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Design of growth factor sequestering biomaterials

机译:生长因子螯合生物材料的设计

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摘要

Growth factors (GFs) are major regulatory proteins that can govern cell fate, migration, and organization. Numerous aspects of the cell milieu can modulate cell responses to GFs, and GF regulation is often achieved by the native extracellular matrix (ECM). For example, the ECM can sequester GFs and thereby control GF bioavailability. In addition, GFs can exert distinct effects depending on whether they are sequestered in solution, at two-dimensional interfaces, or within three-dimensional matrices. Understanding how the context of GF sequestering impacts cell function in the native ECM can instruct the design of soluble or insoluble GF sequestering moieties, which can then be used in a variety of bioengineering applications. This Feature Article provides an overview of the natural mechanisms of GF sequestering in the cell milieu, and reviews the recent bioengineering approaches that have sequestered GFs to modulate cell function. Results to date demonstrate that the cell response to GF sequestering depends on the affinity of the sequestering interaction, the spatial proximity of sequestering in relation to cells, the source of the GF (supplemented or endogenous), and the phase of the sequestering moiety (soluble or insoluble). We highlight the importance of context for the future design of biomaterials that can leverage endogenous molecules in the cell milieu and mitigate the need for supplemented factors.
机译:生长因子(GFs)是主要的调节蛋白,可以控制细胞的命运,迁移和组织。细胞环境的许多方面都可以调节细胞对GF的反应,而GF调节通常是通过天然的细胞外基质(ECM)实现的。例如,ECM可以隔离GF,从而控制GF的生物利用度。此外,GFs可以根据它们是否固溶在溶液中,在二维界面处或在三维矩阵中发挥不同的作用。了解GF螯合的背景如何影响天然ECM中的细胞功能可以指导可溶性或不溶性GF螯合部分的设计,然后可以将其用于各种生物工程应用中。这篇专题文章概述了细胞环境中GF螯合的自然机制,并回顾了将GF螯合以调节细胞功能的最新生物工程方法。迄今为止的结果表明,细胞对GF螯合的反应取决于螯合相互作用的亲和力,螯合相对于细胞的空间接近性,GF的来源(补充的或内源的)以及螯合部分的相(可溶的)或不溶的)。我们强调了背景对于未来生物材料设计的重要性,该材料可以利用细胞环境中的内源性分子并减轻对补充因子的需求。

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  • 来源
    《Chemical Communications》 |2014年第99期|15651-15668|共18页
  • 作者单位

    Department of Biomedical Engineering, University of Wisconsin, Madison, WI, USA;

    Department of Material Science, University of Wisconsin, Madison, WI, USA;

    Department of Biomedical Engineering, University of Wisconsin, Madison, WI, USA,Department of Material Science, University of Wisconsin, Madison, WI, USA,Wisconsin Institute for Medical Research Ⅱ, 1111 Highland Avenue Room 5405, Madison, WI USA 53705;

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  • 入库时间 2022-08-17 13:16:44

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