首页> 外文期刊>Photogrammetric Engineering & Remote Sensing: Journal of the American Society of Photogrammetry >Monitoring spatio-temporal dynamics of photosynthesis with a portable hyperspectral imaging system.
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Monitoring spatio-temporal dynamics of photosynthesis with a portable hyperspectral imaging system.

机译:使用便携式高光谱成像系统监控光合作用的时空动态。

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Photosynthetic efficiency of higher plants dynamically adapts to changing light intensity and is greatly influenced by stress, such as water stress. We tested a new portable hyperspectral imaging system, the SOC-700, manufactured by Surface Optics, which produces 12-bit reflectance images between 440 nm and 880 nm with a 4 nm spectral resolution. We quantified the reflectance properties and photochemical reflectance index (PRI) during light adaptation of genetically modified Arabidopsis thaliana plants lacking or over-expressing the PsbS protein, an essential component of the mechanism of non-photochemical dissipation. In a second experiment, PRI images of gradually water stressed leaves from four tropical plants (i.e., Pterocarpus indicus, Ceiba pentandra, Pachira aquatica and Inga sapindoides) were compared to leaf-level measurements of reflectance using a second commercially available spectrometer, and chlorophyll fluorescence to detect dynamic, photosynthesis correlated changes in reflectance and PRI. In both experiments PRI measured with the SOC-700 changed, reflecting the biochemical adaptation of the photosynthetic apparatus to high light intensity (dynamic changes within minutes) and the gradual deactivation of photosynthesis during drying (changes within hours). The quantum efficiency of photosystem II ( Delta F/Fm') and non-photochemical energy dissipation measured from chlorophyll fluorescence, were strongly correlated with PRI. Leaf area PRI values estimated from individual pixel spectra of the SOC-700 quantified photosynthetic efficiency more thoroughly than PRI values calculated from point measurements using the hand-held GER-1500. The applications, limitations, and potential of the SOC-700 for plant eco-physiology and remote sensing are also discussed..
机译:高等植物的光合作用效率动态地适应变化的光照强度,并受水分胁迫等胁迫的极大影响。我们测试了Surface Optics制造的新型便携式高光谱成像系统SOC-700,该系统可产生440 nm至880 nm之间的12位反射图像,并具有4 nm的光谱分辨率。我们量化了缺少或过度表达PsbS蛋白的转基因拟南芥植物的光适应过程中的反射特性和光化学反射指数(PRI),PsbS蛋白是非光化学耗散机制的重要组成部分。在第二个实验中,将使用四种市售光谱仪和四种叶绿素荧光对来自四种热带植物(即印度紫檀,木柴,五味子和水产Inga sapindoides)的逐渐水分胁迫的叶片的PRI图像与反射率的叶片水平测量进行了比较。检测动态的,与光合作用相关的反射率和PRI变化。在这两个实验中,用SOC-700测得的PRI都发生了变化,反映出光合装置对高光强度的生化适应性(几分钟内的动态变化)和干燥过程中光合作用的逐渐失活(数小时内变化)。叶绿素荧光测量的光系统II的量子效率(Delta F / Fm')和非光化学能量耗散与PRI密切相关。从SOC-700的单个像素光谱估计的叶面积PRI值比使用手持式GER-1500从点测量计算的PRI值更彻底地量化了光合作用效率。还讨论了SOC-700在植物生态生理学和遥感领域的应用,局限性和潜力。

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