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Understandingthe Adsorption Interface of Polyelectrolyte Coating on Redox ActiveNanoparticles Using Soft Particle Electrokinetics and Its BiologicalActivity

机译:理解氧化还原活性剂上聚电解质涂层的吸附界面纳米粒子的软粒子电动学及其生物学活动

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摘要

The application of cerium oxide nanoparticles (CNPs) for therapeutic purposes requires a stable dispersion of nanoparticles in a biological environment. The objective of this study is to tailor the properties of polyelectrolyte coated CNPs as a function of molecular weight to achieve a stable and catalytic active dispersion. The coating of CNPs with polyacrylic acid (PAA) has increased the dispersion stability of CNPs and enhanced the catalytic ability. The stability of PAA coating was analyzed using the change in the Gibbs free energy computed by the Langmuir adsorption model. The adsorption isotherms were determined using soft particle electrokinetics which overcomes the challenges presented by other techniques. The change in Gibbs free energy was highest for CNPs coated with PAA of 250 kg/mol indicating the most stable coating. The change in free energy for PAA of 100 kg/mol coated CNPs was 85% lower than the PAA of 250 kg/mol coated CNPs. This significant difference is caused by the strong adsorption of PAA of 100 kg/mol on CNPs. Catalytic activity of PAA-CNPs is assessed by the catalase enzymatic mimetic activity of nanoparticles. The catalase activitywas higher for PAA coated CNPs as compared to bare CNPs which indicatedpreferential adsorption of hydrogen peroxide induced by coating. Thisindicates that the catalase activity is also affected by the structureof the coating layer.
机译:氧化铈纳米颗粒(CNP)用于治疗目的的应用要求纳米颗粒在生物环境中的稳定分散。这项研究的目的是根据分子量调整聚电解质涂覆的CNP的性能,以实现稳定的催化活性分散体。用聚丙烯酸(PAA)涂覆CNP的涂层提高了CNP的分散稳定性并增强了催化能力。使用由Langmuir吸附模型计算的吉布斯自由能的变化来分析PAA涂层的稳定性。吸附等温线是使用软粒子电动学确定的,该动力学克服了其他技术带来的挑战。对于涂有250 kg / mol PAA的CNP,吉布斯自由能的变化最高,表明该涂层最稳定。 100 kg / mol涂覆的CNP的PAA的自由能变化比250 kg / mol涂覆的CNP的PAA低85%。这种显着差异是由于100 kg / mol的PAA在CNP上的强烈吸附引起的。 PAA-CNP的催化活性通过纳米颗粒的过氧化氢酶酶促模拟活性来评估。过氧化氢酶活性与裸露的CNP相比,PAA涂层的CNP更高涂层引起的过氧化氢的优先吸附。这个表明过氧化氢酶活性也受结构影响涂层的厚度。

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