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Development and application of two-photon fluorescent probe for visual monitoring of isoprene in plants.

Journal of hazardous materials · 4 Nov 2025 · 10.1016/j.jhazmat.2025.140378

Abstract

As the main volatile organic compounds (VOCs), isoprene plays a dual role in plant stress protection and air pollution. However, its spatiotemporal dynamic monitoring in plants is insufficient, which limits environmental risk assessment. In this study, by systematically investigating the effects of the introduction of alkyne groups, maleimide groups and conjugated structures on the performance of probes, a probe (TPCM-π-M), with excellent two-photon properties was prepared. It showed good linear response in 1-240 ppm range with a detection limit of 0.2 ppm, enabling accurate detection of isoprene in various plant samples. In addition, the spatial distribution of endogenous isoprene in deep plant tissues and dynamic visual monitoring of isoprene under abiotic stress were achieved through two-photon imaging, overcoming the shortcomings of traditional single-photon imaging such as insufficient penetration depth. In particular, the dynamic regulation mechanism of plant isoprene metabolism under abiotic stress was revealed through the carotenoid/photorespiration inhibition model, and the correlation between the isoprene content in different flowers and their stress response ability was confirmed. This study provides technical support for analyzing the role of isoprene in plant metabolism and environmental adaptation, and has theoretical and applied value in plant physiology, pollution monitoring and biomedical imaging.

Plant phenotyping relevance

植物内イソプレンの定量・空間分布・ストレス応答を可視化する二光子蛍光プローブとイメージング法を開発し、植物試料で検証・応用しているため、表現型取得法が中心である。

abstracta probe (TPCM-π-M), with excellent two-photon properties was prepared
abstractenabling accurate detection of isoprene in various plant samples
abstractthe spatial distribution of endogenous isoprene in deep plant tissues and dynamic visual monitoring of isoprene under abiotic stress were achieved through two-photon imaging

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