首页> 外文期刊>Theoretical and Experimental Plant Physiology >Late reduction on transpiration is an important trait for water deficit tolerance in interspecific Prunus rootstock hybrids
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Late reduction on transpiration is an important trait for water deficit tolerance in interspecific Prunus rootstock hybrids

机译:蒸腾迟到的蒸腾是在三种植物砧木杂种中的水缺陷耐受性的重要特征

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Water deficit presents new challenges for fruit production, among which, obtaining and selecting tolerant genotypes has become relevant. The aim of this work was to characterize novel Prunus rootstocks in regard to tolerance to water deficit as a key trait to cope the challenges for agriculture imposed by the climate change expected in the near future. Here, we report the assessment of physiological parameters and growth responses to water deficit of four interspecific Prunus rootstock hybrids. Two commercially available rootstocks, ROOTPAC (R) 40 and ROOTPAC (R) 20, and two experimental genotypes, AGAF 0301-07 and ADAGAF 0403 were evaluated. Plants were subjected to two irrigation treatments (well-watered and water deficit) during 33 days. During this period, stomatal conductance (g(s)) and photosynthetic CO2 assimilation (P-n) were measured. At the end of the experiment, biomass accumulation was registered for all the genotypes, while the expression of seven aquaporins belonging to plasma membrane intrinsic proteins subfamily (PIPs) was assessed in ROOTPAC (R) 40 and ROOTPAC (R) 20. ROOTPAC (R) 20 had a decrease in the aquaporin gene expression in roots and this could be associated with its early decline in transpiration. Biomass accumulation was lower in ROOTPAC (R) 20, AGAF 0301-07 and ADAGAF 0403 due to the water deficit. However, ROOTPAC (R) 40 showed a larger whole-plant water use efficiency under water deficit because of a later reduction in relative transpiration under low fractions of transpirable soil water. This response resulted in higher biomass accumulation in ROOTPAC (R) 40 than the other genotypes. We identified ROOTPAC (R) 40 as a tolerant genotype to water deficit, which is majorly explained by a later reduction in relative transpiration under water deficit.
机译:水资源赤字对果实产量提出了新的挑战,其中,获得和选择耐受性基因型已成为相关性。这项工作的目的是在对水资源赤字的耐受性中表征新的Prunus砧木,以应对在不久的将来预期的气候变化所施加的农业挑战。在这里,我们报告了对四种三种三种植物砧木的水缺损的生理参数和生长反应的评估。评估了两种市售的砧木,rootpac40和rootpac(R)20和两种实验基因型,AgAF 0301-07和AdAgaf 0403。在33天内经过两种灌溉治疗(浇水和水赤字)。在此期间,测量气孔电导(G(S))和光合作用CO2同化(P-N)。在实验结束时,为所有基因型注册生物质积聚,而属于血浆膜的七种水蛋白酶的表达,以rootpac(r)40和rootpac(r)20. rootpac(r )20在根系中的水素基因表达减少,这可能与其早期蒸腾的下降相关。由于水赤字,生物质积聚在rootpac(r)20,agaf 0301-07和Adagaf 0403中较低。然而,由于在过散土壤水的低级分下的相对蒸腾后后,Rootpac(R)40在水缺陷下显示了较大的全植物用水效率。该响应导致rootpac(r)40中的生物量累积比其他基因型更高。我们将Rootpac(R)40鉴定为耐水性缺陷的耐受基因型,主要是通过在水缺损下的相对蒸腾下的后续减少来解释。

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