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首页> 外文期刊>Urban Forestry & Urban Greening >Urban forest resilience through tree selection-Variation in drought tolerance in Acer
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Urban forest resilience through tree selection-Variation in drought tolerance in Acer

机译:通过树木选择获得城市森林适应力-宏基耐旱性变化

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It is widely recognized that trees contribute a range of ecosystem services in urban environments. However, the magnitude of their contribution is closely related to their physiological condition and capacity to persist within our towns and cities. Root loss during transplanting, limited soil volume, disruption to soil hydrological processes and impermeable surfaces result in water deficits being major physiological stress limiting the performance of urban trees. The leaf water potential at turgor loss (Psi(p0)) provides a robust measure of drought tolerance since a more negative Psi(p0) allows the leaf to maintain physiological function over a wider range of leaf water potentials and, by implication, soil matric potentials (Psi(soil)). In this study, Psi(p0) was calculated for 27 maple (Acer) genotypes based on a known linear relationship between the osmotic potential at full turgor (Psi(pi 100)) and Psi(p0). In spring, Psi(p0) varied between -1.4 MPa in Acer carpinifolium and -2.7 in both Acer rubrum 'Northwood' and Acer x freemanii 'Autumn Blaze'. During summer, Acer spicatum had the highest Psi(p0) at -1.6 MPa and Acer monspessulanum had the lowest Psi(p0) at -4.3 MPa. Significant differences in Psi(p0) were found between cultivars of A. rubrum and Acer saccharum. A highly significant relationship was found between seasonal osmotic adjustment and summer Psi(p0) suggesting that osmotic adjustment is a driving force for summer Psi(p0) in Acer leaves. These data confirm the wide range of tolerance to water deficits in Acer and give important insight into the potential of species to tolerate periods of low water availability by providing quantitative data not previously available. The technique shows great promise as a screening tool for the drought tolerance of new and traditional plant material. This data will be highly relevant for those selecting trees for urban sites as well as for nurseries seeking to evaluate genotypes for production purposes. (C) 2015 Elsevier GmbH. All rights reserved.
机译:众所周知,树木在城市环境中为一系列生态系统服务做出了贡献。但是,它们的贡献大小与它们的生理状况和在我们的城镇中持久存在的能力密切相关。移栽过程中的根系流失,有限的土壤体积,对土壤水文过程的破坏以及不透水的表面导致水分亏缺是限制城市树木生长的主要生理压力。由于失去了Psi(p0)的负值,使叶片在较宽的叶片水势范围内保持生理功能,从而暗示了土壤基质的抗旱性(Psi(p0))提供了一种强有力的抗旱措施。电位(Psi(土壤))。在这项研究中,Psi(p0)是基于全膨胀时的渗透势(Psi(pi 100))和Psi(p0)之间的已知线性关系,为27种枫树(Acer)基因型计算的。在春季,Acer carpinifolium中的Psi(p0)在-1.4 MPa和Acer rubrum'Northwood'和Acer x freemanii'Autumn Blaze'中都在-2.7 MPa之间变化。在夏季,针形枫木在-1.6 MPa时具有最高的Psi(p0),而枫木枫木在-4.3 MPa时具有最低的Psi(p0)。发现A. rubrum和Acer saccharum品种之间的Psi(p0)有显着差异。发现季节性渗透调节与夏季Psi(p0)之间存在高度显着的关系,这表明渗透调节是宏cer叶片中夏季Psi(p0)的驱动力。这些数据证实了宏cer对缺水的宽容度,并通过提供以前无法获得的定量数据,对物种忍受缺水时期的潜力提供了重要的见识。该技术作为筛选新型和传统植物材料耐旱性的工具显示出巨大的希望。该数据对于那些为城市选址的树木以及寻求评估用于生产目的的基因型的苗圃将是高度相关的。 (C)2015 Elsevier GmbH。版权所有。

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