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Genome-Wide Association Mapping and Genomic Prediction Analyses Reveal the Genetic Architecture of Grain Yield and Flowering Time Under Drought and Heat Stress Conditions in Maize

Drought stress (DS) is a major constraint to maize yield production. Heat stress (HS) alone and in combination with DS are likely to become the increasing constraints. Association mapping and genomic prediction (GP) analyses were conducted in a collection of 300 tropical and subtropical maize inbred...

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Autores principales: Yuan, Yibing, Cairns, Jill E., Babu, Raman, Gowda, Manje, Makumbi, Dan, Magorokosho, Cosmos, Zhang, Ao, Liu, Yubo, Wang, Nan, Hao, Zhuanfang, San Vicente, Felix, Olsen, Michael S., Prasanna, Boddupalli M., Lu, Yanli, Zhang, Xuecai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6363715/
https://www.ncbi.nlm.nih.gov/pubmed/30761177
http://dx.doi.org/10.3389/fpls.2018.01919
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author Yuan, Yibing
Cairns, Jill E.
Babu, Raman
Gowda, Manje
Makumbi, Dan
Magorokosho, Cosmos
Zhang, Ao
Liu, Yubo
Wang, Nan
Hao, Zhuanfang
San Vicente, Felix
Olsen, Michael S.
Prasanna, Boddupalli M.
Lu, Yanli
Zhang, Xuecai
author_facet Yuan, Yibing
Cairns, Jill E.
Babu, Raman
Gowda, Manje
Makumbi, Dan
Magorokosho, Cosmos
Zhang, Ao
Liu, Yubo
Wang, Nan
Hao, Zhuanfang
San Vicente, Felix
Olsen, Michael S.
Prasanna, Boddupalli M.
Lu, Yanli
Zhang, Xuecai
author_sort Yuan, Yibing
collection PubMed
description Drought stress (DS) is a major constraint to maize yield production. Heat stress (HS) alone and in combination with DS are likely to become the increasing constraints. Association mapping and genomic prediction (GP) analyses were conducted in a collection of 300 tropical and subtropical maize inbred lines to reveal the genetic architecture of grain yield and flowering time under well-watered (WW), DS, HS, and combined DS and HS conditions. Out of the 381,165 genotyping-by-sequencing SNPs, 1549 SNPs were significantly associated with all the 12 trait-environment combinations, the average PVE (phenotypic variation explained) by these SNPs was 4.33%, and 541 of them had a PVE value greater than 5%. These significant associations were clustered into 446 genomic regions with a window size of 20 Mb per region, and 673 candidate genes containing the significantly associated SNPs were identified. In addition, 33 hotspots were identified for 12 trait-environment combinations and most were located on chromosomes 1 and 8. Compared with single SNP-based association mapping, the haplotype-based associated mapping detected fewer number of significant associations and candidate genes with higher PVE values. All the 688 candidate genes were enriched into 15 gene ontology terms, and 46 candidate genes showed significant differential expression under the WW and DS conditions. Association mapping results identified few overlapped significant markers and candidate genes for the same traits evaluated under different managements, indicating the genetic divergence between the individual stress tolerance and the combined drought and HS tolerance. The GP accuracies obtained from the marker-trait associated SNPs were relatively higher than those obtained from the genome-wide SNPs for most of the target traits. The genetic architecture information of the grain yield and flowering time revealed in this study, and the genomic regions identified for the different trait-environment combinations are useful in accelerating the efforts on rapid development of the stress-tolerant maize germplasm through marker-assisted selection and/or genomic selection.
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spelling pubmed-63637152019-02-13 Genome-Wide Association Mapping and Genomic Prediction Analyses Reveal the Genetic Architecture of Grain Yield and Flowering Time Under Drought and Heat Stress Conditions in Maize Yuan, Yibing Cairns, Jill E. Babu, Raman Gowda, Manje Makumbi, Dan Magorokosho, Cosmos Zhang, Ao Liu, Yubo Wang, Nan Hao, Zhuanfang San Vicente, Felix Olsen, Michael S. Prasanna, Boddupalli M. Lu, Yanli Zhang, Xuecai Front Plant Sci Plant Science Drought stress (DS) is a major constraint to maize yield production. Heat stress (HS) alone and in combination with DS are likely to become the increasing constraints. Association mapping and genomic prediction (GP) analyses were conducted in a collection of 300 tropical and subtropical maize inbred lines to reveal the genetic architecture of grain yield and flowering time under well-watered (WW), DS, HS, and combined DS and HS conditions. Out of the 381,165 genotyping-by-sequencing SNPs, 1549 SNPs were significantly associated with all the 12 trait-environment combinations, the average PVE (phenotypic variation explained) by these SNPs was 4.33%, and 541 of them had a PVE value greater than 5%. These significant associations were clustered into 446 genomic regions with a window size of 20 Mb per region, and 673 candidate genes containing the significantly associated SNPs were identified. In addition, 33 hotspots were identified for 12 trait-environment combinations and most were located on chromosomes 1 and 8. Compared with single SNP-based association mapping, the haplotype-based associated mapping detected fewer number of significant associations and candidate genes with higher PVE values. All the 688 candidate genes were enriched into 15 gene ontology terms, and 46 candidate genes showed significant differential expression under the WW and DS conditions. Association mapping results identified few overlapped significant markers and candidate genes for the same traits evaluated under different managements, indicating the genetic divergence between the individual stress tolerance and the combined drought and HS tolerance. The GP accuracies obtained from the marker-trait associated SNPs were relatively higher than those obtained from the genome-wide SNPs for most of the target traits. The genetic architecture information of the grain yield and flowering time revealed in this study, and the genomic regions identified for the different trait-environment combinations are useful in accelerating the efforts on rapid development of the stress-tolerant maize germplasm through marker-assisted selection and/or genomic selection. Frontiers Media S.A. 2019-01-30 /pmc/articles/PMC6363715/ /pubmed/30761177 http://dx.doi.org/10.3389/fpls.2018.01919 Text en Copyright © 2019 Yuan, Cairns, Babu, Gowda, Makumbi, Magorokosho, Zhang, Liu, Wang, Hao, San Vicente, Olsen, Prasanna, Lu and Zhang. http://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
Yuan, Yibing
Cairns, Jill E.
Babu, Raman
Gowda, Manje
Makumbi, Dan
Magorokosho, Cosmos
Zhang, Ao
Liu, Yubo
Wang, Nan
Hao, Zhuanfang
San Vicente, Felix
Olsen, Michael S.
Prasanna, Boddupalli M.
Lu, Yanli
Zhang, Xuecai
Genome-Wide Association Mapping and Genomic Prediction Analyses Reveal the Genetic Architecture of Grain Yield and Flowering Time Under Drought and Heat Stress Conditions in Maize
title Genome-Wide Association Mapping and Genomic Prediction Analyses Reveal the Genetic Architecture of Grain Yield and Flowering Time Under Drought and Heat Stress Conditions in Maize
title_full Genome-Wide Association Mapping and Genomic Prediction Analyses Reveal the Genetic Architecture of Grain Yield and Flowering Time Under Drought and Heat Stress Conditions in Maize
title_fullStr Genome-Wide Association Mapping and Genomic Prediction Analyses Reveal the Genetic Architecture of Grain Yield and Flowering Time Under Drought and Heat Stress Conditions in Maize
title_full_unstemmed Genome-Wide Association Mapping and Genomic Prediction Analyses Reveal the Genetic Architecture of Grain Yield and Flowering Time Under Drought and Heat Stress Conditions in Maize
title_short Genome-Wide Association Mapping and Genomic Prediction Analyses Reveal the Genetic Architecture of Grain Yield and Flowering Time Under Drought and Heat Stress Conditions in Maize
title_sort genome-wide association mapping and genomic prediction analyses reveal the genetic architecture of grain yield and flowering time under drought and heat stress conditions in maize
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6363715/
https://www.ncbi.nlm.nih.gov/pubmed/30761177
http://dx.doi.org/10.3389/fpls.2018.01919
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