Paper-based electroanalytical devices for in situ determination of salicylic acid in living tomato leaves

水杨酸 非生物成分 碳纳米管 化学 原位 电极 碳纤维 材料科学 纳米技术 生物化学 生物 有机化学 复合数 物理化学 古生物学 复合材料
作者
Lijun Sun,Qiumei Feng,Yong-Feng Yan,Zhong-Qin Pan,Xiaohui Li,Fengming Song,Haibing Yang,Jing‐Juan Xu,Ning Bao,Hongchen Gu
出处
期刊:Biosensors and Bioelectronics [Elsevier]
卷期号:60: 154-160 被引量:61
标识
DOI:10.1016/j.bios.2014.04.021
摘要

Detection of phytohormones in situ has gained significant attention due to their critical roles in regulating developmental processes and signaling for defenses in plants at low concentration. As one type of plant hormones, salicylic acid has recently been found to be one of pivotal signal molecules for physiological behaviors of plants. Here we report the application of paper-based electroanalytical devices for sensitively in situ detection of salicylic acid in tomato leaves with the sample volume of several microliters. Specifically, disposable working electrodes were fabricated by coating carbon tape with the mixture of multiwall carbon nanotubes and nafion. We observed that the treatment of the modified carbon tape electrodes with oxygen plasma could significantly improve electrochemical responses of salicylic acid. The tomato leaves had a punched hole of 1.5 mm diameter to release salicylic acid with minor influence on continuous growth of tomatoes. By incorporating the tomato leaf with the paper-based analytical device, we were able to perform in situ determination of salicylic acid based on its electrocatalytic oxidation. Our experimental results demonstrated that the amounts of salicylic acid differed statistically in normal, phytoene desaturase (PDS) gene silent and diseased (infected by Botrytis cinerea) tomato leaves. By quantifying salicylic acid at the level of several nanograms in situ, the simple paper-based electroanalytical devices could potentially facilitate the study of defense mechanism of plants under biotic and abiotic stresses. This study might also provide a sensitive method with spatiotemporal resolution for mapping of chemicals released from living organisms.
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