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Adaptation Strategies of Halophytic Barley Hordeum marinum ssp. marinum to High Salinity and Osmotic Stress

The adaptation strategies of halophytic seaside barley Hordeum marinum to high salinity and osmotic stress were investigated by nuclear magnetic resonance imaging, as well as ionomic, metabolomic, and transcriptomic approaches. When compared with cultivated barley, seaside barley exhibited a better...

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Autores principales: Isayenkov, Stanislav, Hilo, Alexander, Rizzo, Paride, Tandron Moya, Yudelsy Antonia, Rolletschek, Hardy, Borisjuk, Ljudmilla, Radchuk, Volodymyr
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7730945/
https://www.ncbi.nlm.nih.gov/pubmed/33260985
http://dx.doi.org/10.3390/ijms21239019
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author Isayenkov, Stanislav
Hilo, Alexander
Rizzo, Paride
Tandron Moya, Yudelsy Antonia
Rolletschek, Hardy
Borisjuk, Ljudmilla
Radchuk, Volodymyr
author_facet Isayenkov, Stanislav
Hilo, Alexander
Rizzo, Paride
Tandron Moya, Yudelsy Antonia
Rolletschek, Hardy
Borisjuk, Ljudmilla
Radchuk, Volodymyr
author_sort Isayenkov, Stanislav
collection PubMed
description The adaptation strategies of halophytic seaside barley Hordeum marinum to high salinity and osmotic stress were investigated by nuclear magnetic resonance imaging, as well as ionomic, metabolomic, and transcriptomic approaches. When compared with cultivated barley, seaside barley exhibited a better plant growth rate, higher relative plant water content, lower osmotic pressure, and sustained photosynthetic activity under high salinity, but not under osmotic stress. As seaside barley is capable of controlling Na(+) and Cl(−) concentrations in leaves at high salinity, the roots appear to play the central role in salinity adaptation, ensured by the development of thinner and likely lignified roots, as well as fine-tuning of membrane transport for effective management of restriction of ion entry and sequestration, accumulation of osmolytes, and minimization of energy costs. By contrast, more resources and energy are required to overcome the consequences of osmotic stress, particularly the severity of reactive oxygen species production and nutritional disbalance which affect plant growth. Our results have identified specific mechanisms for adaptation to salinity in seaside barley which differ from those activated in response to osmotic stress. Increased knowledge around salt tolerance in halophytic wild relatives will provide a basis for improved breeding of salt-tolerant crops.
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spelling pubmed-77309452020-12-12 Adaptation Strategies of Halophytic Barley Hordeum marinum ssp. marinum to High Salinity and Osmotic Stress Isayenkov, Stanislav Hilo, Alexander Rizzo, Paride Tandron Moya, Yudelsy Antonia Rolletschek, Hardy Borisjuk, Ljudmilla Radchuk, Volodymyr Int J Mol Sci Article The adaptation strategies of halophytic seaside barley Hordeum marinum to high salinity and osmotic stress were investigated by nuclear magnetic resonance imaging, as well as ionomic, metabolomic, and transcriptomic approaches. When compared with cultivated barley, seaside barley exhibited a better plant growth rate, higher relative plant water content, lower osmotic pressure, and sustained photosynthetic activity under high salinity, but not under osmotic stress. As seaside barley is capable of controlling Na(+) and Cl(−) concentrations in leaves at high salinity, the roots appear to play the central role in salinity adaptation, ensured by the development of thinner and likely lignified roots, as well as fine-tuning of membrane transport for effective management of restriction of ion entry and sequestration, accumulation of osmolytes, and minimization of energy costs. By contrast, more resources and energy are required to overcome the consequences of osmotic stress, particularly the severity of reactive oxygen species production and nutritional disbalance which affect plant growth. Our results have identified specific mechanisms for adaptation to salinity in seaside barley which differ from those activated in response to osmotic stress. Increased knowledge around salt tolerance in halophytic wild relatives will provide a basis for improved breeding of salt-tolerant crops. MDPI 2020-11-27 /pmc/articles/PMC7730945/ /pubmed/33260985 http://dx.doi.org/10.3390/ijms21239019 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Isayenkov, Stanislav
Hilo, Alexander
Rizzo, Paride
Tandron Moya, Yudelsy Antonia
Rolletschek, Hardy
Borisjuk, Ljudmilla
Radchuk, Volodymyr
Adaptation Strategies of Halophytic Barley Hordeum marinum ssp. marinum to High Salinity and Osmotic Stress
title Adaptation Strategies of Halophytic Barley Hordeum marinum ssp. marinum to High Salinity and Osmotic Stress
title_full Adaptation Strategies of Halophytic Barley Hordeum marinum ssp. marinum to High Salinity and Osmotic Stress
title_fullStr Adaptation Strategies of Halophytic Barley Hordeum marinum ssp. marinum to High Salinity and Osmotic Stress
title_full_unstemmed Adaptation Strategies of Halophytic Barley Hordeum marinum ssp. marinum to High Salinity and Osmotic Stress
title_short Adaptation Strategies of Halophytic Barley Hordeum marinum ssp. marinum to High Salinity and Osmotic Stress
title_sort adaptation strategies of halophytic barley hordeum marinum ssp. marinum to high salinity and osmotic stress
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7730945/
https://www.ncbi.nlm.nih.gov/pubmed/33260985
http://dx.doi.org/10.3390/ijms21239019
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