Department of Chemical Engineering, National Taiwan University, Taipei 10617, Taiwan.
Department of Chemical Engineering, National Taiwan University, Taipei 10617, Taiwan.
Int J Biol Macromol. 2024 Apr;264(Pt 1):130404. doi: 10.1016/j.ijbiomac.2024.130404. Epub 2024 Feb 27.
Due to their organized structures, remarkable stiffness, and nice biocompatibility and biodegradability, amyloid fibrils serve as building blocks for versatile sustainable materials. Silver nanoparticles (AgNPs) are commonly used as the nano-catalysts for various electrochemical reactions. Given their large specific surface area and high surface energy, AgNPs exhibit high aggregation propensity, which hampers their electrocatalytic performance. Food protein wastes have been identified to be associated with climate change and environmental impacts, and a surplus of whey proteins in dairy industries causes high biological and chemical demands, and greenhouse gas emissions. This study is aimed at constructing sustainable electrode surface modifiers using AgNP-deposited whey protein amyloid fibrils (AgNP/WPI-AFs). AgNP/WPI-AFs were synthesized and characterized via spectroscopic techniques, electron microscopy, and X-ray diffraction. Next, the electrocatalytic performance of AgNP/WPI-AF modified electrode was assessed via para-nitrophenol (p-NP) reduction combined with various electrochemical analyses. Moreover, the reaction mechanism of p-NP electrocatalysis on the surface of AgNP/WPI-AF modified electrode was investigated. The detection range, limit of detection, sensitivity, and selectivity of the AgNP/WPI-AF modified electrode were evaluated accordingly. This work not only demonstrates an alternative for whey valorization but also highlights the feasibility of using amyloid-based hybrid materials as the electrode surface modifier for electrochemical sensing purposes.
由于其有序的结构、显著的刚性以及良好的生物相容性和可生物降解性,淀粉样纤维可用作多功能可持续材料的构建模块。银纳米粒子 (AgNP) 通常用作各种电化学反应的纳米催化剂。由于其大的比表面积和高的表面能,AgNP 表现出高的聚集倾向,这阻碍了它们的电催化性能。已经确定食品蛋白废物与气候变化和环境影响有关,并且乳制品行业中乳清蛋白的过剩会导致高的生物和化学需求以及温室气体排放。本研究旨在使用 AgNP 沉积的乳清蛋白淀粉样纤维 (AgNP/WPI-AF) 构建可持续的电极表面修饰剂。通过光谱技术、电子显微镜和 X 射线衍射对 AgNP/WPI-AF 进行了合成和表征。接下来,通过结合各种电化学分析评估了 AgNP/WPI-AF 修饰电极的对邻硝基苯酚 (p-NP) 还原的电催化性能。此外,还研究了 p-NP 在 AgNP/WPI-AF 修饰电极表面上的电催化反应机制。相应地评估了 AgNP/WPI-AF 修饰电极的检测范围、检测限、灵敏度和选择性。这项工作不仅展示了乳清增值的一种替代方法,还突出了基于淀粉样蛋白的混合材料作为电极表面修饰剂用于电化学传感的可行性。