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Genomic Architecture of Phenotypic Plasticity in Response to Water Stress in Tetraploid Wheat

Phenotypic plasticity is one of the main mechanisms of adaptation to abiotic stresses via changes in critical developmental stages. Altering flowering phenology is a key evolutionary strategy of plant adaptation to abiotic stresses, to achieve the maximum possible reproduction. The current study is...

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Autores principales: Fatiukha, Andrii, Deblieck, Mathieu, Klymiuk, Valentyna, Merchuk-Ovnat, Lianne, Peleg, Zvi, Ordon, Frank, Fahima, Tzion, Korol, Abraham, Saranga, Yehoshua, Krugman, Tamar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7915520/
https://www.ncbi.nlm.nih.gov/pubmed/33572141
http://dx.doi.org/10.3390/ijms22041723
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author Fatiukha, Andrii
Deblieck, Mathieu
Klymiuk, Valentyna
Merchuk-Ovnat, Lianne
Peleg, Zvi
Ordon, Frank
Fahima, Tzion
Korol, Abraham
Saranga, Yehoshua
Krugman, Tamar
author_facet Fatiukha, Andrii
Deblieck, Mathieu
Klymiuk, Valentyna
Merchuk-Ovnat, Lianne
Peleg, Zvi
Ordon, Frank
Fahima, Tzion
Korol, Abraham
Saranga, Yehoshua
Krugman, Tamar
author_sort Fatiukha, Andrii
collection PubMed
description Phenotypic plasticity is one of the main mechanisms of adaptation to abiotic stresses via changes in critical developmental stages. Altering flowering phenology is a key evolutionary strategy of plant adaptation to abiotic stresses, to achieve the maximum possible reproduction. The current study is the first to apply the linear regression residuals as drought plasticity scores while considering the variation in flowering phenology and traits under non-stress conditions. We characterized the genomic architecture of 17 complex traits and their drought plasticity scores for quantitative trait loci (QTL) mapping, using a mapping population derived from a cross between durum wheat (Triticum turgidum ssp. durum) and wild emmer wheat (T. turgidum ssp. dicoccoides). We identified 79 QTLs affected observed traits and their plasticity scores, of which 33 reflected plasticity in response to water stress and exhibited epistatic interactions and/or pleiotropy between the observed and plasticity traits. Vrn-B3 (TaTF1) residing within an interval of a major drought-escape QTL was proposed as a candidate gene. The favorable alleles for most of the plasticity QTLs were contributed by wild emmer wheat, demonstrating its high potential for wheat improvement. Our study presents a new approach for the quantification of plant adaptation to various stresses and provides new insights into the genetic basis of wheat complex traits under water-deficit stress.
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spelling pubmed-79155202021-03-01 Genomic Architecture of Phenotypic Plasticity in Response to Water Stress in Tetraploid Wheat Fatiukha, Andrii Deblieck, Mathieu Klymiuk, Valentyna Merchuk-Ovnat, Lianne Peleg, Zvi Ordon, Frank Fahima, Tzion Korol, Abraham Saranga, Yehoshua Krugman, Tamar Int J Mol Sci Article Phenotypic plasticity is one of the main mechanisms of adaptation to abiotic stresses via changes in critical developmental stages. Altering flowering phenology is a key evolutionary strategy of plant adaptation to abiotic stresses, to achieve the maximum possible reproduction. The current study is the first to apply the linear regression residuals as drought plasticity scores while considering the variation in flowering phenology and traits under non-stress conditions. We characterized the genomic architecture of 17 complex traits and their drought plasticity scores for quantitative trait loci (QTL) mapping, using a mapping population derived from a cross between durum wheat (Triticum turgidum ssp. durum) and wild emmer wheat (T. turgidum ssp. dicoccoides). We identified 79 QTLs affected observed traits and their plasticity scores, of which 33 reflected plasticity in response to water stress and exhibited epistatic interactions and/or pleiotropy between the observed and plasticity traits. Vrn-B3 (TaTF1) residing within an interval of a major drought-escape QTL was proposed as a candidate gene. The favorable alleles for most of the plasticity QTLs were contributed by wild emmer wheat, demonstrating its high potential for wheat improvement. Our study presents a new approach for the quantification of plant adaptation to various stresses and provides new insights into the genetic basis of wheat complex traits under water-deficit stress. MDPI 2021-02-09 /pmc/articles/PMC7915520/ /pubmed/33572141 http://dx.doi.org/10.3390/ijms22041723 Text en © 2021 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
Fatiukha, Andrii
Deblieck, Mathieu
Klymiuk, Valentyna
Merchuk-Ovnat, Lianne
Peleg, Zvi
Ordon, Frank
Fahima, Tzion
Korol, Abraham
Saranga, Yehoshua
Krugman, Tamar
Genomic Architecture of Phenotypic Plasticity in Response to Water Stress in Tetraploid Wheat
title Genomic Architecture of Phenotypic Plasticity in Response to Water Stress in Tetraploid Wheat
title_full Genomic Architecture of Phenotypic Plasticity in Response to Water Stress in Tetraploid Wheat
title_fullStr Genomic Architecture of Phenotypic Plasticity in Response to Water Stress in Tetraploid Wheat
title_full_unstemmed Genomic Architecture of Phenotypic Plasticity in Response to Water Stress in Tetraploid Wheat
title_short Genomic Architecture of Phenotypic Plasticity in Response to Water Stress in Tetraploid Wheat
title_sort genomic architecture of phenotypic plasticity in response to water stress in tetraploid wheat
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7915520/
https://www.ncbi.nlm.nih.gov/pubmed/33572141
http://dx.doi.org/10.3390/ijms22041723
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