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Engineered Three-Dimensional Microenvironments with Starch Nanocrystals as Cell-Instructive Materials

机译:用淀粉纳米晶体设计三维微环境,作为细胞 - 教学材料

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摘要

Naturally, cells reside in three-dimensional (3D) microenvironments composed of biopolymers that guide cellular behavior via topographical features as well as through mechanical and biochemical cues. However, most studies describing the influence of topography on cells' behavior are performed on rigid and synthetic two-dimensional substrates. To design systems that more closely resemble native microenvironments, herein we develop 3D nanocomposite hydrogels consisting of starch nanocrystals (SNCs) embedded in a gelatin matrix. The incorporation of different concentrations of SNCs (0.05, 0.2, and 0.5 wt %) results in an increase of compressive modulus when compared to hydrogels without SNCs, without affecting the swelling ratio, thus providing a tunable system. Confirming the cytocompatibility of the novel composites, the viability of encapsulated L929 fibroblasts is >90% in all hydrogels. The cellular metabolic activity and DNA content are similar for all formulations and increase over time, indicating that the fibroblasts proliferate within the hydrogels. After 4 d of culture, Live/Dead staining and F-actin/nuclei staining show that the encapsulated fibroblasts develop an elongated morphology in the hydrogels. On the other hand, encapsulated chondrogenic progenitor ATDC5 cells also maintain a viability around 90% but display a round morphology, especially in the hydrogels with SNCs, indicating a potential application of the materials for cartilage tissue engineering. We believe that topographical and mechanical cues within 3D microenvironments can be a powerful tool to instruct cells' behavior and that the developed gelatin/SNC nanocomposite warrants further study.
机译:当然,细胞位于由一种由地形特征和通过机械和生物化学线索引导细胞行为的生物聚合物组成的三维(3D)微环境。然而,在刚性和合成的二维基板上执行描述地形对细胞行为的影响的大多数研究。为了设计更紧密类似的天然微环境的系统,在本文中,我们开发由嵌入明胶基质中的淀粉纳米晶体(SNC)组成的3D纳米复合水凝胶。与没有SNC的水凝胶相比,不同浓度的SNC(0.05,0.2和0.5wt%)的掺入导致压缩模量的增加,而不影响溶胀比,从而提供可调谐系统。确认新型复合材料的细胞相容性,封装的L929成纤维细胞的可行性在所有水凝胶中> 90%。蜂窝代谢活性和DNA含量对于所有制剂相似并随着时间的推移而增加,表明成纤维细胞在水凝胶内增殖。在4 d培养后,活/死染色和F-actin /核染色表明,包封的成纤维细胞在水凝胶中产生细长的形态。另一方面,包封的软骨内祖母ATDC5细胞也保持了90%左右的活力,但显示出圆形形态,特别是在具有SNC的水凝胶中,表明软骨组织工程材料的潜在应用。我们认为3D微环境中的地形和机械线索可以是指导细胞的行为的强大工具,并且开发的明胶/ SNC纳米复合材料需要进一步研究。

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  • 来源
    《Biomacromolecules》 |2019年第10期|共12页
  • 作者单位

    Katholieke Univ Leuven Dept Mat Engn B-3001 Leuven Belgium;

    Katholieke Univ Leuven Renewable Mat &

    Nanotechnol Res Grp Dept Chem Engn Campus Kulak Kortrijk B-8500 Kortrijk Belgium;

    Katholieke Univ Leuven Dept Mat Engn B-3001 Leuven Belgium;

    Katholieke Univ Leuven Dept Mat Engn B-3001 Leuven Belgium;

    Katholieke Univ Leuven Renewable Mat &

    Nanotechnol Res Grp Dept Chem Engn Campus Kulak Kortrijk B-8500 Kortrijk Belgium;

    Katholieke Univ Leuven Dept Mat Engn B-3001 Leuven Belgium;

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  • 正文语种 eng
  • 中图分类 分子生物学;
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