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Transcriptome and Low-Affinity Sodium Transport Analysis Reveals Salt Tolerance Variations between Two Poplar Trees

Salinity stress severely hampers plant growth and productivity. How to improve plants’ salt tolerance is an urgent issue. However, the molecular basis of plant resistance to salinity still remains unclear. In this study, we used two poplar species with different salt sensitivities to conduct RNA-seq...

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Autores principales: Ma, Xuan, Zhang, Qiang, Ou, Yongbin, Wang, Lijun, Gao, Yongfeng, Lucas, Gutiérrez Rodríguez, Resco de Dios, Víctor, Yao, Yinan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10058024/
https://www.ncbi.nlm.nih.gov/pubmed/36982804
http://dx.doi.org/10.3390/ijms24065732
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author Ma, Xuan
Zhang, Qiang
Ou, Yongbin
Wang, Lijun
Gao, Yongfeng
Lucas, Gutiérrez Rodríguez
Resco de Dios, Víctor
Yao, Yinan
author_facet Ma, Xuan
Zhang, Qiang
Ou, Yongbin
Wang, Lijun
Gao, Yongfeng
Lucas, Gutiérrez Rodríguez
Resco de Dios, Víctor
Yao, Yinan
author_sort Ma, Xuan
collection PubMed
description Salinity stress severely hampers plant growth and productivity. How to improve plants’ salt tolerance is an urgent issue. However, the molecular basis of plant resistance to salinity still remains unclear. In this study, we used two poplar species with different salt sensitivities to conduct RNA-sequencing and physiological and pharmacological analyses; the aim is to study the transcriptional profiles and ionic transport characteristics in the roots of the two Populus subjected to salt stress under hydroponic culture conditions. Our results show that numerous genes related to energy metabolism were highly expressed in Populus alba relative to Populus russkii, which activates vigorous metabolic processes and energy reserves for initiating a set of defense responses when suffering from salinity stress. Moreover, we found the capacity of Na(+) transportation by the P. alba high-affinity K+ transporter1;2 (HKT1;2) was superior to that of P. russkii under salt stress, which enables P. alba to efficiently recycle xylem-loaded Na(+) and to maintain shoot K(+)/Na(+) homeostasis. Furthermore, the genes involved in the synthesis of ethylene and abscisic acid were up-regulated in P. alba but downregulated in P. russkii under salt stress. In P. alba, the gibberellin inactivation and auxin signaling genes with steady high transcriptions, several antioxidant enzymes activities (such as peroxidase [POD], ascorbate peroxidase [APX], and glutathione reductase [GR]), and glycine-betaine content were significantly increased under salt stress. These factors altogether confer P. alba a higher resistance to salinity, achieving a more efficient coordination between growth modulation and defense response. Our research provides significant evidence to improve the salt tolerance of crops or woody plants.
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spelling pubmed-100580242023-03-30 Transcriptome and Low-Affinity Sodium Transport Analysis Reveals Salt Tolerance Variations between Two Poplar Trees Ma, Xuan Zhang, Qiang Ou, Yongbin Wang, Lijun Gao, Yongfeng Lucas, Gutiérrez Rodríguez Resco de Dios, Víctor Yao, Yinan Int J Mol Sci Article Salinity stress severely hampers plant growth and productivity. How to improve plants’ salt tolerance is an urgent issue. However, the molecular basis of plant resistance to salinity still remains unclear. In this study, we used two poplar species with different salt sensitivities to conduct RNA-sequencing and physiological and pharmacological analyses; the aim is to study the transcriptional profiles and ionic transport characteristics in the roots of the two Populus subjected to salt stress under hydroponic culture conditions. Our results show that numerous genes related to energy metabolism were highly expressed in Populus alba relative to Populus russkii, which activates vigorous metabolic processes and energy reserves for initiating a set of defense responses when suffering from salinity stress. Moreover, we found the capacity of Na(+) transportation by the P. alba high-affinity K+ transporter1;2 (HKT1;2) was superior to that of P. russkii under salt stress, which enables P. alba to efficiently recycle xylem-loaded Na(+) and to maintain shoot K(+)/Na(+) homeostasis. Furthermore, the genes involved in the synthesis of ethylene and abscisic acid were up-regulated in P. alba but downregulated in P. russkii under salt stress. In P. alba, the gibberellin inactivation and auxin signaling genes with steady high transcriptions, several antioxidant enzymes activities (such as peroxidase [POD], ascorbate peroxidase [APX], and glutathione reductase [GR]), and glycine-betaine content were significantly increased under salt stress. These factors altogether confer P. alba a higher resistance to salinity, achieving a more efficient coordination between growth modulation and defense response. Our research provides significant evidence to improve the salt tolerance of crops or woody plants. MDPI 2023-03-17 /pmc/articles/PMC10058024/ /pubmed/36982804 http://dx.doi.org/10.3390/ijms24065732 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ma, Xuan
Zhang, Qiang
Ou, Yongbin
Wang, Lijun
Gao, Yongfeng
Lucas, Gutiérrez Rodríguez
Resco de Dios, Víctor
Yao, Yinan
Transcriptome and Low-Affinity Sodium Transport Analysis Reveals Salt Tolerance Variations between Two Poplar Trees
title Transcriptome and Low-Affinity Sodium Transport Analysis Reveals Salt Tolerance Variations between Two Poplar Trees
title_full Transcriptome and Low-Affinity Sodium Transport Analysis Reveals Salt Tolerance Variations between Two Poplar Trees
title_fullStr Transcriptome and Low-Affinity Sodium Transport Analysis Reveals Salt Tolerance Variations between Two Poplar Trees
title_full_unstemmed Transcriptome and Low-Affinity Sodium Transport Analysis Reveals Salt Tolerance Variations between Two Poplar Trees
title_short Transcriptome and Low-Affinity Sodium Transport Analysis Reveals Salt Tolerance Variations between Two Poplar Trees
title_sort transcriptome and low-affinity sodium transport analysis reveals salt tolerance variations between two poplar trees
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10058024/
https://www.ncbi.nlm.nih.gov/pubmed/36982804
http://dx.doi.org/10.3390/ijms24065732
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