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部分根区干燥灌溉过程中干湿侧交替会改变脱落酸的根-梢信号传导。

Alternation of wet and dry sides during partial rootzone drying irrigation alters root-to-shoot signalling of abscisic acid.

作者信息

Dodd Ian C, Theobald Julian C, Bacon Mark A, Davies William J

机构信息

The Lancaster Environment Centre, Lancaster University, Lancaster LA1 4YQ, UK.

出版信息

Funct Plant Biol. 2006 Dec;33(12):1081-1089. doi: 10.1071/FP06203.

Abstract

Partial rootzone drying (PRD) is an irrigation technique where water is distributed unevenly to the root system such that part is irrigated while the remainder is allowed to dry the soil. Tomato (Lycopersicon esculentum Mill.) plants were grown with their roots in two soil columns to compare the physiological consequences of alternation of wet and dry columns during PRD irrigation (alternate PRD, PRD-A) with retention of the same wet and dry columns (fixed PRD, PRD-F). When PRD plants received 50% less water than well-watered (WW) plants, xylem ABA concentration ([X-ABA]) increased and stomatal conductance decreased relative to WW plants. Although both sets of PRD plants received the same amount of water, [X-ABA] of PRD-A plants increased up to 2-fold above that of PRD-F plants, which further decreased stomatal conductance. Differences in [X-ABA] were detected within an hour of alternation, but did not persist beyond the photoperiod of alternation. [X-ABA] increased linearly as whole-pot soil water content (θ) and leaf water potential (Ψ) declined, but the difference in [X-ABA] between the two sets of PRD plants was not due to differences in either θ or Ψ. In PRD-F plants, the unwatered part of the root system contributes proportionally less to the transpiration stream as the soil progressively dries (Yao et al. 2001, Plant, Cell & Environment 24, 227-235). In PRD-A plants, we hypothesise that re-watering the dry part of the root system allows these roots to contribute proportionally more to total sap flux, thus liberating a pulse of ABA to the transpiration stream as the root ABA pool accumulated during soil drying is depleted. Since the enhancement of [X-ABA] caused by PRD-A increased as θ and Ψ declined, an optimal frequency of alternation to maximise the cumulative physiological effects of this ABA pulse must consider possible negative impacts of leaf water deficit as soil water status declines.

摘要

部分根区干燥(PRD)是一种灌溉技术,即水分不均匀地分布于根系,使得一部分根系得到灌溉,而其余部分则让土壤干燥。番茄(Lycopersicon esculentum Mill.)植株种植于两个土柱中,其根系分布其中,以比较PRD灌溉期间湿柱和干柱交替(交替PRD,PRD-A)与保持相同的湿柱和干柱(固定PRD,PRD-F)所产生的生理影响。当PRD处理的植株比充分浇水(WW)的植株少接受50%的水分时,与WW植株相比,木质部脱落酸浓度([X-ABA])增加,气孔导度降低。尽管两组PRD处理的植株接受的水量相同,但PRD-A植株的[X-ABA]比PRD-F植株高出2倍,这进一步降低了气孔导度。在交替处理1小时内检测到[X-ABA]的差异,但在交替光周期之后差异不再持续。[X-ABA]随着整盆土壤含水量(θ)和叶片水势(Ψ)的下降呈线性增加,但两组PRD处理植株之间[X-ABA]的差异并非由θ或Ψ的差异所致。在PRD-F植株中,随着土壤逐渐变干,未浇水的根系部分对蒸腾流的贡献成比例减少(Yao等人,2001年,《植物、细胞与环境》24卷,227 - 235页)。在PRD-A植株中,我们推测,对根系干燥部分重新浇水可使这些根系对总液流通量的贡献成比例增加,因此,随着土壤干燥期间根系脱落酸库的消耗,会有一阵脱落酸释放到蒸腾流中。由于PRD-A引起的[X-ABA]增强随着θ和Ψ的下降而增加,为使这种脱落酸脉冲的累积生理效应最大化,交替的最佳频率必须考虑随着土壤水分状况下降叶片水分亏缺可能产生的负面影响。

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