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Deciphering trait associated morpho-physiological responses in pearlmillet hybrids and inbred lines under salt stress

Pearl millet is a staple food for more than 90 million people residing in highly vulnerable hot arid and semi–arid regions of Africa and Asia. These regions are more prone to detrimental effects of soil salinity on crop performance in terms of reduced biomass and crop yields. We investigated the phy...

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Autores principales: Kumar, Ashwani, Sheoran, Parvender, Mann, Anita, Yadav, Devvart, Kumar, Arvind, Devi, Sunita, Kumar, Naresh, Dhansu, Pooja, Sharma, Dinesh K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10018183/
https://www.ncbi.nlm.nih.gov/pubmed/36938010
http://dx.doi.org/10.3389/fpls.2023.1121805
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author Kumar, Ashwani
Sheoran, Parvender
Mann, Anita
Yadav, Devvart
Kumar, Arvind
Devi, Sunita
Kumar, Naresh
Dhansu, Pooja
Sharma, Dinesh K.
author_facet Kumar, Ashwani
Sheoran, Parvender
Mann, Anita
Yadav, Devvart
Kumar, Arvind
Devi, Sunita
Kumar, Naresh
Dhansu, Pooja
Sharma, Dinesh K.
author_sort Kumar, Ashwani
collection PubMed
description Pearl millet is a staple food for more than 90 million people residing in highly vulnerable hot arid and semi–arid regions of Africa and Asia. These regions are more prone to detrimental effects of soil salinity on crop performance in terms of reduced biomass and crop yields. We investigated the physiological mechanisms of salt tolerance to irrigation induced salinity stress (EC(iw) ~3, 6 & 9 dSm(–1)) and their confounding effects on plant growth and yield in pearl millet inbred lines and hybrids. On average, nearly 30% reduction in above ground plant biomass was observed at EC(iw) ~6 dSm(-1) which stretched to 56% at EC(iw) ~9 dSm(-1) in comparison to best available water. With increasing salinity stress, the crop performance of test hybrids was better in comparison to inbred lines; exhibiting relatively higher stomatal conductance (gS; 16%), accumulated lower proline (Pro; –12%) and shoot Na(+)/K(+)(–31%), synthesized more protein (SP; 2%) and sugars (TSS; 32%) compensating in lower biomass (AGB; –22%) and grain yield (GY: –14%) reductions at highest salinity stress of EC(iw) ~9 dSm(–1). Physiological traits modeling underpinning plant salt tolerance and adaptation mechanism illustrated the key role of 7 traits (AGB, Pro, SS, gS, SPAD, Pn, and SP) in hybrids and 8 traits (AGB, Pro, PH, Na(+), K(+), Na(+)/K(+), SPAD, and gS) in inbred lines towards anticipated grain yield variations in salinity stressed pearl millet. Most importantly, the AGB alone, explained >91% of yield variation among evaluated hybrids and inbreed lines at EC(iw) ~9 dSm(–1). Cumulatively, the better morpho–physiological adaptation and lesser yield reduction with increasing salinity stress in pearl millet hybrids (HHB 146, HHB 272, and HHB 234) and inbred lines (H77/833–2–202, ICMA 94555 and ICMA 843–22) substantially complemented in increased plant salt tolerance and yield stability over a broad range of salinity stress. The information generated herein will help address in deciphering the trait associated physiological alterations to irrigation induced salt stress, and developing potential hybrids in pearl millet using these parents with special characteristics.
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spelling pubmed-100181832023-03-17 Deciphering trait associated morpho-physiological responses in pearlmillet hybrids and inbred lines under salt stress Kumar, Ashwani Sheoran, Parvender Mann, Anita Yadav, Devvart Kumar, Arvind Devi, Sunita Kumar, Naresh Dhansu, Pooja Sharma, Dinesh K. Front Plant Sci Plant Science Pearl millet is a staple food for more than 90 million people residing in highly vulnerable hot arid and semi–arid regions of Africa and Asia. These regions are more prone to detrimental effects of soil salinity on crop performance in terms of reduced biomass and crop yields. We investigated the physiological mechanisms of salt tolerance to irrigation induced salinity stress (EC(iw) ~3, 6 & 9 dSm(–1)) and their confounding effects on plant growth and yield in pearl millet inbred lines and hybrids. On average, nearly 30% reduction in above ground plant biomass was observed at EC(iw) ~6 dSm(-1) which stretched to 56% at EC(iw) ~9 dSm(-1) in comparison to best available water. With increasing salinity stress, the crop performance of test hybrids was better in comparison to inbred lines; exhibiting relatively higher stomatal conductance (gS; 16%), accumulated lower proline (Pro; –12%) and shoot Na(+)/K(+)(–31%), synthesized more protein (SP; 2%) and sugars (TSS; 32%) compensating in lower biomass (AGB; –22%) and grain yield (GY: –14%) reductions at highest salinity stress of EC(iw) ~9 dSm(–1). Physiological traits modeling underpinning plant salt tolerance and adaptation mechanism illustrated the key role of 7 traits (AGB, Pro, SS, gS, SPAD, Pn, and SP) in hybrids and 8 traits (AGB, Pro, PH, Na(+), K(+), Na(+)/K(+), SPAD, and gS) in inbred lines towards anticipated grain yield variations in salinity stressed pearl millet. Most importantly, the AGB alone, explained >91% of yield variation among evaluated hybrids and inbreed lines at EC(iw) ~9 dSm(–1). Cumulatively, the better morpho–physiological adaptation and lesser yield reduction with increasing salinity stress in pearl millet hybrids (HHB 146, HHB 272, and HHB 234) and inbred lines (H77/833–2–202, ICMA 94555 and ICMA 843–22) substantially complemented in increased plant salt tolerance and yield stability over a broad range of salinity stress. The information generated herein will help address in deciphering the trait associated physiological alterations to irrigation induced salt stress, and developing potential hybrids in pearl millet using these parents with special characteristics. Frontiers Media S.A. 2023-03-02 /pmc/articles/PMC10018183/ /pubmed/36938010 http://dx.doi.org/10.3389/fpls.2023.1121805 Text en Copyright © 2023 Kumar, Sheoran, Mann, Yadav, Kumar, Devi, Kumar, Dhansu and Sharma https://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) and the copyright owner(s) 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
Kumar, Ashwani
Sheoran, Parvender
Mann, Anita
Yadav, Devvart
Kumar, Arvind
Devi, Sunita
Kumar, Naresh
Dhansu, Pooja
Sharma, Dinesh K.
Deciphering trait associated morpho-physiological responses in pearlmillet hybrids and inbred lines under salt stress
title Deciphering trait associated morpho-physiological responses in pearlmillet hybrids and inbred lines under salt stress
title_full Deciphering trait associated morpho-physiological responses in pearlmillet hybrids and inbred lines under salt stress
title_fullStr Deciphering trait associated morpho-physiological responses in pearlmillet hybrids and inbred lines under salt stress
title_full_unstemmed Deciphering trait associated morpho-physiological responses in pearlmillet hybrids and inbred lines under salt stress
title_short Deciphering trait associated morpho-physiological responses in pearlmillet hybrids and inbred lines under salt stress
title_sort deciphering trait associated morpho-physiological responses in pearlmillet hybrids and inbred lines under salt stress
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10018183/
https://www.ncbi.nlm.nih.gov/pubmed/36938010
http://dx.doi.org/10.3389/fpls.2023.1121805
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