基于内皮细胞水凝胶的生物传感器

M. J. Maguire, A. English, A. Moy
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摘要

最近的研究表明,固体、光学薄、导电的生物传感器有可能量化活细胞-药物相互作用。这些传感器在药物测试、细胞毒性筛选、个性化医疗和许多其他研究领域具有许多潜在的应用。然而,用于制造这些新型传感器的材料并不一定能在几天到几周的研究中促进细胞的长期附着和生长。因此,本研究的目的是利用合成水凝胶涂层改善这些传感器的长期细胞附着。对带电和中性单体的选择进行了仔细的研究,以在不影响生物传感器性能的情况下,在光学薄的导电生物传感器上产生长期的细胞附着。结合不同水凝胶的细胞附着研究、膨胀测量和导电测量来确定最佳的水凝胶组成。本研究结果表明,将2-羟乙基甲基丙烯酸酯和聚乙二醇二甲基丙烯酸酯与酸性和碱性单体共聚,有可能显著提高固态光薄导电细胞生物传感器的长期性能。
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Endothelial Cell Hydrogel Based Biosensor
Recent studies have shown that solid state, optically thin, electrically conductive biosensors have the potential to quantify live cell-drug interactions. These sensors have many potential applications in pharmaceutical testing, cytotoxicity screening, personalized medicine, and many other research areas. The materials used to fabricate these novel sensors, however, do not necessarily promote the long term cellular attachment and growth for studies over several days to weeks. The objective of this study is, therefore, to improve the long term cellular attachment to these sensors using synthetic hydrogel coatings. The choice of charged and neutral monomers is carefully examined to produce long term cellular attachment on optically thin electro-conductive biosensors without impeding the biosensor performance. A combination of cellular attachment studies on different hydrogels, swelling measurements, and electrically conductive measurements are examined to determine the optimal hydrogel composition. The results of this study show that copolymerizing 2-hydroxyethylmethacylate and polyethylene glycol dimethacrylate with acidic and basic monomers has the potential to significantly improve the long term performance of solid state optically thin, electrically conductive cellular biosensors.
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