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Effects of plant growth stage and leaf aging on the response of transpiration and photosynthesis to water deficit in sunflower

机译:植物生长阶段和叶片衰老对向日葵蒸腾和光合作用对水分亏缺响应的影响

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摘要

Water deficit influences leaf transpiration rate and photosynthetic activity. The genotype-dependent response of the latter has not been assessed in sunflower (Helianthus annuus L.), particularly during the reproductive period when grain filling and lipogenesis depend greatly on photosynthate availability. To evaluate genotypic responses to water deficit before and after flowering, two greenhouse experiments were performed. Four genotypes-two inbred lines (PSC8, XRQ) and two cultivars (Inedi, Melody)-were subjected to progressive water deficit. Non-linear regression was used to calculate the soil water deficit threshold (FTSWt) at which processes (transpiration and photosynthetic activity) were affected by water deficit. In the vegetative growth stage, photosynthetic activity was affected at a lower mean value of FTSWt (0.39) than transpiration (0.55). However, in the reproductive stage, photosynthetic activity was more sensitive to soil water deficit (FTSWt=0.45). We found a significant (P=0.02) effect of plant growth stage on the difference between photosynthesis and transpiration rate thresholds and, a significant (P=0.03) effect of leaf age on transpiration. Such results will improve phenotyping methods and provide paths for integrating genotypic variability into crop models.
机译:水分亏缺会影响叶片的蒸腾速率和光合活性。尚未在向日葵(向日葵)中评估后者的基因型依赖性反应,特别是在籽粒充实和脂肪生成很大程度上取决于光合产物可用性的生殖期。为了评估开花前后对缺水的基因型反应,进行了两个温室实验。四个基因型-两个自交系(PSC8,XRQ)和两个品种(Inedi,Melody)-进行性缺水。非线性回归用于计算土壤水分亏缺阈值(FTSWt),在该阈值下水分亏缺会影响蒸腾和光合作用过程。在营养生长阶段,以低于蒸腾量(0.55)的FTSWt(0.39)平均值影响光合活性。然而,在生殖阶段,光合作用活动对土壤水分缺乏更为敏感(FTSWt = 0.45)。我们发现植物生长阶段对光合作用和蒸腾速率阈值之间差异的显着影响(P = 0.02),以及叶龄对蒸腾作用的显着(P = 0.03)影响。这样的结果将改善表型分析方法,并提供将基因型变异性整合到作物模型中的途径。

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