated greater production of alkaline phosphatase by cells at all time-points and a transient early enhancement of hydrogel mineralization for larger GMPs at higher loading ratios. Such injectable, in situ forming hydrogels capable of delivering and maintaining populations of encapsulated mesenchymal stem cells and promoting mineralization in vitro offer promise as novel therapies for applications in tissue engineering and regenerative medicine.
机译:在这项工作中,我们研究了在可注射,化学和热凝胶化水凝胶系统中结合明胶微粒(GMP)封装的间充质干细胞的生存力和成骨分化,该系统结合了基于聚(N-异丙基丙烯酰胺)的热凝胶大分子单体,后者包含环氧环侧链与聚酰胺酰胺基亲水性和可降解的二胺交联大分子单体。具体来说,我们研究了GMP大小和负载比的参数如何影响封装在水凝胶中的细胞的活力和分化。我们还检查了细胞和GMP共封装对水凝胶矿化的影响。细胞在水凝胶中显示出长期的生存能力,这取决于GMP的大小和负载率。特别是,通过更大的可用GMP表面积,使用基于环氧的化学胶凝机制以及热凝胶化水凝胶的可调高水含量,增加了细胞与GMP的相互作用,从而带来了良好的长期细胞活力。与没有GMP的细胞水凝胶相比,共包封细胞和GMP的水凝胶在所有时间点均显示细胞产生更多的碱性磷酸酶,并且对于较大的GMP,在更高的负载比下,水凝胶矿化作用的瞬时早期增强。这种可注射,原位形成的水凝胶能够递送和维持包封的间充质干细胞群体并在体外促进矿化,为在组织工程和再生医学中的应用提供了新的疗法。

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