Chlorophyll fluorescence in sentinel plants for the surveillance of chemical risk

IF 3.9 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of photochemistry and photobiology. B, Biology Pub Date : 2024-06-27 DOI:10.1016/j.jphotobiol.2024.112965
Mailén Petri , Gabriela B. Cordon , Virginia E. Diz , Graciela A. González , M. Gabriela Lagorio
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Abstract

This research aimed to develop natural plant systems to serve as biological sentinels for the detection of organophosphate pesticides in the environment. The working hypothesis was that the presence of the pesticide in the environment caused changes in the content of pigments and in the photosynthetic functioning of the plant, which could be evaluated non-destructively through the analysis of reflected light and emitted fluorescence. The objective of the research was to furnish in vivo indicators derived from spectroscopic parameters, serving as early alert signals for the presence of organophosphates in the environment. In this context, the effects of two pesticides, Chlorpyrifos and Dimethoate, on the spectroscopic properties of aquatic plants (Vallisneria nana and Spathyfillum wallisii) were studied. Chlorophyll-a variable fluorescence allowed monitoring both pesticides' presence before any damage was observed at the naked eye, with the analysis of the fast transient (OJIP curve) proving more responsive than Kautsky kinetics, steady-state fluorescence, or reflectance measurements. Pesticides produced a decrease in the maximum quantum yield of PSII photochemistry, in the proportion of PSII photochemical deexcitation relative to PSII non photochemical decay and in the probability that trapped excitons moved electrons into the photosynthetic transport chain beyond QA. Additionally, an increase in the proportion of absorbed energy being dissipated as heat rather than being utilized in the photosynthetic process, was notorious. The pesticides induced a higher deactivation of chlorophyll excited states by photophysical pathways (including fluorescence) with a decrease in the quantum yields of photosystem II and heat dissipation by non-photochemical quenching. The investigated aquatic plants served as sentinels for the presence of pesticides in the environment, with the alert signal starting within the first milliseconds of electronic transport in the photosynthetic chain. Organophosphates damage animals' central nervous systems similarly to certain compounds found in chemical weapons, thus raising the possibility that sentinel plants could potentially signal the presence of such weapons.

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监测化学品风险的哨兵植物叶绿素荧光
这项研究旨在开发天然植物系统,作为检测环境中有机磷农药的生物哨兵。工作假设是,环境中农药的存在会导致植物色素含量和光合作用功能发生变化,这些变化可通过分析反射光和发射的荧光进行非破坏性评估。这项研究的目的是根据光谱参数提供体内指标,作为环境中存在有机磷的早期预警信号。在此背景下,研究了毒死蜱和乐果这两种农药对水生植物(Vallisneria nana 和 Spathyfillum wallisii)光谱特性的影响。与考茨基动力学、稳态荧光或反射率测量相比,快速瞬态(OJIP 曲线)分析的反应速度更快。杀虫剂降低了 PSII 光化学作用的最大量子产率、PSII 光化学去激发相对于 PSII 非光化学衰变的比例,并降低了捕获的激子将电子转移到 QA- 以外的光合传输链的概率。此外,吸收的能量以热量形式散失的比例增加,而不是在光合作用过程中被利用。杀虫剂通过光物理途径(包括荧光)导致叶绿素激发态失活率升高,光系统 II 的量子产率下降,非光化学淬灭导致热量耗散。所研究的水生植物可作为环境中农药存在的哨兵,在光合链电子传输的最初几毫秒内就会发出警报信号。有机磷对动物中枢神经系统的损害类似于化学武器中的某些化合物,因此哨兵植物有可能发出此类武器存在的信号。
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来源期刊
CiteScore
12.10
自引率
1.90%
发文量
161
审稿时长
37 days
期刊介绍: The Journal of Photochemistry and Photobiology B: Biology provides a forum for the publication of papers relating to the various aspects of photobiology, as well as a means for communication in this multidisciplinary field. The scope includes: - Bioluminescence - Chronobiology - DNA repair - Environmental photobiology - Nanotechnology in photobiology - Photocarcinogenesis - Photochemistry of biomolecules - Photodynamic therapy - Photomedicine - Photomorphogenesis - Photomovement - Photoreception - Photosensitization - Photosynthesis - Phototechnology - Spectroscopy of biological systems - UV and visible radiation effects and vision.
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