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首页> 外文期刊>Biomaterials Science >Guest-host interlinked PEG-MAL granular hydrogels as an engineered cellular microenvironment
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Guest-host interlinked PEG-MAL granular hydrogels as an engineered cellular microenvironment

机译:宾客 - 主机相互关联的PEG-MAR粒状水凝胶作为工程化蜂窝微环境

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摘要

We report the development of a polyethylene glycol (PEG) hydrogel scaffold that provides the advantages of conventional bulk PEG hydrogels for engineering cellular microenvironments and allows for rapid cell migration. PEG microgels were used to assemble a densely packed granular system with an intrinsic interstitium-like negative space. In this material, guest-host molecular interactions provide reversible non-covalent linkages between discrete PEG microgel particles to form a cohesive bulk material. In guest-host chemistry, different guest molecules reversibly and non-covalently interact with their cyclic host molecules. Two species of PEG microgels were made, each with one functional group at the end of the four arm PEG-MAL functionalized using thiol click chemistry. The first was functionalized with the host molecule beta-cyclodextrin, a cyclic oligosaccharide of repeating d-glucose units, and the other functionalized with the guest molecule adamantane. These two species provide a reversible guest-host interaction between microgel particles when mixed, generating an interlinked network with a percolated interstitium. We showed that this granular configuration, unlike conventional bulk PEG hydrogels, enabled the rapid migration of THP-1 monocyte cells. The guest-host microgels also exhibited shear-thinning behavior, providing a unique advantage over current bulk PEG hydrogels.
机译:我们报告了聚乙二醇(PEG)水凝胶支架的开发,其为工程细胞微环境提供常规散装PEG水凝胶的优点,并允许快速细胞迁移。 PEG微凝胶用于组装密集包装的颗粒系统,其具有固有的间隙状负空间。在这种材料中,客体 - 宿主分子相互作用提供离散PEG微凝胶颗粒之间的可逆非共价键,以形成粘性散装材料。在客厅化学中,不同的客体分子可逆地和非共价与其循环宿主分子相互作用。制备了两种PEG微凝胶,每个物种在使用硫醇点击化学官能化的四个臂粘合剂末端的一个官能团。首先用宿主分子β-环糊精,重复D-葡萄糖单元的环状低聚糖官能化,以及与客体分子金刚烷官能化的另一个。这两个物种在混合时提供了微凝胶颗粒之间的可逆客体 - 主机相互作用,产生具有渗透的插形的互联网。我们表明,与传统的散装PEG水凝胶不同,这种颗粒结构使得THP-1单核细胞细胞的快速迁移。客人宿主微凝块也表现出剪切变薄行为,在电流散装PEG水凝胶上提供独特的优势。

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  • 来源
    《Biomaterials Science》 |2021年第7期|共14页
  • 作者单位

    Univ Florida J Crayton Pruitt Family Dept Biomed Engn Gainesville FL 32611 USA;

    Univ Florida J Crayton Pruitt Family Dept Biomed Engn Gainesville FL 32611 USA;

    Univ Florida J Crayton Pruitt Family Dept Biomed Engn Gainesville FL 32611 USA;

    Univ Florida J Crayton Pruitt Family Dept Biomed Engn Gainesville FL 32611 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

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