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首页> 外文期刊>Mycorrhiza >Atmospheric drought and low light impede mycorrhizal effects on leaf photosynthesisa glasshouse study on tomato under naturally fluctuating environmental conditions
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Atmospheric drought and low light impede mycorrhizal effects on leaf photosynthesisa glasshouse study on tomato under naturally fluctuating environmental conditions

机译:大气干旱和低灯妨碍了在自然波动环境条件下对番茄叶片光合作用玻璃室研究的菌根效应

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摘要

Arbuscular mycorrhiza fungi (AMF) consume plant carbon and impact photosynthesis, but effects of AMF on plant gas exchange are transient and hardly predictable. This is at least partially because plant-internal nutrient-, water-, and sink-related effects, which can be influenced AMF, and atmospheric conditions integrate at the photosynthesis level. In nature and in plant production, plants face periodical and random short-term switches of environmental conditions that limit photosynthesis, which may impede stimulatory effects of AMF on leaf photosynthetic capacities. We hypothesized that mycorrhizal effects on plant internal-photosynthetic potentials will only translate to actual photosynthetic rates, if atmospheric conditions do not superimpose limitations to the photosynthetic process. We aimed to cover wide ranges of within and between-day variations in light intensities and vapor pressure deficits with an untargeted approach. We grew tomato plants hydroponically for 8weeks in open pots and irrigated beyond pot water capacity every morning. Plants were inoculated or not with Funneliformis mosseae and were fertilized with a low-strength nutrient solution, which guaranteed good AMF colonization and comparable sets of mycorrhizal and non-mycorrhizal plants regarding developmental stage and leaf age. Instantaneous leaf photosynthesis was monitored continuously with transparent chambers during 3days under naturally fluctuating greenhouse conditions on the two uppermost fully expanded leaves. We fitted mechanistic gas exchange models and modeled continuous daytime dynamics of net photosynthetic rates and stomatal conductance for representative sunlit canopies of random populations of mycorrhizal and non-mycorrhizal plants. Depending on time, mycorrhizal plants showed enhanced or decreased stomatal conductance over wide ranges of light intensities. Higher or lower stomatal opening in mycorrhizal plants became ineffective for photosynthetic rates under low light. In contrast and in accordance with the effects on stomatal conductance, photosynthetic rates were comparatively increased or decreased in mycorrhizal plants under high light conditions. This required at least moderate vapor pressure deficits. Under high atmospheric drought, stomatal conductance strongly declined in all plants, which also capped maximum photosynthetic rates under high light. Leaf photosynthetic capacities were higher in mycorrhizal plants when leaves contained more proteins and/or the plant-internal moisture stress was lower than in non-mycorrhizal plants. However, this only resulted in enhanced photosynthetic rates as long as leaves were not exposed to low radiation or high atmospheric drought. We conclude that light and atmospheric moisture are decisive factors for potential carbon cost and gain scenarios of plants associated with AMF.
机译:丛枝菌根真菌(AMF)消耗植物碳和影响光合作用,但AMF对植物气交换的影响是短暂的,并且几乎无法预测。这至少部分是因为植物内部营养 - ,水 - 和与水槽相关的效果,可以影响amf,并且大气条件在光合作用水平上集成。本质上和植物生产中,植物面临周期性和随机的短期开关的环境条件,限制光合作用,这可能阻碍了AMF对叶片光合能力的刺激作用。我们假设菌根对植物内部光合电位的影响仅转化为实际光合速率,如果大气条件不叠加到光合作用过程。我们旨在涵盖在日光强度和白天之间的范围内和白天之间的范围,具有未明确的方法。我们将番茄植物在敞开的锅中用8周加入8周,每天早晨灌溉超越罐水能。植物接种或不含漏斗状脊髓植物,并用低强度营养溶液施肥,保证了良好的AMF殖民化和具有关于发育阶段和叶年龄的菌根和非菌根植物的可比较。在三个最高膨胀的叶片的温室条件下,在3天内用透明室连续监测瞬时叶片光合作用。我们拟合机械燃气交换模型,并为肌刺槐和非菌根植物随机种群的净光合速率和净光环探测器的净光合速率和气孔电导的模型连续日间动力学。根据时间,菌根植物在广泛的光强度范围内显示出增强或降低的气孔电导。菌根植物中的较高或较低的气孔开口对于低光下的光合速率变得无效。相比之下,根据对气孔导度的影响,在高光条件下菌根植物中的光合速率比较增加或减少。这需要至少适中的蒸气压缺陷。在高大气干旱下,所有植物中的气孔电导都强烈下降,在高光下也覆盖了最大的光合速率。当叶片含有更多蛋白质和/或植物内水分胁迫时,菌根植物的叶片光合能力较高,并且植物内水分胁迫低于非菌根植物。然而,只有只要叶子未暴露于低辐射或高大气干旱,就会产生增强的光合速率。我们得出结论,光线和大气水分是潜在的碳成本和与AMF相关的植物的情况的决定性因素。

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