QTL mapping of web blotch resistance in peanut by high-throughput genome-wide sequencing

被引:19
|
作者
Liu, Hua [1 ,2 ]
Sun, Ziqi [2 ]
Zhang, Xinyou [2 ]
Qin, Li [2 ]
Qi, Feiyan [2 ]
Wang, Zhenyu [3 ]
Du, Pei [2 ]
Xu, Jing [2 ]
Zhang, Zhongxin [2 ]
Han, Suoyi [2 ]
Li, Shaojian [3 ]
Gao, Meng [3 ]
Zhang, Lina [2 ]
Cheng, Yujie [2 ]
Zheng, Zheng [2 ]
Huang, Bingyan [2 ]
Dong, Wenzhao [2 ]
机构
[1] Shenyang Agr Univ, Coll Agron, Shenyang 110866, Peoples R China
[2] Henan Acad Agr Sci, Henan Prov Key Lab Genet Improvement Oil Crops, Key Lab Oil Crops Huang Huai Hai Plains, Ind Crops Res Inst,Minist Agr & Rural Affairs, Zhengzhou 450002, Peoples R China
[3] Henan Acad Agr Sci, Inst Plant Protect, Zhengzhou 450002, Peoples R China
基金
中国国家自然科学基金;
关键词
QTL mapping; Peanut; Web blotch resistance; Resequencing; ARACHIDICOLA;
D O I
10.1186/s12870-020-02455-8
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
BackgroundWeb blotch is one of the most important foliar diseases worldwide in peanut (Arachis hypogaea L.). The identification of quantitative trait loci (QTLs) for peanut web blotch resistance represents the basis for gene mining and the application of molecular breeding technologies.ResultsIn this study, a peanut recombinant inbred line (RIL) population was used to map QTLs for web blotch resistance based on high-throughput genome-wide sequencing. Frequency distributions of disease grade and disease index in five environments indicated wide phenotypic variations in response to web blotch among RILs. A high-density genetic map was constructed, containing 3634 bin markers distributed on 20 peanut linkage groups (LGs) with an average genetic distance of 0.5cM. In total, eight QTLs were detected for peanut web blotch resistance in at least two environments, explaining from 2.8 to 15.1% of phenotypic variance. Two major QTLs qWBRA04 and qWBRA14 were detected in all five environments and were linked to 40 candidate genes encoding nucleotide-binding site leucine-rich repeat (NBS-LRR) or other proteins related to disease resistances.ConclusionsThe results of this study provide a basis for breeding peanut cultivars with web blotch resistance.
引用
收藏
页数:11
相关论文
共 44 条
  • [21] QTL mapping for pre-harvest sprouting resistance in japonica rice varieties utilizing genome re-sequencing
    Kyeong-Seong Cheon
    Yong Jae Won
    Young-Min Jeong
    Youn-Young Lee
    Do-Yu Kang
    Jun Oh
    Hyoja Oh
    Song Lim Kim
    Nyunhee Kim
    Eungyeong Lee
    In Sun Yoon
    Inchan Choi
    Jeongho Baek
    Kyung-Hwan Kim
    Hyun-Su Park
    Hyeonso Ji
    Molecular Genetics and Genomics, 2020, 295 : 1129 - 1140
  • [22] QTL mapping for pre-harvest sprouting resistance in japonica rice varieties utilizing genome re-sequencing
    Cheon, Kyeong-Seong
    Won, Yong Jae
    Jeong, Young-Min
    Lee, Youn-Young
    Kang, Do-Yu
    Oh, Jun
    Oh, Hyoja
    Kim, Song Lim
    Kim, Nyunhee
    Lee, Eungyeong
    Yoon, In Sun
    Choi, Inchan
    Baek, Jeongho
    Kim, Kyung-Hwan
    Park, Hyun-Su
    Ji, Hyeonso
    MOLECULAR GENETICS AND GENOMICS, 2020, 295 (05) : 1129 - 1140
  • [23] Development of Three Sets of High-Throughput Genotyped Rice Chromosome Segment Substitution Lines and QTL Mapping for Eleven Traits
    Bin Zhang
    Lianguang Shang
    Banpu Ruan
    Anpeng Zhang
    Shenglong Yang
    Hongzhen Jiang
    Chaolei Liu
    Kai Hong
    Hai Lin
    Zhenyu Gao
    Jiang Hu
    Dali Zeng
    Longbiao Guo
    Qian Qian
    Rice, 2019, 12
  • [24] Genome-Wide QTL Mapping for Wheat Processing Quality Parameters in a Gaocheng 8901/Zhoumai 16 Recombinant Inbred Line Population
    Jin, Hui
    Wen, Weie
    Liu, Jindong
    Zhai, Shengnan
    Zhang, Yan
    Yan, Jun
    Liu, Zhiyong
    Xia, Xianchun
    He, Zhonghu
    FRONTIERS IN PLANT SCIENCE, 2016, 7
  • [25] First identification of two co-existing genome-wide significant sex quantitative trait loci (QTL) in red tilapia using integrative QTL mapping
    Zhu, Zong-Xian
    Lin, Yi-Long
    Ai, Chun-Hui
    Xiong, Ying-Ying
    Huang, Dan-Dan
    Yao, Yin-Yi
    Liu, Tong-De
    Chen, Chao-Hao
    Lin, Hao-Ran
    Xia, Jun-Hong
    ZOOLOGICAL RESEARCH, 2022, 43 (02) : 205 - 216
  • [26] Development of Three Sets of High-Throughput Genotyped Rice Chromosome Segment Substitution Lines and QTL Mapping for Eleven Traits
    Zhang, Bin
    Shang, Lianguang
    Ruan, Banpu
    Zhang, Anpeng
    Yang, Shenglong
    Jiang, Hongzhen
    Liu, Chaolei
    Hong, Kai
    Lin, Hai
    Gao, Zhenyu
    Hu, Jiang
    Zeng, Dali
    Gu, Longbiao
    Qian, Qian
    RICE, 2019, 12 (1)
  • [27] Linkage Mapping and Genome-Wide Association Study Identified Two Peanut Late Leaf Spot Resistance Loci, PLLSR-1 and PLLSR-2, Using Nested Association Mapping
    Gangurde, Sunil S.
    Thompson, Ethan
    Yaduru, Shasidhar
    Wang, Hui
    Fountain, Jake C.
    Chu, Ye
    Ozias-Akins, Peggy
    Isleib, Thomas G.
    Holbrook, Corley
    Dutta, Bhabesh
    Culbreath, Albert K.
    Pandey, Manish K.
    Guo, Baozhu
    PHYTOPATHOLOGY, 2024, 114 (06) : 1346 - 1355
  • [28] High-throughput SNP discovery in the rabbit (Oryctolagus cuniculus) genome by next-generation semiconductor-based sequencing
    Bertolini, F.
    Schiavo, G.
    Scotti, E.
    Ribani, A.
    Martelli, P. L.
    Casadio, R.
    Fontanesi, L.
    ANIMAL GENETICS, 2014, 45 (02) : 304 - 307
  • [29] Genome-wide characterization of pyrabactin resistance 1-like (PYL) family genes revealed AhPYL6 confer the resistance to Ralstonia solanacearum in peanut
    Cao, Zenghui
    Li, Zhan
    Meng, Lin
    Cao, Di
    Zhao, Kai
    Hu, Sasa
    Li, Yanzhe
    Zhao, Kunkun
    Ma, Qian
    Li, Yaoyao
    Fan, Yi
    Ma, Xingli
    Gong, Fangping
    Li, Zhongfeng
    Qiu, Ding
    Zhang, Lin
    Zhang, Xingguo
    Ren, Rui
    Yin, Dongmei
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2024, 217
  • [30] Genome-wide QTL mapping and RNA-seq reveal genetic mechanisms behind discrepant growth traits in Pacific whiteleg shrimp, Litopenaeus vannamei
    Ma, Bo
    Liu, Yang
    Zhang, Xin
    Chen, Ting
    Zhang, Lvping
    Hu, Chaoqun
    Yu, Suzhong
    Chen, Guoqiang
    Liu, Liyan
    Zhu, Jingxuan
    Luo, Peng
    AQUACULTURE, 2025, 599