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Genetic Dissection of Seedling Root System Architectural Traits in a Diverse Panel of Hexaploid Wheat through Multi-Locus Genome-Wide Association Mapping for Improving Drought Tolerance

Cultivars with efficient root systems play a major role in enhancing resource use efficiency, particularly water absorption, and thus in drought tolerance. In this study, a diverse wheat association panel of 136 wheat accessions including mini core subset was genotyped using Axiom 35k Breeders’ Arra...

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Autores principales: Danakumara, Thippeswamy, Kumari, Jyoti, Singh, Amit Kumar, Sinha, Subodh Kumar, Pradhan, Anjan Kumar, Sharma, Shivani, Jha, Shailendra Kumar, Bansal, Ruchi, Kumar, Sundeep, Jha, Girish Kumar, Yadav, Mahesh C., Prasad, P.V. Vara
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8268147/
https://www.ncbi.nlm.nih.gov/pubmed/34281242
http://dx.doi.org/10.3390/ijms22137188
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author Danakumara, Thippeswamy
Kumari, Jyoti
Singh, Amit Kumar
Sinha, Subodh Kumar
Pradhan, Anjan Kumar
Sharma, Shivani
Jha, Shailendra Kumar
Bansal, Ruchi
Kumar, Sundeep
Jha, Girish Kumar
Yadav, Mahesh C.
Prasad, P.V. Vara
author_facet Danakumara, Thippeswamy
Kumari, Jyoti
Singh, Amit Kumar
Sinha, Subodh Kumar
Pradhan, Anjan Kumar
Sharma, Shivani
Jha, Shailendra Kumar
Bansal, Ruchi
Kumar, Sundeep
Jha, Girish Kumar
Yadav, Mahesh C.
Prasad, P.V. Vara
author_sort Danakumara, Thippeswamy
collection PubMed
description Cultivars with efficient root systems play a major role in enhancing resource use efficiency, particularly water absorption, and thus in drought tolerance. In this study, a diverse wheat association panel of 136 wheat accessions including mini core subset was genotyped using Axiom 35k Breeders’ Array to identify genomic regions associated with seedling stage root architecture and shoot traits using multi-locus genome-wide association studies (ML-GWAS). The association panel revealed a wide variation of 1.5- to 50-fold and were grouped into six clusters based on 15 traits. Six different ML-GWAS models revealed 456 significant quantitative trait nucleotides (QTNs) for various traits with phenotypic variance in the range of 0.12–38.60%. Of these, 87 QTNs were repeatedly detected by two or more models and were considered reliable genomic regions for the respective traits. Among these QTNs, eleven were associated with average diameter and nine each for second order lateral root number (SOLRN), root volume (RV) and root length density (RLD). A total of eleven genomic regions were pleiotropic and each controlled two or three traits. Some important candidate genes such as Formin homology 1, Ubiquitin-like domain superfamily and ATP-dependent 6-phosphofructokinase were identified from the associated genomic regions. The genomic regions/genes identified in this study could potentially be targeted for improving root traits and drought tolerance in wheat.
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spelling pubmed-82681472021-07-10 Genetic Dissection of Seedling Root System Architectural Traits in a Diverse Panel of Hexaploid Wheat through Multi-Locus Genome-Wide Association Mapping for Improving Drought Tolerance Danakumara, Thippeswamy Kumari, Jyoti Singh, Amit Kumar Sinha, Subodh Kumar Pradhan, Anjan Kumar Sharma, Shivani Jha, Shailendra Kumar Bansal, Ruchi Kumar, Sundeep Jha, Girish Kumar Yadav, Mahesh C. Prasad, P.V. Vara Int J Mol Sci Article Cultivars with efficient root systems play a major role in enhancing resource use efficiency, particularly water absorption, and thus in drought tolerance. In this study, a diverse wheat association panel of 136 wheat accessions including mini core subset was genotyped using Axiom 35k Breeders’ Array to identify genomic regions associated with seedling stage root architecture and shoot traits using multi-locus genome-wide association studies (ML-GWAS). The association panel revealed a wide variation of 1.5- to 50-fold and were grouped into six clusters based on 15 traits. Six different ML-GWAS models revealed 456 significant quantitative trait nucleotides (QTNs) for various traits with phenotypic variance in the range of 0.12–38.60%. Of these, 87 QTNs were repeatedly detected by two or more models and were considered reliable genomic regions for the respective traits. Among these QTNs, eleven were associated with average diameter and nine each for second order lateral root number (SOLRN), root volume (RV) and root length density (RLD). A total of eleven genomic regions were pleiotropic and each controlled two or three traits. Some important candidate genes such as Formin homology 1, Ubiquitin-like domain superfamily and ATP-dependent 6-phosphofructokinase were identified from the associated genomic regions. The genomic regions/genes identified in this study could potentially be targeted for improving root traits and drought tolerance in wheat. MDPI 2021-07-02 /pmc/articles/PMC8268147/ /pubmed/34281242 http://dx.doi.org/10.3390/ijms22137188 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Danakumara, Thippeswamy
Kumari, Jyoti
Singh, Amit Kumar
Sinha, Subodh Kumar
Pradhan, Anjan Kumar
Sharma, Shivani
Jha, Shailendra Kumar
Bansal, Ruchi
Kumar, Sundeep
Jha, Girish Kumar
Yadav, Mahesh C.
Prasad, P.V. Vara
Genetic Dissection of Seedling Root System Architectural Traits in a Diverse Panel of Hexaploid Wheat through Multi-Locus Genome-Wide Association Mapping for Improving Drought Tolerance
title Genetic Dissection of Seedling Root System Architectural Traits in a Diverse Panel of Hexaploid Wheat through Multi-Locus Genome-Wide Association Mapping for Improving Drought Tolerance
title_full Genetic Dissection of Seedling Root System Architectural Traits in a Diverse Panel of Hexaploid Wheat through Multi-Locus Genome-Wide Association Mapping for Improving Drought Tolerance
title_fullStr Genetic Dissection of Seedling Root System Architectural Traits in a Diverse Panel of Hexaploid Wheat through Multi-Locus Genome-Wide Association Mapping for Improving Drought Tolerance
title_full_unstemmed Genetic Dissection of Seedling Root System Architectural Traits in a Diverse Panel of Hexaploid Wheat through Multi-Locus Genome-Wide Association Mapping for Improving Drought Tolerance
title_short Genetic Dissection of Seedling Root System Architectural Traits in a Diverse Panel of Hexaploid Wheat through Multi-Locus Genome-Wide Association Mapping for Improving Drought Tolerance
title_sort genetic dissection of seedling root system architectural traits in a diverse panel of hexaploid wheat through multi-locus genome-wide association mapping for improving drought tolerance
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8268147/
https://www.ncbi.nlm.nih.gov/pubmed/34281242
http://dx.doi.org/10.3390/ijms22137188
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