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Identification and Pyramiding Major QTL Loci for Simultaneously Enhancing Aflatoxin Resistance and Yield Components in Peanut

Peanut is susceptible to Aspergillus flavus infection, and the consequent aflatoxin contamination has been recognized as an important risk factor affecting food safety and industry development. Planting peanut varieties with resistance to aflatoxin contamination is regarded as an ideal approach to d...

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Autores principales: Jin, Gaorui, Liu, Nian, Yu, Bolun, Jiang, Yifei, Luo, Huaiyong, Huang, Li, Zhou, Xiaojing, Yan, Liying, Kang, Yanping, Huai, Dongxin, Ding, Yinbing, Chen, Yuning, Wang, Xin, Jiang, Huifang, Lei, Yong, Shen, Jinxiong, Liao, Boshou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10048167/
https://www.ncbi.nlm.nih.gov/pubmed/36980897
http://dx.doi.org/10.3390/genes14030625
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author Jin, Gaorui
Liu, Nian
Yu, Bolun
Jiang, Yifei
Luo, Huaiyong
Huang, Li
Zhou, Xiaojing
Yan, Liying
Kang, Yanping
Huai, Dongxin
Ding, Yinbing
Chen, Yuning
Wang, Xin
Jiang, Huifang
Lei, Yong
Shen, Jinxiong
Liao, Boshou
author_facet Jin, Gaorui
Liu, Nian
Yu, Bolun
Jiang, Yifei
Luo, Huaiyong
Huang, Li
Zhou, Xiaojing
Yan, Liying
Kang, Yanping
Huai, Dongxin
Ding, Yinbing
Chen, Yuning
Wang, Xin
Jiang, Huifang
Lei, Yong
Shen, Jinxiong
Liao, Boshou
author_sort Jin, Gaorui
collection PubMed
description Peanut is susceptible to Aspergillus flavus infection, and the consequent aflatoxin contamination has been recognized as an important risk factor affecting food safety and industry development. Planting peanut varieties with resistance to aflatoxin contamination is regarded as an ideal approach to decrease the risk in food safety, but most of the available resistant varieties have not been extensively used in production because of their low yield potential mostly due to possessing small pods and seeds. Hence, it is highly necessary to integrate resistance to aflatoxin and large seed weight. In this study, an RIL population derived from a cross between Zhonghua 16 with high yield and J 11 with resistance to infection of A. flavus and aflatoxin production, was used to identify quantitative trait locus (QTL) for aflatoxin production (AP) resistance and hundred-seed weight (HSW). From combined analysis using a high-density genetic linkage map constructed, 11 QTLs for AP resistance with 4.61–11.42% phenotypic variation explanation (PVE) and six QTLs for HSW with 3.20–28.48% PVE were identified, including three major QTLs for AP resistance (qAFTA05.1, qAFTB05.2 and qAFTB06.3) and three for HSW (qHSWA05, qHSWA08 and qHSWB06). In addition, qAFTA05.1, qAFTB06.3, qHSWA05, qHSWA08 and qHSWB06 were detected in multiple environments. The aflatoxin contents under artificial inoculation were decreased by 34.77–47.67% in those segregated lines harboring qAFTA05.1, qAFTB05.2 and qAFTB06.3, while the HSWs were increased by 47.56–49.46 g in other lines harboring qHSWA05, qHSWA08 and qHSWB06. Conditional QTL mapping indicated that HSW and percent seed infection index (PSII) had no significant influence on aflatoxin content. Interestingly, the QT 1059 simultaneously harboring alleles of aflatoxin content including qAFTA05.1 and qAFTB05.2, alleles of PSII including qPSIIB03.1, qPSIIB03.2, and qPSIIB10 and alleles of HSW including qHSWA05, qHSWB06, qHSWA08 had better resistance to A. flavus infection and to toxin production and higher yield potential compared with the two parents of the RIL. The above identified major loci for AP resistance and HWS would be helpful for marker-assisted selection in peanut breeding.
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spelling pubmed-100481672023-03-29 Identification and Pyramiding Major QTL Loci for Simultaneously Enhancing Aflatoxin Resistance and Yield Components in Peanut Jin, Gaorui Liu, Nian Yu, Bolun Jiang, Yifei Luo, Huaiyong Huang, Li Zhou, Xiaojing Yan, Liying Kang, Yanping Huai, Dongxin Ding, Yinbing Chen, Yuning Wang, Xin Jiang, Huifang Lei, Yong Shen, Jinxiong Liao, Boshou Genes (Basel) Article Peanut is susceptible to Aspergillus flavus infection, and the consequent aflatoxin contamination has been recognized as an important risk factor affecting food safety and industry development. Planting peanut varieties with resistance to aflatoxin contamination is regarded as an ideal approach to decrease the risk in food safety, but most of the available resistant varieties have not been extensively used in production because of their low yield potential mostly due to possessing small pods and seeds. Hence, it is highly necessary to integrate resistance to aflatoxin and large seed weight. In this study, an RIL population derived from a cross between Zhonghua 16 with high yield and J 11 with resistance to infection of A. flavus and aflatoxin production, was used to identify quantitative trait locus (QTL) for aflatoxin production (AP) resistance and hundred-seed weight (HSW). From combined analysis using a high-density genetic linkage map constructed, 11 QTLs for AP resistance with 4.61–11.42% phenotypic variation explanation (PVE) and six QTLs for HSW with 3.20–28.48% PVE were identified, including three major QTLs for AP resistance (qAFTA05.1, qAFTB05.2 and qAFTB06.3) and three for HSW (qHSWA05, qHSWA08 and qHSWB06). In addition, qAFTA05.1, qAFTB06.3, qHSWA05, qHSWA08 and qHSWB06 were detected in multiple environments. The aflatoxin contents under artificial inoculation were decreased by 34.77–47.67% in those segregated lines harboring qAFTA05.1, qAFTB05.2 and qAFTB06.3, while the HSWs were increased by 47.56–49.46 g in other lines harboring qHSWA05, qHSWA08 and qHSWB06. Conditional QTL mapping indicated that HSW and percent seed infection index (PSII) had no significant influence on aflatoxin content. Interestingly, the QT 1059 simultaneously harboring alleles of aflatoxin content including qAFTA05.1 and qAFTB05.2, alleles of PSII including qPSIIB03.1, qPSIIB03.2, and qPSIIB10 and alleles of HSW including qHSWA05, qHSWB06, qHSWA08 had better resistance to A. flavus infection and to toxin production and higher yield potential compared with the two parents of the RIL. The above identified major loci for AP resistance and HWS would be helpful for marker-assisted selection in peanut breeding. MDPI 2023-03-01 /pmc/articles/PMC10048167/ /pubmed/36980897 http://dx.doi.org/10.3390/genes14030625 Text en © 2023 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
Jin, Gaorui
Liu, Nian
Yu, Bolun
Jiang, Yifei
Luo, Huaiyong
Huang, Li
Zhou, Xiaojing
Yan, Liying
Kang, Yanping
Huai, Dongxin
Ding, Yinbing
Chen, Yuning
Wang, Xin
Jiang, Huifang
Lei, Yong
Shen, Jinxiong
Liao, Boshou
Identification and Pyramiding Major QTL Loci for Simultaneously Enhancing Aflatoxin Resistance and Yield Components in Peanut
title Identification and Pyramiding Major QTL Loci for Simultaneously Enhancing Aflatoxin Resistance and Yield Components in Peanut
title_full Identification and Pyramiding Major QTL Loci for Simultaneously Enhancing Aflatoxin Resistance and Yield Components in Peanut
title_fullStr Identification and Pyramiding Major QTL Loci for Simultaneously Enhancing Aflatoxin Resistance and Yield Components in Peanut
title_full_unstemmed Identification and Pyramiding Major QTL Loci for Simultaneously Enhancing Aflatoxin Resistance and Yield Components in Peanut
title_short Identification and Pyramiding Major QTL Loci for Simultaneously Enhancing Aflatoxin Resistance and Yield Components in Peanut
title_sort identification and pyramiding major qtl loci for simultaneously enhancing aflatoxin resistance and yield components in peanut
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10048167/
https://www.ncbi.nlm.nih.gov/pubmed/36980897
http://dx.doi.org/10.3390/genes14030625
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