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Mechanistic Insight into Salt Tolerance of Acacia auriculiformis: The Importance of Ion Selectivity, Osmoprotection, Tissue Tolerance, and Na(+) Exclusion

Salinity, one of the major environmental constraints, threatens soil health and consequently agricultural productivity worldwide. Acacia auriculiformis, being a halophyte, offers diverse benefits against soil salinity; however, the defense mechanisms underlying salt-tolerant capacity in A. auriculif...

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Autores principales: Rahman, Md. M., Rahman, Md. A., Miah, Md. G., Saha, Satya R., Karim, M. A., Mostofa, Mohammad G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5378810/
https://www.ncbi.nlm.nih.gov/pubmed/28421081
http://dx.doi.org/10.3389/fpls.2017.00155
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author Rahman, Md. M.
Rahman, Md. A.
Miah, Md. G.
Saha, Satya R.
Karim, M. A.
Mostofa, Mohammad G.
author_facet Rahman, Md. M.
Rahman, Md. A.
Miah, Md. G.
Saha, Satya R.
Karim, M. A.
Mostofa, Mohammad G.
author_sort Rahman, Md. M.
collection PubMed
description Salinity, one of the major environmental constraints, threatens soil health and consequently agricultural productivity worldwide. Acacia auriculiformis, being a halophyte, offers diverse benefits against soil salinity; however, the defense mechanisms underlying salt-tolerant capacity in A. auriculiformis are still elusive. In this study, we aimed to elucidate mechanisms regulating the adaptability of the multi-purpose perennial species A. auriculiformis to salt stress. The growth, ion homeostasis, osmoprotection, tissue tolerance and Na(+) exclusion, and anatomical adjustments of A. auriculiformis grown in varied doses of seawater for 90 and 150 days were assessed. Results showed that diluted seawater caused notable reductions in the level of growth-related parameters, relative water content, stomatal conductance, photosynthetic pigments, proteins, and carbohydrates in dose- and time-dependent manners. However, the percent reduction of these parameters did not exceed 50% of those of control plants. Na(+) contents in phyllodes and roots increased with increasing levels of salinity, whereas K(+) contents and K(+)/Na(+) ratio decreased significantly in comparison with control plants. A. auriculiformis retained more Na(+) in the roots and maintained higher levels of K(+), Ca(2+) and Mg(2+), and K(+)/Na(+) ratio in phyllodes than roots through ion selective capacity. The contents of proline, total free amino acids, total sugars and reducing sugars significantly accumulated together with the levels of malondialdehyde and electrolyte leakage in the phyllodes, particularly at day 150(th) of salt treatment. Anatomical investigations revealed various anatomical changes in the tissues of phyllodes, stems and roots by salt stress, such as increase in the size of spongy parenchyma of phyllodes, endodermal thickness of stems and roots, and the diameter of root vascular bundle, relative to control counterparts. Furthermore, the estimated values for Na(+) exclusion and tissue tolerance index suggested that A. auriculiformis efficiently adopted these two mechanisms to address higher salinity levels. Our results conclude that the adaptability of A. auriculiformis to salinity is closely associated with ion selectivity, increased accumulation of osmoprotectants, efficient Na(+) retention in roots, anatomical adjustments, Na(+) exclusion and tissue tolerance mechanisms.
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spelling pubmed-53788102017-04-18 Mechanistic Insight into Salt Tolerance of Acacia auriculiformis: The Importance of Ion Selectivity, Osmoprotection, Tissue Tolerance, and Na(+) Exclusion Rahman, Md. M. Rahman, Md. A. Miah, Md. G. Saha, Satya R. Karim, M. A. Mostofa, Mohammad G. Front Plant Sci Plant Science Salinity, one of the major environmental constraints, threatens soil health and consequently agricultural productivity worldwide. Acacia auriculiformis, being a halophyte, offers diverse benefits against soil salinity; however, the defense mechanisms underlying salt-tolerant capacity in A. auriculiformis are still elusive. In this study, we aimed to elucidate mechanisms regulating the adaptability of the multi-purpose perennial species A. auriculiformis to salt stress. The growth, ion homeostasis, osmoprotection, tissue tolerance and Na(+) exclusion, and anatomical adjustments of A. auriculiformis grown in varied doses of seawater for 90 and 150 days were assessed. Results showed that diluted seawater caused notable reductions in the level of growth-related parameters, relative water content, stomatal conductance, photosynthetic pigments, proteins, and carbohydrates in dose- and time-dependent manners. However, the percent reduction of these parameters did not exceed 50% of those of control plants. Na(+) contents in phyllodes and roots increased with increasing levels of salinity, whereas K(+) contents and K(+)/Na(+) ratio decreased significantly in comparison with control plants. A. auriculiformis retained more Na(+) in the roots and maintained higher levels of K(+), Ca(2+) and Mg(2+), and K(+)/Na(+) ratio in phyllodes than roots through ion selective capacity. The contents of proline, total free amino acids, total sugars and reducing sugars significantly accumulated together with the levels of malondialdehyde and electrolyte leakage in the phyllodes, particularly at day 150(th) of salt treatment. Anatomical investigations revealed various anatomical changes in the tissues of phyllodes, stems and roots by salt stress, such as increase in the size of spongy parenchyma of phyllodes, endodermal thickness of stems and roots, and the diameter of root vascular bundle, relative to control counterparts. Furthermore, the estimated values for Na(+) exclusion and tissue tolerance index suggested that A. auriculiformis efficiently adopted these two mechanisms to address higher salinity levels. Our results conclude that the adaptability of A. auriculiformis to salinity is closely associated with ion selectivity, increased accumulation of osmoprotectants, efficient Na(+) retention in roots, anatomical adjustments, Na(+) exclusion and tissue tolerance mechanisms. Frontiers Media S.A. 2017-04-04 /pmc/articles/PMC5378810/ /pubmed/28421081 http://dx.doi.org/10.3389/fpls.2017.00155 Text en Copyright © 2017 Rahman, Rahman, Miah, Saha, Karim and Mostofa. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Rahman, Md. M.
Rahman, Md. A.
Miah, Md. G.
Saha, Satya R.
Karim, M. A.
Mostofa, Mohammad G.
Mechanistic Insight into Salt Tolerance of Acacia auriculiformis: The Importance of Ion Selectivity, Osmoprotection, Tissue Tolerance, and Na(+) Exclusion
title Mechanistic Insight into Salt Tolerance of Acacia auriculiformis: The Importance of Ion Selectivity, Osmoprotection, Tissue Tolerance, and Na(+) Exclusion
title_full Mechanistic Insight into Salt Tolerance of Acacia auriculiformis: The Importance of Ion Selectivity, Osmoprotection, Tissue Tolerance, and Na(+) Exclusion
title_fullStr Mechanistic Insight into Salt Tolerance of Acacia auriculiformis: The Importance of Ion Selectivity, Osmoprotection, Tissue Tolerance, and Na(+) Exclusion
title_full_unstemmed Mechanistic Insight into Salt Tolerance of Acacia auriculiformis: The Importance of Ion Selectivity, Osmoprotection, Tissue Tolerance, and Na(+) Exclusion
title_short Mechanistic Insight into Salt Tolerance of Acacia auriculiformis: The Importance of Ion Selectivity, Osmoprotection, Tissue Tolerance, and Na(+) Exclusion
title_sort mechanistic insight into salt tolerance of acacia auriculiformis: the importance of ion selectivity, osmoprotection, tissue tolerance, and na(+) exclusion
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5378810/
https://www.ncbi.nlm.nih.gov/pubmed/28421081
http://dx.doi.org/10.3389/fpls.2017.00155
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