Water Relations, Gas Exchange, Chlorophyll Fluorescence and Electrolyte Leakage of Ectomycorrhizal <i>Pinus halepensis</i> Seedlings in Response to Multi-Heavy Metal Stresses (Pb, Zn, Cd)

The success of mine site restoration programs in arid and semi-arid areas poses a significant challenge and requires the use of high-quality seedlings capable of tolerating heavy metal stresses. The effect of ectomycorrhizal fungi on different physiological traits was investigated in <i>Pinus...

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Main Authors: Chadlia Hachani, Mohammed S. Lamhamedi, Abdenbi Zine El Abidine, Mejda Abassi, Damase P. Khasa, Zoubeir Béjaoui
Format: Article
Language:English
Published: MDPI AG 2021-12-01
Series:Microorganisms
Subjects:
Online Access:https://www.mdpi.com/2076-2607/10/1/57
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author Chadlia Hachani
Mohammed S. Lamhamedi
Abdenbi Zine El Abidine
Mejda Abassi
Damase P. Khasa
Zoubeir Béjaoui
author_facet Chadlia Hachani
Mohammed S. Lamhamedi
Abdenbi Zine El Abidine
Mejda Abassi
Damase P. Khasa
Zoubeir Béjaoui
author_sort Chadlia Hachani
collection DOAJ
description The success of mine site restoration programs in arid and semi-arid areas poses a significant challenge and requires the use of high-quality seedlings capable of tolerating heavy metal stresses. The effect of ectomycorrhizal fungi on different physiological traits was investigated in <i>Pinus halepensis</i> seedlings grown in soil contaminated with heavy metals (Pb-Zn-Cd). Ectomycorrhizal (M) and non-ectomycorrhizal (NM) seedlings were subjected to heavy metals stress (C: contaminated, NC: control or non-contaminated) soils conditions for 12 months. Gas exchange, chlorophyll fluorescence, water relations parameters derived from pressure–volume curves and electrolyte leakage were evaluated at 4, 8 and 12 months. Ectomycorrhizal symbiosis promoted stronger resistance to heavy metals and improved gas exchange parameters and water-use efficiency compared to the non-ectomycorrhizal seedlings. The decrease in leaf osmotic potentials (Ψ<sub>π</sub><sup>100</sup>: osmotic potential at saturation and Ψ<sub>π</sub><sup>0</sup>: osmotic potential with loss of turgor) was higher for M-C seedling than NM-C ones, indicating that the ectomycorrhizal symbiosis promotes cellular osmotic adjustment and protects leaf membrane cell against leakage induced by Pb, Zn and Cd. Our results suggest that the use of ectomycorrhizal symbiosis is among the promising practices to improve the morphophysiological quality of seedlings produced in forest nurseries, their performance and their tolerance to multi-heavy metal stresses.
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spelling doaj.art-4285b01fc7ec407eb9eb2988aa376a672023-11-23T14:46:36ZengMDPI AGMicroorganisms2076-26072021-12-011015710.3390/microorganisms10010057Water Relations, Gas Exchange, Chlorophyll Fluorescence and Electrolyte Leakage of Ectomycorrhizal <i>Pinus halepensis</i> Seedlings in Response to Multi-Heavy Metal Stresses (Pb, Zn, Cd)Chadlia Hachani0Mohammed S. Lamhamedi1Abdenbi Zine El Abidine2Mejda Abassi3Damase P. Khasa4Zoubeir Béjaoui5Faculty of Sciences of Bizerte, University of Carthage, Jarzouna 7021, TunisiaCentre for Forest Studies, Faculty of Forestry, Geography and Geomatics, Abitibi Price Building, Laval University, Quebec, QC G1V 0A6, CanadaNational Forest School of Engineers, B.P. 5 1 1, Tabriquet, Salé 11015, MoroccoLaboratory of Forest Ecology (LR11INRGREF03), National Institute of Research in Rural Engineering, Water and Forests (INRGREF), University of Carthage, Hédi Elkarray Street, Elmenzah IV, BP 10, Ariana 2080, TunisiaCentre for Forest Research and Institute for Systems and Integrative Biology, Université Laval, 1030 Avenue de la Médecine, Quebec, QC G1V 0A6, CanadaFaculty of Sciences of Bizerte, University of Carthage, Jarzouna 7021, TunisiaThe success of mine site restoration programs in arid and semi-arid areas poses a significant challenge and requires the use of high-quality seedlings capable of tolerating heavy metal stresses. The effect of ectomycorrhizal fungi on different physiological traits was investigated in <i>Pinus halepensis</i> seedlings grown in soil contaminated with heavy metals (Pb-Zn-Cd). Ectomycorrhizal (M) and non-ectomycorrhizal (NM) seedlings were subjected to heavy metals stress (C: contaminated, NC: control or non-contaminated) soils conditions for 12 months. Gas exchange, chlorophyll fluorescence, water relations parameters derived from pressure–volume curves and electrolyte leakage were evaluated at 4, 8 and 12 months. Ectomycorrhizal symbiosis promoted stronger resistance to heavy metals and improved gas exchange parameters and water-use efficiency compared to the non-ectomycorrhizal seedlings. The decrease in leaf osmotic potentials (Ψ<sub>π</sub><sup>100</sup>: osmotic potential at saturation and Ψ<sub>π</sub><sup>0</sup>: osmotic potential with loss of turgor) was higher for M-C seedling than NM-C ones, indicating that the ectomycorrhizal symbiosis promotes cellular osmotic adjustment and protects leaf membrane cell against leakage induced by Pb, Zn and Cd. Our results suggest that the use of ectomycorrhizal symbiosis is among the promising practices to improve the morphophysiological quality of seedlings produced in forest nurseries, their performance and their tolerance to multi-heavy metal stresses.https://www.mdpi.com/2076-2607/10/1/57<i>Pinus halepensis</i><i>Rhizopogon</i>metal stressosmotic adjustmentnet photosynthesistolerance
spellingShingle Chadlia Hachani
Mohammed S. Lamhamedi
Abdenbi Zine El Abidine
Mejda Abassi
Damase P. Khasa
Zoubeir Béjaoui
Water Relations, Gas Exchange, Chlorophyll Fluorescence and Electrolyte Leakage of Ectomycorrhizal <i>Pinus halepensis</i> Seedlings in Response to Multi-Heavy Metal Stresses (Pb, Zn, Cd)
Microorganisms
<i>Pinus halepensis</i>
<i>Rhizopogon</i>
metal stress
osmotic adjustment
net photosynthesis
tolerance
title Water Relations, Gas Exchange, Chlorophyll Fluorescence and Electrolyte Leakage of Ectomycorrhizal <i>Pinus halepensis</i> Seedlings in Response to Multi-Heavy Metal Stresses (Pb, Zn, Cd)
title_full Water Relations, Gas Exchange, Chlorophyll Fluorescence and Electrolyte Leakage of Ectomycorrhizal <i>Pinus halepensis</i> Seedlings in Response to Multi-Heavy Metal Stresses (Pb, Zn, Cd)
title_fullStr Water Relations, Gas Exchange, Chlorophyll Fluorescence and Electrolyte Leakage of Ectomycorrhizal <i>Pinus halepensis</i> Seedlings in Response to Multi-Heavy Metal Stresses (Pb, Zn, Cd)
title_full_unstemmed Water Relations, Gas Exchange, Chlorophyll Fluorescence and Electrolyte Leakage of Ectomycorrhizal <i>Pinus halepensis</i> Seedlings in Response to Multi-Heavy Metal Stresses (Pb, Zn, Cd)
title_short Water Relations, Gas Exchange, Chlorophyll Fluorescence and Electrolyte Leakage of Ectomycorrhizal <i>Pinus halepensis</i> Seedlings in Response to Multi-Heavy Metal Stresses (Pb, Zn, Cd)
title_sort water relations gas exchange chlorophyll fluorescence and electrolyte leakage of ectomycorrhizal i pinus halepensis i seedlings in response to multi heavy metal stresses pb zn cd
topic <i>Pinus halepensis</i>
<i>Rhizopogon</i>
metal stress
osmotic adjustment
net photosynthesis
tolerance
url https://www.mdpi.com/2076-2607/10/1/57
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