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首页> 外文期刊>The New Phytologist >Altered stomatal dynamics induced by changes in irradiance and vapour-pressure deficit under drought: impacts on the whole-plant transpiration efficiency of poplar genotypes
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Altered stomatal dynamics induced by changes in irradiance and vapour-pressure deficit under drought: impacts on the whole-plant transpiration efficiency of poplar genotypes

机译:干旱下辐照和蒸气压赤字的变化引起的气孔动力学改变:对杨树基因型的全植物蒸腾效率的影响

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Recent findings were able to show significant variability of stomatal dynamics between species, but not much is known about factors influencing stomatal dynamics and its consequences on biomass production, transpiration and water-use efficiency (WUE). We assessed the dynamics of stomatal conductance (g(s)) to a change of irradiance or vapour-pressure deficit (VPD) in two Populus euramericana and two Populus nigra genotypes grown under control and drought conditions. Our objectives were to determine the diversity of stomatal dynamics among poplar genotypes, and if soil water deficit can alter it. Physiological and morphological factors were investigated to find their potential links with stomatal morphology, WUE and its components at the whole-plant level. We found significant genotypic variability of g(s) dynamics to both irradiance and VPD. Genotypes with faster stomatal dynamics were correlated with higher stomatal density and smaller stomata, and the implications of these correlations are discussed. Drought slowed g(s) dynamics, depending on genotype and especially during stomatal closing. This finding is contrary to previous research on more drought-tolerant species. Independently of the treatment, faster stomatal dynamics were negatively correlated with daily whole-plant transpiration, presenting new evidence of a previously hypothesized contribution of stomatal dynamics to whole-plant water use.
机译:最近的发现能够在物种之间表现出对气孔动力学的显着变化,但对影响气孔动力学的因素以及其对生物质生产,蒸腾和水使用效率(WUE)后果的影响并不多。我们评估了气孔导度(g(s))的动态,以改变两只杨树欧美纳米人的辐照度或蒸气压力缺陷(VPD)和在控制和干旱条件下生长的两种杨树内吉型基因型。我们的目标是确定杨树基因型中气孔动力学的多样性,如果土壤水赤字可以改变它。研究了生理和形态因素,以在全植物水平上发现其具有气孔形态,WUE及其组分的潜在环节。我们发现G(S)动力学的显着基因型可变性对辐照度和VPD。具有更快的气孔动力学的基因型与较高的气孔密度和较小的气孔相关,并且讨论了这些相关性的含义。干旱放缓G(S)动态,取决于基因型,特别是在气孔闭合期间。这一发现与以前的耐旱性物种研究相反。独立于治疗,更快的气孔动力学与日常植物蒸腾呈负相关,提出了先前假设气孔动力学对全植物用水的新证据。

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