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  3. Biomechatronics Engineering / 生物機電工程學系
  4. Quantitative Phenotyping of Water-Stressed Tomato Plants Using Frequency-Domain Fluorescence Lifetime Imaging Microscope (FD-FLIM)
 
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Quantitative Phenotyping of Water-Stressed Tomato Plants Using Frequency-Domain Fluorescence Lifetime Imaging Microscope (FD-FLIM)

Journal
2025 ASABE Annual International Meeting
Part Of
2025 ASABE Annual International Meeting
Date Issued
2025
Author(s)
Lin, Cheng-Hao
Yi, Jiun-Wei
Wu, Hsiao-Mei  
DOI
10.13031/aim.202500595
URI
https://www.scopus.com/record/display.uri?eid=2-s2.0-105015358300&origin=resultslist
https://scholars.lib.ntu.edu.tw/handle/123456789/736181
Abstract
Abstract. Early detection of water stress in plants is essential for maintaining agricultural productivity and facilitating timely management decisions in the face of increasingly variable climate conditions. Water stress can adversely affect photosynthesis, reduce transpiration, and ultimately lead to irreversible yield loss. Conventional monitoring methods often rely on visible symptoms or destructive sampling, which can result in delays in preventive measures. Consequently, there is a growing demand for non-destructive and real-time tools capable of detecting physiological changes before visual signs appear. This study presents a frequency-domain fluorescence lifetime imaging microscopy (FD-FLIM) system that utilized n LED-based excitation design to monitor chlorophyll a fluorescence lifetime in tomato leaves. The system employs a 470 nm LED modulated at 30 MHz using a power amplifier, providing a compact and cost-effective alternative to traditional laser-based FLIM platforms. Tomato plants were subjected to two distinct water stress treatments: oven drying to simulate acute dehydration and non-watering to represent progressive drought. Fluorescence lifetime responses were analyzed using both modulation and phase-based methods from acquired microscopic images and were subsequently represented in a phasor diagram. The results indicated that the phase lifetime was more sensitive to early-stage stress, with phasor plot distributions shifting inward as stress increased, suggesting enhanced decay heterogeneity. Microscopic observations further corroborated the structural disruption in dehydrated tissues. While additional validation across various species and conditions is necessary, this research highlights the feasibility of LED-based FD-FLIM for non-destructive detection of water stress and lays the groundwork for future applications in plant phenotyping.
Event(s)
2025 American Society of Agricultural and Biological Engineers Annual International Meeting, ASABE 2025, Toronto, Ontario, Canada July 13-16, 2025
Publisher
American Society of Agricultural and Biological Engineers
Type
conference paper

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