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Enhanced reactive oxygen detoxification occurs in salt‐stressed soybean roots expressing GmSALT3

Soybean (Glycine max) is an important crop globally for food and edible oil production. Soybean plants are sensitive to salinity (NaCl), with significant yield decreases reported under saline conditions. GmSALT3 is the dominant gene underlying a major QTL for salt tolerance in soybean. GmSALT3 encod...

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Autores principales: Qu, Yue, Guan, Rongxia, Yu, Lili, Berkowitz, Oliver, David, Rakesh, Whelan, James, Ford, Melanie, Wege, Stefanie, Qiu, Lijuan, Gilliham, Matthew
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9327525/
https://www.ncbi.nlm.nih.gov/pubmed/35580210
http://dx.doi.org/10.1111/ppl.13709
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author Qu, Yue
Guan, Rongxia
Yu, Lili
Berkowitz, Oliver
David, Rakesh
Whelan, James
Ford, Melanie
Wege, Stefanie
Qiu, Lijuan
Gilliham, Matthew
author_facet Qu, Yue
Guan, Rongxia
Yu, Lili
Berkowitz, Oliver
David, Rakesh
Whelan, James
Ford, Melanie
Wege, Stefanie
Qiu, Lijuan
Gilliham, Matthew
author_sort Qu, Yue
collection PubMed
description Soybean (Glycine max) is an important crop globally for food and edible oil production. Soybean plants are sensitive to salinity (NaCl), with significant yield decreases reported under saline conditions. GmSALT3 is the dominant gene underlying a major QTL for salt tolerance in soybean. GmSALT3 encodes a transmembrane protein belonging to the plant cation/proton exchanger (CHX) family, and is predominately expressed in root phloem and xylem associated cells under both saline and non‐saline conditions. It is currently unknown through which molecular mechanism(s) the ER‐localised GmSALT3 contributes to salinity tolerance, as its localisation excludes direct involvement in ion exclusion. In order to gain insights into potential molecular mechanism(s), we used RNA‐seq analysis of roots from two soybean NILs (near isogenic lines); NIL‐S (salt‐sensitive, Gmsalt3), and NIL‐T (salt‐tolerant, GmSALT3), grown under control and saline conditions (200 mM NaCl) at three time points (0 h, 6 h, and 3 days). Gene ontology (GO) analysis showed that NIL‐T has greater responses aligned to oxidation reduction. ROS were less abundant and scavenging enzyme activity was greater in NIL‐T, consistent with the RNA‐seq data. Further analysis indicated that genes related to calcium signalling, vesicle trafficking and Casparian strip (CS) development were upregulated in NIL‐T following salt treatment. We propose that GmSALT3 improves the ability of NIL‐T to cope with saline stress through preventing ROS overaccumulation in roots, and potentially modulating Ca(2+) signalling, vesicle trafficking and formation of diffusion barriers.
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spelling pubmed-93275252022-07-30 Enhanced reactive oxygen detoxification occurs in salt‐stressed soybean roots expressing GmSALT3 Qu, Yue Guan, Rongxia Yu, Lili Berkowitz, Oliver David, Rakesh Whelan, James Ford, Melanie Wege, Stefanie Qiu, Lijuan Gilliham, Matthew Physiol Plant Ecophysiology, Stress and Adaptation Soybean (Glycine max) is an important crop globally for food and edible oil production. Soybean plants are sensitive to salinity (NaCl), with significant yield decreases reported under saline conditions. GmSALT3 is the dominant gene underlying a major QTL for salt tolerance in soybean. GmSALT3 encodes a transmembrane protein belonging to the plant cation/proton exchanger (CHX) family, and is predominately expressed in root phloem and xylem associated cells under both saline and non‐saline conditions. It is currently unknown through which molecular mechanism(s) the ER‐localised GmSALT3 contributes to salinity tolerance, as its localisation excludes direct involvement in ion exclusion. In order to gain insights into potential molecular mechanism(s), we used RNA‐seq analysis of roots from two soybean NILs (near isogenic lines); NIL‐S (salt‐sensitive, Gmsalt3), and NIL‐T (salt‐tolerant, GmSALT3), grown under control and saline conditions (200 mM NaCl) at three time points (0 h, 6 h, and 3 days). Gene ontology (GO) analysis showed that NIL‐T has greater responses aligned to oxidation reduction. ROS were less abundant and scavenging enzyme activity was greater in NIL‐T, consistent with the RNA‐seq data. Further analysis indicated that genes related to calcium signalling, vesicle trafficking and Casparian strip (CS) development were upregulated in NIL‐T following salt treatment. We propose that GmSALT3 improves the ability of NIL‐T to cope with saline stress through preventing ROS overaccumulation in roots, and potentially modulating Ca(2+) signalling, vesicle trafficking and formation of diffusion barriers. Blackwell Publishing Ltd 2022-06-06 2022 /pmc/articles/PMC9327525/ /pubmed/35580210 http://dx.doi.org/10.1111/ppl.13709 Text en © 2022 The Authors. Physiologia Plantarum published by John Wiley & Sons Ltd on behalf of Scandinavian Plant Physiology Society. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Ecophysiology, Stress and Adaptation
Qu, Yue
Guan, Rongxia
Yu, Lili
Berkowitz, Oliver
David, Rakesh
Whelan, James
Ford, Melanie
Wege, Stefanie
Qiu, Lijuan
Gilliham, Matthew
Enhanced reactive oxygen detoxification occurs in salt‐stressed soybean roots expressing GmSALT3
title Enhanced reactive oxygen detoxification occurs in salt‐stressed soybean roots expressing GmSALT3
title_full Enhanced reactive oxygen detoxification occurs in salt‐stressed soybean roots expressing GmSALT3
title_fullStr Enhanced reactive oxygen detoxification occurs in salt‐stressed soybean roots expressing GmSALT3
title_full_unstemmed Enhanced reactive oxygen detoxification occurs in salt‐stressed soybean roots expressing GmSALT3
title_short Enhanced reactive oxygen detoxification occurs in salt‐stressed soybean roots expressing GmSALT3
title_sort enhanced reactive oxygen detoxification occurs in salt‐stressed soybean roots expressing gmsalt3
topic Ecophysiology, Stress and Adaptation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9327525/
https://www.ncbi.nlm.nih.gov/pubmed/35580210
http://dx.doi.org/10.1111/ppl.13709
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