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首页> 外文期刊>Plant Physiology and Biochemistry >Magnesium decreases leaf scald symptoms on rice leaves and preserves their photosynthetic performance
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Magnesium decreases leaf scald symptoms on rice leaves and preserves their photosynthetic performance

机译:镁可减轻水稻叶片上的叶片烫伤症状并保持其光合性能

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The aim of this study was to investigate the effect of magnesium (Mg) on the photosynthetic gas exchange parameters ([net CO2 assimilation rate (A), stomatal conductance (g(s)), and internal CO2 concentration (C-i)], chlorophyll (Chl) fluorescence a parameters {minimal fluorescence (F-0), maximum fluorescence (F-m), maximum quantum yield of photosystem II (F-v/F-m), photochemical quenching coefficient (q(p)), yield of photochemistry [Y(II)], yield of regulated energy dissipation [Y(NPQ)] and yield of non-regulated dissipation losses [Y(NO)]} as well as on the concentrations of chloroplastidic pigments in rice plants grown in a nutrient solution containing 0.5 or 1.5 mM of Mg (-Mg or + Mg plants, respectively) and non-inoculated or inoculated with Monographella albescens. A higher Mg supply decreased the leaf scald symptoms in addition to partially preserving the photosynthetic performance of rice leaves challenged with M. albescens. Photosynthetic impairments were associated with photochemical and biochemical dysfunctions at the chloroplast level. The images of Chl a fluorescence evidenced increases in both the Y(II) and q(p) coupled with decreases in Y(NPQ) associated with a higher Mg supply regardless of inoculation, suggesting increased electron transport rates and lower energy dissipation as heat. Notably, as the leaf scald developed, the use of light energy through photochemical reactions was continuously lost, especially for the inoculated -Mg plants. Interestingly, the lower values for F-0, F-m, and F-v/F-m for -Mg plants were associated with greater photochemical dysfunctions and a progressive loss of photosynthetic pigments during the infection process of M. albescens. The underlying mechanism through which Mg can affect rice resistance against M. albescens remains to be fully elucidated. (C) 2016 Elsevier Masson SAS. All rights reserved.
机译:这项研究的目的是调查镁(Mg)对光合气体交换参数([净CO2同化率(A),气孔导度(g(s))和内部CO2浓度(Ci)],叶绿素)的影响(Chl)荧光a参数{最小荧光(F-0),最大荧光(Fm),光系统II的最大量子产率(Fv / Fm),光化学猝灭系数(q(p)),光化学产率[Y(II )],调节能量耗散的产量[Y(NPQ)]和非调节耗散损失的产量[Y(NO)]}以及在含有0.5或1.5的营养液中生长的水稻植株中叶绿体色素的浓度mM的Mg(分别为-Mg或+ Mg植物),以及未接种或未接种白粉虫。较高的Mg供应量除了部分保留了受到白粉病菌侵袭的稻米的光合性能外,还减轻了叶片的鳞屑症状。损伤与照片有关叶绿体水平的化学和生化功能障碍。 Chl a荧光图像证明Y(II)和q(p)均增加,而Y(NPQ)则下降,这与较高的Mg供给量无关,无论接种如何,表明电子传输速率增加,并且热量散发性降低。值得注意的是,随着叶片的结垢发展,通过光化学反应而使用的光能不断丧失,特别是对于接种的-Mg植物。有趣的是,-Mg植物的F-0,F-m和F-v / F-m值较低,与白僵菌感染过程中更大的光化学功能障碍和光合色素的逐步丧失有关。镁可影响水稻对白粉病的抗性的基本机制仍有待充分阐明。 (C)2016 Elsevier Masson SAS。版权所有。

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