Dayer Silvina, Scharwies Johannes D, Ramesh Sunita A, Sullivan Wendy, Doerflinger Franziska C, Pagay Vinay, Tyerman Stephen D
School of Agriculture, Food and Wine, The University of Adelaide, Glen Osmond, SA, Australia.
Australian Research Council Centre of Excellence in Plant Energy Biology, Waite Research Institute, School of Agriculture, Food and Wine, The University of Adelaide, Adelaide, SA, Australia.
Front Plant Sci. 2020 Jun 19;11:705. doi: 10.3389/fpls.2020.00705. eCollection 2020.
Hydraulics of plants that have different strategies of stomatal regulation under water stress are relatively poorly understood. We explore how root and shoot hydraulics, stomatal conductance ( ), leaf and root aquaporin (AQP) expression, and abscisic acid (ABA) concentration in leaf xylem sap ([ABA]) may be coordinated under mild water stress and exogenous ABA applications in two L. cultivars traditionally classified as near-isohydric (Grenache) and near-anisohydric (Syrah). Under water stress, Grenache exhibited stronger adjustments of plant and root hydraulic conductances and greater stomatal sensitivity to [ABA] than Syrah resulting in greater conservation of soil moisture but not necessarily more isohydric behavior. Correlations between leaf (Ψ) and predawn (Ψ) water potentials between cultivars suggested a "hydrodynamic" behavior rather than a particular iso-anisohydric classification. A significant decrease of Ψ in well-watered ABA-fed vines supported a role of ABA in the soil-leaf hydraulic pathway to regulate . Correlations between leaf and root AQPs expression levels under water deficit could explain the response of leaf ( ) and root ( ) hydraulic conductances in both cultivars. Additional studies under a wider range of soil water deficits are required to explore the possible differential regulation of and plant hydraulics in different cultivars and experimental conditions.
对于在水分胁迫下具有不同气孔调节策略的植物的水力学,我们了解得相对较少。我们探究了在轻度水分胁迫和外源脱落酸(ABA)处理下,两个传统上被归类为近等水势(歌海娜)和近非等水势(西拉)的酿酒葡萄品种的根和茎水力学、气孔导度( )、叶和根水通道蛋白(AQP)表达以及叶木质部汁液中脱落酸(ABA)浓度([ABA])是如何协调的。在水分胁迫下,歌海娜比西拉表现出更强的植物和根水力导度调节以及对[ABA]更高的气孔敏感性,从而导致对土壤水分的更大程度的保持,但不一定表现出更多的等水行为。品种间叶水势(Ψ)和黎明前水势(Ψ)之间的相关性表明存在一种“水动力学”行为,而不是特定的等水 - 非等水分类。在充分浇水并施加ABA的葡萄藤中,Ψ的显著降低支持了ABA在土壤 - 叶水力学途径中调节 的作用。水分亏缺下叶和根AQPs表达水平之间的相关性可以解释两个品种中叶( )和根( )水力导度的响应。需要在更广泛的土壤水分亏缺条件下进行进一步研究,以探索不同品种和实验条件下 和植物水力学可能存在的差异调节。