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黄瓜叶片生长期间光的光谱光子通量密度分布与净光合速率测量时光的光谱光子通量密度分布之间的相互作用。

Interaction between the spectral photon flux density distributions of light during growth and for measurements in net photosynthetic rates of cucumber leaves.

作者信息

Murakami Keach, Matsuda Ryo, Fujiwara Kazuhiro

机构信息

Graduate School of Agricultural and Life Sciences, The University of Tokyo, Yayoi, Bunkyo, Tokyo, 113-8657, Japan.

出版信息

Physiol Plant. 2016 Oct;158(2):213-24. doi: 10.1111/ppl.12421. Epub 2016 Apr 4.

DOI:10.1111/ppl.12421
PMID:26822286
Abstract

The net photosynthetic rate of a leaf becomes acclimated to the plant's environment during growth. These rates are often measured, evaluated and compared among leaves of plants grown under different light conditions. In this study, we compared net photosynthetic rates of cucumber leaves grown under white light-emitting diode (LED) light without and with supplemental far-red (FR) LED light (W- and WFR-leaves, respectively) under three different measuring light (ML) conditions: their respective growth light (GL), artificial sunlight (AS) and blue and red (BR) light. The difference in the measured photosynthetic rates between W- and WFR-leaves was greater under BR than under GL and AS. In other words, an interaction between supplemental FR light during growth and the spectral photon flux density distribution (SPD) of ML affected the measured net photosynthetic rates. We showed that the comparison and evaluation of leaf photosynthetic rates and characteristics can be biased depending on the SPD of ML, especially for plants grown under different photon flux densities in the FR waveband. We also investigated the mechanism of the interaction. We confirmed that the distribution of excitation energy between the two photosystems (PSs) changed in response to the SPD of GL, and that this change resulted in the interaction, as suggested in previous reports. However, changes in PS stoichiometry could not completely explain the adjustment in excitation energy distribution observed in this study, suggesting that other mechanisms may be involved in the interaction.

摘要

叶片的净光合速率在生长过程中会适应植物的环境。这些速率通常在不同光照条件下生长的植物叶片之间进行测量、评估和比较。在本研究中,我们比较了在三种不同测量光(ML)条件下,分别在无补充远红光(FR)发光二极管(LED)光和有补充远红光(FR)LED光(分别为W叶和WFR叶)下生长的黄瓜叶片的净光合速率:它们各自的生长光(GL)、人工阳光(AS)以及蓝光和红光(BR)。W叶和WFR叶之间测得的光合速率差异在BR条件下比在GL和AS条件下更大。换句话说,生长期间的补充FR光与ML的光谱光子通量密度分布(SPD)之间的相互作用影响了测得的净光合速率。我们表明,叶片光合速率和特征的比较与评估可能会因ML的SPD而产生偏差,特别是对于在FR波段不同光子通量密度下生长的植物。我们还研究了这种相互作用的机制。我们证实,两个光系统(PS)之间的激发能分布响应于GL的SPD而发生变化,并且如先前报道中所指出的,这种变化导致了相互作用。然而,PS化学计量的变化并不能完全解释本研究中观察到的激发能分布的调整,这表明其他机制可能也参与了这种相互作用。

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