Thin Layer and Nanotechnology Laboratory, Department of Chemical Technology, Iranian Research Organization for Science and Technology (IROST), P.O. Box 33535-111, Tehran, Iran.
Thin Layer and Nanotechnology Laboratory, Department of Chemical Technology, Iranian Research Organization for Science and Technology (IROST), P.O. Box 33535-111, Tehran, Iran.
Carbohydr Polym. 2021 Aug 15;266:118105. doi: 10.1016/j.carbpol.2021.118105. Epub 2021 Apr 24.
Highly stable and reliable monitoring of glucose is of great importance for diabetes patients. This paper describes the application of two types of polymer for developing a reliable impedimetric glucose biosensor by designing an efficient nanoporous microenvironment for enzyme loading. Polyvinyl alcohol (PVA) was used as a sacrifice polymer to prepare a uniform 3D-nanoporous ZnO (3D-NPZnO) platform through electrodeposition of ZnO/PVA layer followed by PVA elimination via annealing. The carbohydrate polymer, chitosan (CTS), with a high isoelectric point (pI = 7.0-9.0), was selected in accompanying with 3D-NPZnO (pI = 9.5) to provide a hierarchical 3D-NPZnO/CTS microenvironment of a favorable isoelectric point for glucose oxidase enzyme (pI = 4.2) loading. The characterization of structural features and monitoring of the biosensor fabrication process was performed using FE-SEM, EDX, TGA-DTG, FTIR, UV-Vis, BET-BJH, XRD, CV, and EIS techniques. The fabricated platform, which shows a wide linear range of 1.0-18.0 mM and a low detection limit of 0.2 mM for glucose determination, was successfully used for real sample analysis. The proposed fabrication method can be applied for immobilizing the other low isoelectric point enzymes and biomolecules.
对于糖尿病患者而言,对葡萄糖进行高度稳定且可靠的监测非常重要。本文描述了两种聚合物的应用,通过设计用于酶加载的高效纳米多孔微环境,开发出可靠的阻抗式葡萄糖生物传感器。通过电沉积 ZnO/PVA 层,随后通过退火去除 PVA,使用聚乙烯醇 (PVA) 作为牺牲聚合物来制备均匀的 3D 纳米多孔 ZnO (3D-NPZnO) 平台。选择具有高等电点 (pI=7.0-9.0) 的碳水化合物聚合物壳聚糖 (CTS),与 3D-NPZnO (pI=9.5) 一起提供有利于葡萄糖氧化酶 (pI=4.2) 加载的有利等电点的分层 3D-NPZnO/CTS 微环境。使用 FE-SEM、EDX、TGA-DTG、FTIR、UV-Vis、BET-BJH、XRD、CV 和 EIS 技术对结构特征进行表征并监测生物传感器的制造过程。所制备的平台对葡萄糖的测定显示出较宽的线性范围(1.0-18.0 mM)和较低的检测限(0.2 mM),成功用于实际样品分析。所提出的制造方法可用于固定其他低等电点的酶和生物分子。