Lupu Stelian
Department of Analytical Chemistry and Environmental Engineering, Faculty of Chemical Engineering and Biotechnologies, National University of Science and Technology Politehnica of Bucharest, 1-7 Polizu Gheorghe, 011061 Bucharest, Romania.
Biosensors (Basel). 2025 Jul 9;15(7):440. doi: 10.3390/bios15070440.
Electroanalysis of monoamine neurotransmitters is a useful tool for monitoring relevant neurodegenerative disorders and diseases. Electroanalysis of neurotransmitters using analytical devices consisting of electrodes modified with tailored and nanostructured composite materials is an active research topic nowadays. Nano- and microstructured composite materials composed of various organic conductive polymers, metal/metal oxide nanoparticles, and carbonaceous materials enable an increase in the performance of electroanalytical sensing devices. Synergistic properties resulting from the combination of various pristine nanomaterials have enabled faster kinetics and increased overall performance. Herein, recent results related to the design and elaboration of electroanalytical sensing devices based on cost-effective and reliable nano- and microstructured composite materials for the quantification of monoamine neurotransmitters are presented. The discussion focuses on the fabrication procedures and detection strategies, highlighting the capabilities of the analytical platforms used in the determination of relevant analytes. The review aims to present the main benefits of using composite nanostructured materials in the electroanalysis of monoamine neurotransmitters.
单胺类神经递质的电分析是监测相关神经退行性疾病的有用工具。利用由定制的纳米结构复合材料修饰的电极组成的分析装置对神经递质进行电分析是当今一个活跃的研究课题。由各种有机导电聚合物、金属/金属氧化物纳米颗粒和碳质材料组成的纳米和微结构复合材料能够提高电分析传感装置的性能。各种原始纳米材料组合产生的协同特性实现了更快的动力学并提高了整体性能。本文介绍了基于经济高效且可靠的纳米和微结构复合材料用于定量单胺类神经递质的电分析传感装置的设计与制作的最新成果。讨论集中在制造程序和检测策略上,突出了用于测定相关分析物的分析平台的能力。本综述旨在介绍在单胺类神经递质电分析中使用复合纳米结构材料的主要优点。