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Unraveling the Genetic Architecture of Two Complex, Stomata-Related Drought-Responsive Traits by High-Throughput Physiological Phenotyping and GWAS in Cowpea (Vigna. Unguiculata L. Walp)

Drought is one of the most devasting and frequent abiotic stresses in agriculture. While many morphological, biochemical and physiological indicators are being used to quantify plant drought responses, stomatal control, and hence the transpiration and photosynthesis regulation through it, is of part...

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Autores principales: Wu, Xinyi, Sun, Ting, Xu, Wenzhao, Sun, Yudong, Wang, Baogen, Wang, Ying, Li, Yanwei, Wang, Jian, Wu, Xiaohua, Lu, Zhongfu, Xu, Pei, Li, Guojing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8581254/
https://www.ncbi.nlm.nih.gov/pubmed/34777471
http://dx.doi.org/10.3389/fgene.2021.743758
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author Wu, Xinyi
Sun, Ting
Xu, Wenzhao
Sun, Yudong
Wang, Baogen
Wang, Ying
Li, Yanwei
Wang, Jian
Wu, Xiaohua
Lu, Zhongfu
Xu, Pei
Li, Guojing
author_facet Wu, Xinyi
Sun, Ting
Xu, Wenzhao
Sun, Yudong
Wang, Baogen
Wang, Ying
Li, Yanwei
Wang, Jian
Wu, Xiaohua
Lu, Zhongfu
Xu, Pei
Li, Guojing
author_sort Wu, Xinyi
collection PubMed
description Drought is one of the most devasting and frequent abiotic stresses in agriculture. While many morphological, biochemical and physiological indicators are being used to quantify plant drought responses, stomatal control, and hence the transpiration and photosynthesis regulation through it, is of particular importance in marking the plant capacity of balancing stress response and yield. Due to the difficulties in simultaneous, large-scale measurement of stomatal traits such as sensitivity and speed of stomatal closure under progressive soil drought, forward genetic mapping of these important behaviors has long been unavailable. The recent emerging phenomic technologies offer solutions to identify the water relations of whole plant and assay the stomatal regulation in a dynamic process at the population level. Here, we report high-throughput physiological phenotyping of water relations of 106 cowpea accessions under progressive drought stress, which, in combination of genome-wide association study (GWAS), enables genetic mapping of the complex, stomata-related drought responsive traits “critical soil water content” (θ(cri)) and “slope of transpiration rate declining” (K(Tr)). The 106 accessions showed large variations in θ(cri) and K(Tr), indicating that they had broad spectrum of stomatal control in response to soil water deficit, which may confer them different levels of drought tolerance. Univariate GWAS identified six and fourteen significant SNPs associated with θ(cri) and K(Tr), respectively. The detected SNPs distributed in nine chromosomes and accounted for 8.7–21% of the phenotypic variation, suggesting that both stomatal sensitivity to soil drought and the speed of stomatal closure to completion were controlled by multiple genes with moderate effects. Multivariate GWAS detected ten more significant SNPs in addition to confirming eight of the twenty SNPs as detected by univariate GWAS. Integrated, a final set of 30 significant SNPs associated with stomatal closure were reported. Taken together, our work, by combining phenomics and genetics, enables forward genetic mapping of the genetic architecture of stomatal traits related to drought tolerance, which not only provides a basis for molecular breeding of drought resistant cultivars of cowpea, but offers a new methodology to explore the genetic determinants of water budgeting in crops under stressful conditions in the phenomics era.
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spelling pubmed-85812542021-11-12 Unraveling the Genetic Architecture of Two Complex, Stomata-Related Drought-Responsive Traits by High-Throughput Physiological Phenotyping and GWAS in Cowpea (Vigna. Unguiculata L. Walp) Wu, Xinyi Sun, Ting Xu, Wenzhao Sun, Yudong Wang, Baogen Wang, Ying Li, Yanwei Wang, Jian Wu, Xiaohua Lu, Zhongfu Xu, Pei Li, Guojing Front Genet Genetics Drought is one of the most devasting and frequent abiotic stresses in agriculture. While many morphological, biochemical and physiological indicators are being used to quantify plant drought responses, stomatal control, and hence the transpiration and photosynthesis regulation through it, is of particular importance in marking the plant capacity of balancing stress response and yield. Due to the difficulties in simultaneous, large-scale measurement of stomatal traits such as sensitivity and speed of stomatal closure under progressive soil drought, forward genetic mapping of these important behaviors has long been unavailable. The recent emerging phenomic technologies offer solutions to identify the water relations of whole plant and assay the stomatal regulation in a dynamic process at the population level. Here, we report high-throughput physiological phenotyping of water relations of 106 cowpea accessions under progressive drought stress, which, in combination of genome-wide association study (GWAS), enables genetic mapping of the complex, stomata-related drought responsive traits “critical soil water content” (θ(cri)) and “slope of transpiration rate declining” (K(Tr)). The 106 accessions showed large variations in θ(cri) and K(Tr), indicating that they had broad spectrum of stomatal control in response to soil water deficit, which may confer them different levels of drought tolerance. Univariate GWAS identified six and fourteen significant SNPs associated with θ(cri) and K(Tr), respectively. The detected SNPs distributed in nine chromosomes and accounted for 8.7–21% of the phenotypic variation, suggesting that both stomatal sensitivity to soil drought and the speed of stomatal closure to completion were controlled by multiple genes with moderate effects. Multivariate GWAS detected ten more significant SNPs in addition to confirming eight of the twenty SNPs as detected by univariate GWAS. Integrated, a final set of 30 significant SNPs associated with stomatal closure were reported. Taken together, our work, by combining phenomics and genetics, enables forward genetic mapping of the genetic architecture of stomatal traits related to drought tolerance, which not only provides a basis for molecular breeding of drought resistant cultivars of cowpea, but offers a new methodology to explore the genetic determinants of water budgeting in crops under stressful conditions in the phenomics era. Frontiers Media S.A. 2021-10-28 /pmc/articles/PMC8581254/ /pubmed/34777471 http://dx.doi.org/10.3389/fgene.2021.743758 Text en Copyright © 2021 Wu, Sun, Xu, Sun, Wang, Wang, Li, Wang, Wu, Lu, Xu and Li. 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 Genetics
Wu, Xinyi
Sun, Ting
Xu, Wenzhao
Sun, Yudong
Wang, Baogen
Wang, Ying
Li, Yanwei
Wang, Jian
Wu, Xiaohua
Lu, Zhongfu
Xu, Pei
Li, Guojing
Unraveling the Genetic Architecture of Two Complex, Stomata-Related Drought-Responsive Traits by High-Throughput Physiological Phenotyping and GWAS in Cowpea (Vigna. Unguiculata L. Walp)
title Unraveling the Genetic Architecture of Two Complex, Stomata-Related Drought-Responsive Traits by High-Throughput Physiological Phenotyping and GWAS in Cowpea (Vigna. Unguiculata L. Walp)
title_full Unraveling the Genetic Architecture of Two Complex, Stomata-Related Drought-Responsive Traits by High-Throughput Physiological Phenotyping and GWAS in Cowpea (Vigna. Unguiculata L. Walp)
title_fullStr Unraveling the Genetic Architecture of Two Complex, Stomata-Related Drought-Responsive Traits by High-Throughput Physiological Phenotyping and GWAS in Cowpea (Vigna. Unguiculata L. Walp)
title_full_unstemmed Unraveling the Genetic Architecture of Two Complex, Stomata-Related Drought-Responsive Traits by High-Throughput Physiological Phenotyping and GWAS in Cowpea (Vigna. Unguiculata L. Walp)
title_short Unraveling the Genetic Architecture of Two Complex, Stomata-Related Drought-Responsive Traits by High-Throughput Physiological Phenotyping and GWAS in Cowpea (Vigna. Unguiculata L. Walp)
title_sort unraveling the genetic architecture of two complex, stomata-related drought-responsive traits by high-throughput physiological phenotyping and gwas in cowpea (vigna. unguiculata l. walp)
topic Genetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8581254/
https://www.ncbi.nlm.nih.gov/pubmed/34777471
http://dx.doi.org/10.3389/fgene.2021.743758
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