低氮条件下,水稻品种保持较大的气孔导度以促进光合作用

Yihong Li , Xiachen Lv , Mengmeng Rui , Jiang Hu , Vadim S. Volkov , Dali Zeng , Yizhou Wang
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引用次数: 1

摘要

与直立穗结构相对应的DEP1基因在提高水稻产量和氮利用效率方面表现出多效性作用。然而,目前尚不清楚氮营养如何影响dep1品种的光合作用。在这项研究中,我们在两种氮条件下的盆栽试验中使用了携带功能获得dep1等位基因的W7及其对应的野生型植物。我们研究了两个水稻品种在不同氮供应水平下光合作用、气孔导度和其他光合参数的差异。我们的结果表明,由于气孔导度较大,dep1在低氮条件下具有较高的光合能力。本工作从光合作用、气孔功能、氮吸收和同化等方面进行分析,揭示了dep1在低氮环境下的适应性更强,为揭示dep1品种在低氮条件下的光合效率提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rice dep1 variety maintains larger stomatal conductance to enhance photosynthesis under low nitrogen conditions

The DEP1 gene, which corresponds to the erect panicle architecture, shows a pleiotropic effect in increasing grain yield and nitrogen use efficiency in rice. Nevertheless, it remains unclear how nitrogen nutrition affects the photosynthesis in dep1 variety. In the study, we used W7, which carries the gain-of-function dep1 allele and its counterpart wild type plants, in pot trials under two nitrogen conditions. We investigated the differences in photosynthesis, stomatal conductance, and other photosynthetic parameters between the two rice varieties at different levels of nitrogen supply. Our results indicate that dep1 has a higher photosynthetic capacity under low nitrogen conditions due to the larger stomatal conductance. This work reveals that dep1 is more adaptable under a low nitrogen environment by analysis from the perspective of photosynthesis, stomatal function, and nitrogen uptake and assimilation, which provides a theoretical basis for revealing the photosynthetic efficiency of dep1 variety under low nitrogen conditions.

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