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The LATERAL ROOT DENSITY gene regulates root growth during water stress in wheat

Drought stress is the major limiting factor in agriculture. Wheat, which is the most widely grown crop in the world, is predominantly cultivated in drought‐prone rainfed environments. Since roots play a critical role in water uptake, root response to water limitations is an important component for e...

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Autores principales: Placido, Dante F., Sandhu, Jaspreet, Sato, Shirley J., Nersesian, Natalya, Quach, Truyen, Clemente, Thomas E., Staswick, Paul E., Walia, Harkamal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7415784/
https://www.ncbi.nlm.nih.gov/pubmed/32031318
http://dx.doi.org/10.1111/pbi.13355
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author Placido, Dante F.
Sandhu, Jaspreet
Sato, Shirley J.
Nersesian, Natalya
Quach, Truyen
Clemente, Thomas E.
Staswick, Paul E.
Walia, Harkamal
author_facet Placido, Dante F.
Sandhu, Jaspreet
Sato, Shirley J.
Nersesian, Natalya
Quach, Truyen
Clemente, Thomas E.
Staswick, Paul E.
Walia, Harkamal
author_sort Placido, Dante F.
collection PubMed
description Drought stress is the major limiting factor in agriculture. Wheat, which is the most widely grown crop in the world, is predominantly cultivated in drought‐prone rainfed environments. Since roots play a critical role in water uptake, root response to water limitations is an important component for enhancing wheat adaptation. In an effort to discover novel genetic sources for improving wheat adaptation, we characterized a wheat translocation line with a chromosomal segment from Agropyron elongatum, a wild relative of wheat, which unlike common wheat maintains root growth under limited‐water conditions. By exploring the root transcriptome data, we found that reduced transcript level of LATERAL ROOT DENSITY (LRD) gene under limited water in the Agropyron translocation line confers it the ability to maintain root growth. The Agropyron allele of LRD is down‐regulated in response to water limitation in contrast with the wheat LRD allele, which is up‐regulated by water deficit stress. Suppression of LRD expression in wheat RNAi plants confers the ability to maintain root growth under water limitation. We show that exogenous gibberellic acid (GA) promotes lateral root growth and present evidence for the role of GA in mediating the differential regulation of LRD between the common wheat and the Agropyron alleles under water stress. Suppression of LRD also had a positive pleiotropic effect on grain size and number under optimal growth conditions. Collectively, our findings suggest that LRD can be potentially useful for improving wheat response to water stress and altering yield components.
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spelling pubmed-74157842020-08-11 The LATERAL ROOT DENSITY gene regulates root growth during water stress in wheat Placido, Dante F. Sandhu, Jaspreet Sato, Shirley J. Nersesian, Natalya Quach, Truyen Clemente, Thomas E. Staswick, Paul E. Walia, Harkamal Plant Biotechnol J Research Articles Drought stress is the major limiting factor in agriculture. Wheat, which is the most widely grown crop in the world, is predominantly cultivated in drought‐prone rainfed environments. Since roots play a critical role in water uptake, root response to water limitations is an important component for enhancing wheat adaptation. In an effort to discover novel genetic sources for improving wheat adaptation, we characterized a wheat translocation line with a chromosomal segment from Agropyron elongatum, a wild relative of wheat, which unlike common wheat maintains root growth under limited‐water conditions. By exploring the root transcriptome data, we found that reduced transcript level of LATERAL ROOT DENSITY (LRD) gene under limited water in the Agropyron translocation line confers it the ability to maintain root growth. The Agropyron allele of LRD is down‐regulated in response to water limitation in contrast with the wheat LRD allele, which is up‐regulated by water deficit stress. Suppression of LRD expression in wheat RNAi plants confers the ability to maintain root growth under water limitation. We show that exogenous gibberellic acid (GA) promotes lateral root growth and present evidence for the role of GA in mediating the differential regulation of LRD between the common wheat and the Agropyron alleles under water stress. Suppression of LRD also had a positive pleiotropic effect on grain size and number under optimal growth conditions. Collectively, our findings suggest that LRD can be potentially useful for improving wheat response to water stress and altering yield components. John Wiley and Sons Inc. 2020-02-19 2020-09 /pmc/articles/PMC7415784/ /pubmed/32031318 http://dx.doi.org/10.1111/pbi.13355 Text en © 2020 The Authors. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists and John Wiley & Sons Ltd This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research Articles
Placido, Dante F.
Sandhu, Jaspreet
Sato, Shirley J.
Nersesian, Natalya
Quach, Truyen
Clemente, Thomas E.
Staswick, Paul E.
Walia, Harkamal
The LATERAL ROOT DENSITY gene regulates root growth during water stress in wheat
title The LATERAL ROOT DENSITY gene regulates root growth during water stress in wheat
title_full The LATERAL ROOT DENSITY gene regulates root growth during water stress in wheat
title_fullStr The LATERAL ROOT DENSITY gene regulates root growth during water stress in wheat
title_full_unstemmed The LATERAL ROOT DENSITY gene regulates root growth during water stress in wheat
title_short The LATERAL ROOT DENSITY gene regulates root growth during water stress in wheat
title_sort lateral root density gene regulates root growth during water stress in wheat
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7415784/
https://www.ncbi.nlm.nih.gov/pubmed/32031318
http://dx.doi.org/10.1111/pbi.13355
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