Highly Selective and Rapid “Turn-On” Fluorogenic Chemosensor for Detection of Salicylic Acid in Plants and Food Samples

水杨酸 化学 检出限 植物免疫 荧光 体内 生物化学 纳米技术 生物 生物技术 色谱法 材料科学 物理 量子力学 拟南芥 突变体 基因
作者
Jieying Chen,A-Ling Tang,Ping Yang,Linlin Yang,Shuai Tan,Wenjing Ma,Shi-Tao Liu,Hou-Yun Huang,Xiang Zhou,Liwei Liu,Song Yang
出处
期刊:ACS Sensors [American Chemical Society]
卷期号:8 (11): 4020-4030 被引量:4
标识
DOI:10.1021/acssensors.3c00159
摘要

Salicylic acid (SA) is one of the chemical molecules, involved in plant growth and immunity, thereby contributing to the control of pests and pathogens, and even applied in fruit and vegetable preservation. However, only a few tools have ever been designed or executed to understand the physiological processes induced by SA or its function in plant immunity and residue detection in food. Hence, three Rh6G-based fluorogenic chemosensors were synthesized to detect phytohormone SA based on the "OFF-ON" mechanism. The probes showed high selectivity, ultrafast response time (<60 s), and nanomolar detection limit for SA. Moreover, the probe possessed outstanding profiling that can be successfully used for SA imaging of callus and plants. Furthermore, the fluorescence pattern indicated that SA could occur in the distal transport in plants. These remarkable results contribute to improving our understanding of the multiple physiological and pathological processes involved in SA for plant disease diagnosis and for the development of immune activators. In addition, SA detection in some agricultural products used probes to extend the practical application because its use is prohibited in some countries and is harmful to SA-sensitized persons. Interestingly, the as-obtained test paper displayed that SA could be imaged by ultraviolet (UV) and was directly visible to the naked eye. Given the above outcomes, these probes could be used to monitor SA in vitro and in vivo, including, but not limited to, plant biology, food residue detection, and sewage detection.
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