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Enhanced Protein Immobilization on Polymers—A Plasma Surface Activation Study

机译:增强蛋白质固定在聚合物上的等离子体表面活化研究

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摘要

Over the last years, polymers have gained great attention as substrate material, because of the possibility to produce low-cost sensors in a high-throughput manner or for rapid prototyping and the wide variety of polymeric materials available with different features (like transparency, flexibility, stretchability, etc.). For almost all biosensing applications, the interaction between biomolecules (for example, antibodies, proteins or enzymes) and the employed substrate surface is highly important. In order to realize an effective biomolecule immobilization on polymers, different surface activation techniques, including chemical and physical methods, exist. Among them, plasma treatment offers an easy, fast and effective activation of the surfaces by microanotexturing and generating functional groups (including carboxylic acids, amines, esters, aldehydes or hydroxyl groups). Hence, here we present a systematic and comprehensive plasma activation study of various polymeric surfaces by optimizing different parameters, including power, time, substrate temperature and gas composition. Thereby, the highest immobilization efficiency along with a homogenous biomolecule distribution is achieved with a 5-min plasma treatment under a gas composition of 50% oxygen and nitrogen, at a power of 1000 W and a substrate temperature of 80 °C. These results are also confirmed by different surface characterization methods, including SEM, XPS and contact angle measurements.
机译:在过去的几年中,聚合物作为衬底材料受到了广泛的关注,因为它有可能以高通量的方式生产低成本的传感器或用于快速原型制作,并且可以使用具有不同功能(例如透明度,柔韧性)的各种聚合物材料。 ,拉伸性等)。对于几乎所有生物传感应用,生物分子(例如抗体,蛋白质或酶)与所用底物表面之间的相互作用都非常重要。为了实现将生物分子有效地固定在聚合物上,存在不同的表面活化技术,包括化学和物理方法。其中,等离子体处理通过微/纳米纹理化并生成官能团(包括羧酸,胺,酯,醛或羟基),可轻松,快速且有效地活化表面。因此,在这里,我们通过优化包括功率,时间,基材温度和气体成分在内的不同参数,对各种聚合物表面进行了系统,全面的等离子体活化研究。因此,在氧气和氮气含量为50%的气体成分,功率为1000 W,基板温度为80°C的情况下进行5分钟的等离子体处理,可以获得最高的固定效率和均匀的生物分子分布。这些结果也通过不同的表面表征方法得到了证实,包括SEM,XPS和接触角测量。

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