Nanosensor Detection of Synthetic Auxins In Planta using Corona Phase Molecular Recognition

生长素 水稻 纳米传感器 拟南芥 油菜 化学 菠菜 生物化学 植物 生物 芸苔属 材料科学 纳米技术 基因 突变体
作者
Mervin Chun‐Yi Ang,Niha Dhar,Duc Thinh Khong,Tedrick Thomas Salim Lew,Minkyung Park,Sreelatha Sarangapani,Jianqiao Cui,Aniket Dehadrai,Gajendra Singh,Mary B. Chan‐Park,Rajani Sarojam,Michael S. Strano
出处
期刊:ACS Sensors [American Chemical Society]
卷期号:6 (8): 3032-3046 被引量:63
标识
DOI:10.1021/acssensors.1c01022
摘要

Synthetic auxins such as 1-naphthalene acetic acid (NAA) and 2,4-dichlorophenoxyacetic acid (2,4-D) have been extensively used in plant tissue cultures and as herbicides because they are chemically more stable and potent than most endogenous auxins. A tool for rapid in planta detection of these compounds will enhance our knowledge about hormone distribution and signaling and facilitate more efficient usage of synthetic auxins in agriculture. In this work, we show the development of real-time and nondestructive in planta NAA and 2,4-D nanosensors based on the concept of corona phase molecular recognition (CoPhMoRe), to replace the current state-of-the-art sensing methods that are destructive and laborious. By designing a library of cationic polymers wrapped around single-walled carbon nanotubes with general affinity for chemical moieties displayed on auxins and its derivatives, we developed selective sensors for these synthetic auxins, with a particularly large quenching response to NAA (46%) and a turn-on response to 2,4-D (51%). The NAA and 2,4-D nanosensors are demonstrated in planta across several plant species including spinach, Arabidopsis thaliana (A. thaliana), Brassica rapa subsp. chinensis (pak choi), and Oryza sativa (rice) grown in various media, including soil, hydroponic, and plant tissue culture media. After 5 h of 2,4-D supplementation to the hydroponic medium, 2,4-D is seen to accumulate in susceptible dicotyledon pak choi leaves, while no uptake is observed in tolerant monocotyledon rice leaves. As such, the 2,4-D nanosensor had demonstrated its capability for rapid testing of herbicide susceptibility and could help elucidate the mechanisms of 2,4-D transport and the basis for herbicide resistance in crops. The success of the CoPhMoRe technique for measuring these challenging plant hormones holds tremendous potential to advance the plant biology study.
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