首页> 外文期刊>Environmental Toxicology and Chemistry >USE OF TWO-PHOTON EXCITATION MICROSCOPY AND AUTOFLUORESCENCE FOR VISUALIZING THE FATE AND BEHAVIOR OF SEMIVOLATILE ORGANIC CHEMICALS WITHIN LIVING VEGETATION
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USE OF TWO-PHOTON EXCITATION MICROSCOPY AND AUTOFLUORESCENCE FOR VISUALIZING THE FATE AND BEHAVIOR OF SEMIVOLATILE ORGANIC CHEMICALS WITHIN LIVING VEGETATION

机译:利用两光子激发显微镜和自发荧光在生命植被中可视化半挥发性有机化学物质的命运和行为

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摘要

The uptake, transport, storage, and processing of semivolatile organic chemicals (SVOCs) by vegetation plays an important role in their environmental fate. Understanding these processes at the plant cellular level is essential to understanding the fate and behavior of SVOCs within the environment. Traditional analytical methods have relied on destructive analysis of the plant and a level of inference to suggest exactly where within the plant the chemical is residing, how it is getting there, and what its subsequent fate might be. The use of two-photon excitation microscopy to visualize the in situ uptake, transport, storage, compartmentalization, processing, and fate of a number of polycyclic aromatic hydrocarbons (PAHs) in living vegetation is summarized. Using this technique, the uptake of PAHs to leaves and roots via the atmosphere or soil is visualized. Subsequent storage, transport, compartmentalization, and plant processing, including metabolism, can then be monitored. Differences in processing of the same chemical between species are observed, including compartmentalization, transport routes, and degradation pathways. Chemical location within the plant is observed to have a significant effect on PAH fate (e.g., through photodegradation). We highlight a number of key findings and the research areas requiring increased impetus to gain a comprehensive understanding of the complexity involved in SVOC–plant interactions from the cellular to global scales.
机译:植被对半挥发性有机化合物(SVOC)的吸收,运输,存储和加工在其环境命运中起着重要作用。在植物细胞水平上了解这些过程对于了解环境中SVOC的命运和行为至关重要。传统的分析方法依靠对植物的破坏性分析和一定程度的推断来准确建议化学物质在植物中的位置,如何到达那里以及随后的命运。总结了使用双光子激发显微镜来可视化活体植被中许多多环芳烃(PAH)的原位吸收,运输,存储,分隔,加工和命运。使用这种技术,可以观察到通过大气或土壤将PAHs吸收到叶和根。随后可以监视随后的存储,运输,分隔和植物加工过程,包括新陈代谢。观察到物种间相同化学物质的加工差异,包括分隔,运输途径和降解途径。观察到植物内的化学位置对PAH的命运有重大影响(例如,通过光降解)。我们重点介绍了许多关键发现和需要加大动力的研究领域,以全面了解从细胞到全球范围内SVOC-植物相互作用的复杂性。

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