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Defined Surface Immobilization of Glycosaminoglycan Molecules for Probing and Modulation of Cell-Material Interactions

机译:糖胺聚糖分子的确定的表面固定,用于探测和调节细胞-物质相互作用

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摘要

As one important category of biological molecules on the cell surface and in the extracellular matrix (ECM), glycosaminoglycans (GAGs) have been widely studied for biomedical applications. With the understanding that the biological functions of GAGs are driven by the complex dynamics of physiological and pathological processes, methodologies are desired to allow the elucidation of cell-GAG interactions with molecular level precision. In this study, a microtiter plate-based system was devised through a new surface modification strategy involving polydopamine (PDA) and GAG molecules fonction-alized with hydrazide chemical groups. A small library of GAGs including hyaluronic acid (with different molecular weights), heparin, and chondroitin sulfate was successfully immobilized via defined binding sites onto the microtiter plate surface under facile aqueous conditions. The methodology then allowed parallel studies of the GAG-modified surfaces in a high-diroughput format. The results show that immobilized GAGs possess distinct properties to mediate protein adsorption, cell adhesion, and inflammatory responses, with each property showing dependence on the type and molecular weight of specific GAG molecules. The PDA-assisted immobilization of hydrazide-functionalized GAGs allows biomimetic attachment of GAG molecules and retains their bioactivity, providing a new methodology to systematically probe fundamental cell-GAG interactions to modulate the bioactivity and biocompatibility of biomaterials.
机译:作为细胞表面和细胞外基质(ECM)中生物分子的重要一类,糖胺聚糖(GAG)已被广泛研究用于生物医学应用。认识到GAG的生物学功能是由生理和病理过程的复杂动力学驱动的,因此需要一种方法来阐明具有分子水平精度的细胞-GAG相互作用。在这项研究中,通过一种新的表面修饰策略设计了一种基于微量滴定板的系统,该策略涉及聚多巴胺(PDA)和由酰肼化学基团功能化的GAG分子。包括透明质酸(具有不同分子量),肝素和硫酸软骨素的一小类GAG库已在合适的水性条件下通过定义的结合位点成功固定在微量滴定板表面。然后,该方法允许以高剂量格式并行研究GAG修饰的表面。结果表明,固定的GAG具有介导蛋白质吸附,细胞黏附和炎症反应的独特特性,每种特性均显示特定GAG分子的类型和分子量的依赖性。 PDA辅助的酰肼功能化GAG的固定化可以模拟GAG分子的附着并保留其生物活性,从而提供了一种新的方法来系统地探测基本的细胞GAG相互作用,从而调节生物材料的生物活性和生物相容性。

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