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Identification and Validation of New Stable QTLs for Grain Weight and Size by Multiple Mapping Models in Common Wheat

Improvement of grain weight and size is an important objective for high-yield wheat breeding. In this study, 174 recombinant inbred lines (RILs) derived from the cross between Jing 411 and Hongmangchun 21 were used to construct a high-density genetic map by specific locus amplified fragment sequenci...

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Autores principales: Cao, Jiajia, Shang, Yaoyao, Xu, Dongmei, Xu, Kangle, Cheng, Xinran, Pan, Xu, Liu, Xue, Liu, Mingli, Gao, Chang, Yan, Shengnan, Yao, Hui, Gao, Wei, Lu, Jie, Zhang, Haiping, Chang, Cheng, Xia, Xianchun, Xiao, Shihe, Ma, Chuanxi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7686802/
https://www.ncbi.nlm.nih.gov/pubmed/33262789
http://dx.doi.org/10.3389/fgene.2020.584859
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author Cao, Jiajia
Shang, Yaoyao
Xu, Dongmei
Xu, Kangle
Cheng, Xinran
Pan, Xu
Liu, Xue
Liu, Mingli
Gao, Chang
Yan, Shengnan
Yao, Hui
Gao, Wei
Lu, Jie
Zhang, Haiping
Chang, Cheng
Xia, Xianchun
Xiao, Shihe
Ma, Chuanxi
author_facet Cao, Jiajia
Shang, Yaoyao
Xu, Dongmei
Xu, Kangle
Cheng, Xinran
Pan, Xu
Liu, Xue
Liu, Mingli
Gao, Chang
Yan, Shengnan
Yao, Hui
Gao, Wei
Lu, Jie
Zhang, Haiping
Chang, Cheng
Xia, Xianchun
Xiao, Shihe
Ma, Chuanxi
author_sort Cao, Jiajia
collection PubMed
description Improvement of grain weight and size is an important objective for high-yield wheat breeding. In this study, 174 recombinant inbred lines (RILs) derived from the cross between Jing 411 and Hongmangchun 21 were used to construct a high-density genetic map by specific locus amplified fragment sequencing (SLAF-seq). Three mapping methods, including inclusive composite interval mapping (ICIM), genome-wide composite interval mapping (GCIM), and a mixed linear model performed with forward–backward stepwise (NWIM), were used to identify QTLs for thousand grain weight (TGW), grain width (GW), and grain length (GL). In total, we identified 30, 15, and 18 putative QTLs for TGW, GW, and GL that explain 1.1–33.9%, 3.1%–34.2%, and 1.7%–22.8% of the phenotypic variances, respectively. Among these, 19 (63.3%) QTLs for TGW, 10 (66.7%) for GW, and 7 (38.9%) for GL were consistent with those identified by genome-wide association analysis in 192 wheat varieties. Five new stable QTLs, including 3 for TGW (Qtgw.ahau-1B.1, Qtgw.ahau-4B.1, and Qtgw.ahau-4B.2) and 2 for GL (Qgl.ahau-2A.1 and Qgl.ahau-7A.2), were detected by the three aforementioned mapping methods across environments. Subsequently, five cleaved amplified polymorphic sequence (CAPS) markers corresponding to these QTLs were developed and validated in 180 Chinese mini-core wheat accessions. In addition, 19 potential candidate genes for Qtgw.ahau-4B.2 in a 0.31-Mb physical interval were further annotated, of which TraesCS4B02G376400 and TraesCS4B02G376800 encode a plasma membrane H(+)-ATPase and a serine/threonine-protein kinase, respectively. These new QTLs and CAPS markers will be useful for further marker-assisted selection and map-based cloning of target genes.
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spelling pubmed-76868022020-11-30 Identification and Validation of New Stable QTLs for Grain Weight and Size by Multiple Mapping Models in Common Wheat Cao, Jiajia Shang, Yaoyao Xu, Dongmei Xu, Kangle Cheng, Xinran Pan, Xu Liu, Xue Liu, Mingli Gao, Chang Yan, Shengnan Yao, Hui Gao, Wei Lu, Jie Zhang, Haiping Chang, Cheng Xia, Xianchun Xiao, Shihe Ma, Chuanxi Front Genet Genetics Improvement of grain weight and size is an important objective for high-yield wheat breeding. In this study, 174 recombinant inbred lines (RILs) derived from the cross between Jing 411 and Hongmangchun 21 were used to construct a high-density genetic map by specific locus amplified fragment sequencing (SLAF-seq). Three mapping methods, including inclusive composite interval mapping (ICIM), genome-wide composite interval mapping (GCIM), and a mixed linear model performed with forward–backward stepwise (NWIM), were used to identify QTLs for thousand grain weight (TGW), grain width (GW), and grain length (GL). In total, we identified 30, 15, and 18 putative QTLs for TGW, GW, and GL that explain 1.1–33.9%, 3.1%–34.2%, and 1.7%–22.8% of the phenotypic variances, respectively. Among these, 19 (63.3%) QTLs for TGW, 10 (66.7%) for GW, and 7 (38.9%) for GL were consistent with those identified by genome-wide association analysis in 192 wheat varieties. Five new stable QTLs, including 3 for TGW (Qtgw.ahau-1B.1, Qtgw.ahau-4B.1, and Qtgw.ahau-4B.2) and 2 for GL (Qgl.ahau-2A.1 and Qgl.ahau-7A.2), were detected by the three aforementioned mapping methods across environments. Subsequently, five cleaved amplified polymorphic sequence (CAPS) markers corresponding to these QTLs were developed and validated in 180 Chinese mini-core wheat accessions. In addition, 19 potential candidate genes for Qtgw.ahau-4B.2 in a 0.31-Mb physical interval were further annotated, of which TraesCS4B02G376400 and TraesCS4B02G376800 encode a plasma membrane H(+)-ATPase and a serine/threonine-protein kinase, respectively. These new QTLs and CAPS markers will be useful for further marker-assisted selection and map-based cloning of target genes. Frontiers Media S.A. 2020-11-11 /pmc/articles/PMC7686802/ /pubmed/33262789 http://dx.doi.org/10.3389/fgene.2020.584859 Text en Copyright © 2020 Cao, Shang, Xu, Xu, Cheng, Pan, Liu, Liu, Gao, Yan, Yao, Gao, Lu, Zhang, Chang, Xia, Xiao and Ma. 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 Genetics
Cao, Jiajia
Shang, Yaoyao
Xu, Dongmei
Xu, Kangle
Cheng, Xinran
Pan, Xu
Liu, Xue
Liu, Mingli
Gao, Chang
Yan, Shengnan
Yao, Hui
Gao, Wei
Lu, Jie
Zhang, Haiping
Chang, Cheng
Xia, Xianchun
Xiao, Shihe
Ma, Chuanxi
Identification and Validation of New Stable QTLs for Grain Weight and Size by Multiple Mapping Models in Common Wheat
title Identification and Validation of New Stable QTLs for Grain Weight and Size by Multiple Mapping Models in Common Wheat
title_full Identification and Validation of New Stable QTLs for Grain Weight and Size by Multiple Mapping Models in Common Wheat
title_fullStr Identification and Validation of New Stable QTLs for Grain Weight and Size by Multiple Mapping Models in Common Wheat
title_full_unstemmed Identification and Validation of New Stable QTLs for Grain Weight and Size by Multiple Mapping Models in Common Wheat
title_short Identification and Validation of New Stable QTLs for Grain Weight and Size by Multiple Mapping Models in Common Wheat
title_sort identification and validation of new stable qtls for grain weight and size by multiple mapping models in common wheat
topic Genetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7686802/
https://www.ncbi.nlm.nih.gov/pubmed/33262789
http://dx.doi.org/10.3389/fgene.2020.584859
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