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Multilayer thin-film coatings capable of extended programmable drug release: application to human mesenchymal stem cell differentiation

机译:能够扩展可编程药物释放的多层薄膜涂层:应用于人间充质干细胞分化

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摘要

The promise of cellular therapy lies in healing damaged tissues and organs in vivo as well as generating tissue constructs in vitro for subsequent transplantation. Postnatal stem cells are ideally suited for cellular therapies due to their pluripotency and the ease with which they can be cultured on functionalized substrates. Creating environments to control and successfully drive their differentiation toward a lineage of choice is one of the most important challenges of current cell-based engineering strategies. In recent years, a variety of biomaterials platforms have been prepared for stem cell cultures, primarily to provide efficient delivery of growth or survival factors to cells and a conductive microenvironment for their growth. Here, we demonstrate that repeating tetralayer structures composed of biocompatible poly(methacrylic acid), poly(acrylamide), and poly(ethylene oxide)-block-poly(ε-caprolactone) micelles arrayed in layer-by-layer films can serve as a payload region for dexamethasone delivery to human mesenchymal stem cells (MSCs). This architecture can induce MSC differentiation into osteoblasts in a dose-dependent manner. The amount of Dex loaded in the films is controlled by varying the deposition conditions and the film thickness. Release of Dex is tuned by changing the amount of covalent cross-linking of multilayers via thermal treatments. The multilayer architecture including payload and cell-adhesion region introduced here are well suited for extended cell culture thus affording the important and protective effect of both Dex release and immobilization. These films may find applications in the local delivery of immobilized therapeutics for biomedical applications, as they can be deposited on a wide range of substrates with different shapes, sizes, and composition.
机译:细胞疗法的前景在于在体内修复受损的组织和器官,以及在体外产生用于后续移植的组织构建体。产后干细胞具有多能性,并且易于在功能化的底物上进行培养,因此非常适合细胞疗​​法。创建环境来控制并成功地推动其向着选择的谱系分化是当前基于单元的工程策略的最重要挑战之一。近年来,已经为干细胞培养准备了各种生物材料平台,主要是为了向细胞提供有效的生长或生存因子传递以及为细胞的生长提供导电的微环境。在这里,我们证明了由生物相容性聚(甲基丙烯酸),聚(丙烯酰胺)和聚(环氧乙烷)-嵌段-聚(ε-己内酯)胶束组成的重复四层结构可以逐层膜排列地塞米松递送至人间充质干细胞(MSC)的有效负载区域。这种结构可以以剂量依赖性方式诱导MSC分化为成骨细胞。通过改变沉积条件和膜厚度来控制膜中负载的Dex的量。通过改变热处理改变多层的共价交联量来调节Dex的释放。此处介绍的包括有效载荷和细胞粘附区域的多层体系结构非常适合扩展细胞培养,因此提供了Dex释放和固定的重要和保护作用。这些膜可以在生物医学应用的固定化治疗剂的局部递送中找到应用,因​​为它们可以沉积在具有不同形状,大小和组成的各种基材上。

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