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Total soil water content accounts for augmented ABA leaf concentration and stomatal regulation of split-rooted apple trees during heterogeneous soil drying

A split-rooted containerized system was developed by approach grafting two, 1-year-old apple (Malus×domestica Borkh. cv ‘Gala’) trees to investigate the effect of soil moisture heterogeneity and total soil moisture content (θ(v)) on tree water relations, gas exchange, and leaf abscisic acid (ABA) co...

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Autores principales: Einhorn, Todd C., Caspari, Horst W., Green, Steve
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3431003/
https://www.ncbi.nlm.nih.gov/pubmed/22791825
http://dx.doi.org/10.1093/jxb/ers195
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author Einhorn, Todd C.
Caspari, Horst W.
Green, Steve
author_facet Einhorn, Todd C.
Caspari, Horst W.
Green, Steve
author_sort Einhorn, Todd C.
collection PubMed
description A split-rooted containerized system was developed by approach grafting two, 1-year-old apple (Malus×domestica Borkh. cv ‘Gala’) trees to investigate the effect of soil moisture heterogeneity and total soil moisture content (θ(v)) on tree water relations, gas exchange, and leaf abscisic acid (ABA) concentration [ABA(leaf)]. Four irrigation treatments comprising a 2×2 factorial experiment of irrigation volume and placement were imposed over a 30-day period: control (C) [>100% of crop evapotranspiration (ET(c))] applied to both containers; PRD100 (>100% ET(c)) applied to one container only; and two treatments receiving 50% ET(c) applied to either one (PRD50) or both containers (DI50). Irrigation between PRD (partial rootzone drying) root compartments was alternated when θ(v) reached ~35% of field capacity. Maximum daily sap flow of the irrigated roots of PRD100 exceeded that of C roots throughout the experimental period. Pre-dawn water potential (Ψ(pd)) was similar between C and PRD100; however, daily water use and mid-day gas exchange of PRD100 was 30% lower. Slightly higher [ABA(leaf)] was observed in PRD100, but the effect was not significant and could not explain the observed reductions in leaf gas exchange. Both 50% ET(c) treatments had similar, but lower θ(v), Ψ(pd), and gas exchange, and higher [ABA(leaf)] than C and PRD100. Regardless of treatment, the container having the lower θ(v) of a split-rooted system correlated poorly with [ABA(leaf)], but when θ(v) of both containers or θ(v) of the container possessing the higher soil moisture was used, the relationship markedly improved. These results imply that apple canopy gas exchange and [ABA(leaf)] are responsive to the total soil water environment. Abbreviations: A: assimilation [ABAleaf]: leaf ABA concentration Bd: bulk density DI: deficit irrigation DOY: day of year dw: dry weight E: transpiration ETc: crop evapotranspiration FC: field capacity gs: stomatal conductance LA: leaf area PAR: photosynthetic active radiation PRD: partial rootzone drying Ψpd: pre-dawn leaf water potential θv: volumetric soil moisture content θw: , gravimetric soil moisture content TCA: trunk cross-sectional area TDR: time-domain reflectometry WUE: water use efficiency.©2012 The Author(s).
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spelling pubmed-34310032012-08-30 Total soil water content accounts for augmented ABA leaf concentration and stomatal regulation of split-rooted apple trees during heterogeneous soil drying Einhorn, Todd C. Caspari, Horst W. Green, Steve J Exp Bot Research Paper A split-rooted containerized system was developed by approach grafting two, 1-year-old apple (Malus×domestica Borkh. cv ‘Gala’) trees to investigate the effect of soil moisture heterogeneity and total soil moisture content (θ(v)) on tree water relations, gas exchange, and leaf abscisic acid (ABA) concentration [ABA(leaf)]. Four irrigation treatments comprising a 2×2 factorial experiment of irrigation volume and placement were imposed over a 30-day period: control (C) [>100% of crop evapotranspiration (ET(c))] applied to both containers; PRD100 (>100% ET(c)) applied to one container only; and two treatments receiving 50% ET(c) applied to either one (PRD50) or both containers (DI50). Irrigation between PRD (partial rootzone drying) root compartments was alternated when θ(v) reached ~35% of field capacity. Maximum daily sap flow of the irrigated roots of PRD100 exceeded that of C roots throughout the experimental period. Pre-dawn water potential (Ψ(pd)) was similar between C and PRD100; however, daily water use and mid-day gas exchange of PRD100 was 30% lower. Slightly higher [ABA(leaf)] was observed in PRD100, but the effect was not significant and could not explain the observed reductions in leaf gas exchange. Both 50% ET(c) treatments had similar, but lower θ(v), Ψ(pd), and gas exchange, and higher [ABA(leaf)] than C and PRD100. Regardless of treatment, the container having the lower θ(v) of a split-rooted system correlated poorly with [ABA(leaf)], but when θ(v) of both containers or θ(v) of the container possessing the higher soil moisture was used, the relationship markedly improved. These results imply that apple canopy gas exchange and [ABA(leaf)] are responsive to the total soil water environment. Abbreviations: A: assimilation [ABAleaf]: leaf ABA concentration Bd: bulk density DI: deficit irrigation DOY: day of year dw: dry weight E: transpiration ETc: crop evapotranspiration FC: field capacity gs: stomatal conductance LA: leaf area PAR: photosynthetic active radiation PRD: partial rootzone drying Ψpd: pre-dawn leaf water potential θv: volumetric soil moisture content θw: , gravimetric soil moisture content TCA: trunk cross-sectional area TDR: time-domain reflectometry WUE: water use efficiency.©2012 The Author(s). Oxford University Press 2012-09 2012-07-12 /pmc/articles/PMC3431003/ /pubmed/22791825 http://dx.doi.org/10.1093/jxb/ers195 Text en © 2012 The Author(s). This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/bync/3.0/uk/) which permits unrestricted noncommercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Paper
Einhorn, Todd C.
Caspari, Horst W.
Green, Steve
Total soil water content accounts for augmented ABA leaf concentration and stomatal regulation of split-rooted apple trees during heterogeneous soil drying
title Total soil water content accounts for augmented ABA leaf concentration and stomatal regulation of split-rooted apple trees during heterogeneous soil drying
title_full Total soil water content accounts for augmented ABA leaf concentration and stomatal regulation of split-rooted apple trees during heterogeneous soil drying
title_fullStr Total soil water content accounts for augmented ABA leaf concentration and stomatal regulation of split-rooted apple trees during heterogeneous soil drying
title_full_unstemmed Total soil water content accounts for augmented ABA leaf concentration and stomatal regulation of split-rooted apple trees during heterogeneous soil drying
title_short Total soil water content accounts for augmented ABA leaf concentration and stomatal regulation of split-rooted apple trees during heterogeneous soil drying
title_sort total soil water content accounts for augmented aba leaf concentration and stomatal regulation of split-rooted apple trees during heterogeneous soil drying
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3431003/
https://www.ncbi.nlm.nih.gov/pubmed/22791825
http://dx.doi.org/10.1093/jxb/ers195
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