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Homeostasis in Leaf Water Potentials on Leeward and Windward Sides of Desert Shrub Crowns: Water Loss Control Vs. High Hydraulic Efficiency

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Journal Oecologia
Date 2013 Apr 30
PMID 23624673
Citations 1
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Abstract

Phenotypic plasticity in morphophysiological leaf traits in response to wind was studied in two dominant shrub species of the Patagonian steppe, used as model systems for understanding effects of high wind speed on leaf water relations and hydraulic properties of small woody plants. Morpho-anatomical traits, hydraulic conductance and conductivity and water relations in leaves of wind-exposed and protected crown sides were examined during the summer with nearly continuous high winds. Although exposed sides of the crowns were subjected to higher wind speeds and air saturation deficits than the protected sides, leaves throughout the crown had similar minimum leaf water potential (ΨL). The two species were able to maintain homeostasis in minimum ΨL using different physiological mechanisms. Berberis microphylla avoided a decrease in the minimum ΨL in the exposed side of the crown by reducing water loss by stomatal control, loss of cell turgor and low epidermal conductance. Colliguaja integerrima increased leaf water transport efficiency to maintain transpiration rates without increasing the driving force for water loss in the wind-exposed crown side. Leaf physiological changes within the crown help to prevent the decrease of minimum ΨL and thus contribute to the maintenance of homeostasis, assuring the hydraulic integrity of the plant under unfavorable conditions. The responses of leaf traits that contribute to mechanical resistance (leaf mass per area and thickness) differed from those of large physiological traits by exhibiting low phenotypic plasticity. The results of this study help us to understand the unique properties of shrubs which have different hydraulic architecture compared to trees.

Citing Articles

Leaf surface traits contributing to wettability, water interception and uptake of above-ground water sources in shrubs of Patagonian arid ecosystems.

Cavallaro A, Carbonell-Silletta L, Burek A, Goldstein G, Scholz F, Bucci S Ann Bot. 2022; 130(3):409-418.

PMID: 35325023 PMC: 9486909. DOI: 10.1093/aob/mcac042.

References
1.
Bucci S, Scholz F, Goldstein G, Meinzer F, Arce M . Soil water availability and rooting depth as determinants of hydraulic architecture of Patagonian woody species. Oecologia. 2009; 160(4):631-41. DOI: 10.1007/s00442-009-1331-z. View

2.
Sack L, Melcher P, Liu W, Middleton E, Pardee T . How strong is intracanopy leaf plasticity in temperate deciduous trees?. Am J Bot. 2011; 93(6):829-39. DOI: 10.3732/ajb.93.6.829. View

3.
Tyree M, Sperry J . Do woody plants operate near the point of catastrophic xylem dysfunction caused by dynamic water stress? : answers from a model. Plant Physiol. 1988; 88(3):574-80. PMC: 1055627. DOI: 10.1104/pp.88.3.574. View

4.
Ellsworth D, Reich P . Canopy structure and vertical patterns of photosynthesis and related leaf traits in a deciduous forest. Oecologia. 2017; 96(2):169-178. DOI: 10.1007/BF00317729. View

5.
Scholz F, Bucci S, Arias N, Meinzer F, Goldstein G . Osmotic and elastic adjustments in cold desert shrubs differing in rooting depth: coping with drought and subzero temperatures. Oecologia. 2012; 170(4):885-97. DOI: 10.1007/s00442-012-2368-y. View