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Silicon nutrition alleviates the negative impacts of arsenic on the photosynthetic apparatus of rice leaves: an analysis of the key limitations of photosynthesis

机译:硅营养减轻了砷对水稻叶片光合作用的不利影响:分析了光合作用的主要局限性

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Silicon (Si) plays important roles in alleviating various abiotic stresses. In rice (Oryza sativa), arsenic (As) is believed to share the Si transport pathway for entry into roots, and Si has been demonstrated to decrease As concentrations. However, the physiological mechanisms through which Si might alleviate As toxicity in plants remain poorly elucidated. We combined detailed gas exchange measurements with chlorophyll fluorescence analysis to examine the effects of Si nutrition on photosynthetic performance in rice plants [a wild-type (WT) cultivar and its lsi1 mutant defective in Si uptake] challenged with As (arsenite). As treatment impaired carbon fixation (particularly in the WT genotype) that was unrelated to photochemical or biochemical limitations but, rather, was largely associated with decreased leaf conductance at the stomata and mesophyll levels. Indeed, regardless of the genotypes, in the plants challenged with As, photosynthetic rates correlated strongly with both stomatal (r(2)=0.90) and mesophyll (r(2)=0.95) conductances, and these conductances were, in turn, linearly correlated with each other. The As-related impairments to carbon fixation could be considerably reverted by Si in a time- and genotype-dependent manner. In conclusion, we identified Si nutrition as an important target in an attempt to not only decrease As concentrations but also to ameliorate the photosynthetic performance of rice plants challenged with As
机译:硅(Si)在缓解各种非生物胁迫方面起着重要作用。在水稻(Oryza sativa)中,砷(As)被认为具有进入根部的Si转运途径,并且已证明Si会降低As浓度。但是,Si缓解植物中As毒性的生理机制仍然缺乏明确的解释。我们将详细的气体交换测量结果与叶绿素荧光分析相结合,以研究Si营养对受As(亚砷酸盐)攻击的水稻植物(野生型(WT)品种及其对Si吸收的缺陷的lsi1突变体)的光合性能的影响。由于处理损害了碳固着(特别是在WT基因型中),而碳固着与光化学或生物化学的局限性无关,而是与气孔和叶肉水平下的叶片电导率下降密切相关。实际上,无论基因型如何,在受到As挑战的植物中,光合速率与气孔电导(r(2)= 0.90)和叶肉电导(r(2)= 0.95)都密切相关,而这些电导又是线性的相互关联。硅可以以时间和基因型依赖的方式大量还原与碳固定有关的与砷相关的损伤。总之,我们确定了硅营养是重要的目标,不仅可以降低砷的含量,而且可以改善受砷挑战的水稻植物的光合性能。

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