Construction of genotyping-by-sequencing based high-density genetic maps and QTL mapping for fusarium wilt resistance in pigeonpea

被引:0
作者
Rachit K. Saxena
Vikas K. Singh
Sandip M. Kale
Revathi Tathineni
Swathi Parupalli
Vinay Kumar
Vanika Garg
Roma R. Das
Mamta Sharma
K. N. Yamini
S. Muniswamy
Anuradha Ghanta
Abhishek Rathore
C. V. Sameer Kumar
K. B. Saxena
P. B. Kavi Kishor
Rajeev K. Varshney
机构
[1] International Crops Research Institute for the Semi-Arid Tropics,Agricultural Research Station (ARS)
[2] Professor Jayashankar Telangana State Agricultural University,Gulbarga
[3] University of Agricultural Sciences (UAS),School of Plant Biology and Institute of Agriculture
[4] Osmania University,undefined
[5] The University of Western Australia,undefined
来源
Scientific Reports | / 7卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Fusarium wilt (FW) is one of the most important biotic stresses causing yield losses in pigeonpea. Genetic improvement of pigeonpea through genomics-assisted breeding (GAB) is an economically feasible option for the development of high yielding FW resistant genotypes. In this context, two recombinant inbred lines (RILs) (ICPB 2049 × ICPL 99050 designated as PRIL_A and ICPL 20096 × ICPL 332 designated as PRIL_B) and one F2 (ICPL 85063 × ICPL 87119) populations were used for the development of high density genetic maps. Genotyping-by-sequencing (GBS) approach was used to identify and genotype SNPs in three mapping populations. As a result, three high density genetic maps with 964, 1101 and 557 SNPs with an average marker distance of 1.16, 0.84 and 2.60 cM were developed in PRIL_A, PRIL_B and F2, respectively. Based on the multi-location and multi-year phenotypic data of FW resistance a total of 14 quantitative trait loci (QTLs) including six major QTLs explaining >10% phenotypic variance explained (PVE) were identified. Comparative analysis across the populations has revealed three important QTLs (qFW11.1, qFW11.2 and qFW11.3) with upto 56.45% PVE for FW resistance. This is the first report of QTL mapping for FW resistance in pigeonpea and identified genomic region could be utilized in GAB.
引用
收藏
相关论文
共 50 条
[41]   Quantitative Trait Loci Analysis Based on High-Density Mapping of Single-Nucleotide Polymorphisms by Genotyping-by-Sequencing Against Pine Wilt Disease in Japanese Black Pine (Pinus thunbergii) [J].
Hirao, Tomonori ;
Matsunaga, Koji ;
Shirasawa, Kenta .
FRONTIERS IN PLANT SCIENCE, 2022, 13
[42]   Construction of a High-Density American Cranberry (Vaccinium macrocarpon Ait.) Composite Map Using Genotyping-by-Sequencing for Multi-pedigree Linkage Mapping [J].
Schlautman, Brandon ;
Covarrubias-Pazaran, Giovanny ;
Diaz-Garcia, Luis ;
Iorizzo, Massimo ;
Polashock, James ;
Grygleski, Edward ;
Vorsa, Nicholi ;
Zalapa, Juan .
G3-GENES GENOMES GENETICS, 2017, 7 (04) :1177-1189
[43]   Genotyping-by-sequencing based genetic mapping reveals large number of epistatic interactions for stem rot resistance in groundnut [J].
Dodia, Sneha M. ;
Joshi, Binal ;
Gangurde, Sunil S. ;
Thirumalaisamy, Polavakkalipalayam P. ;
Mishra, Gyan P. ;
Narandrakumar, Dayama ;
Soni, Pooja ;
Rathnakumar, Arulthambi L. ;
Dobaria, Jentilal R. ;
Sangh, Chandramohan ;
Chitikineni, Annapurna ;
Chanda, Sumitra V. ;
Pandey, Manish K. ;
Varshney, Rajeev K. ;
Thankappan, Radhakrishnan .
THEORETICAL AND APPLIED GENETICS, 2019, 132 (04) :1001-1016
[44]   Construction of High-Density Genetic Map and QTL Mapping for Grain Shape in the Rice RIL Population [J].
Wei, Minyi ;
Luo, Tongping ;
Huang, Dahui ;
Ma, Zengfeng ;
Liu, Chi ;
Qin, Yuanyuan ;
Wu, Zishuai ;
Zhou, Xiaolong ;
Lu, Yingping ;
Yan, Liuhui ;
Qin, Gang ;
Zhang, Yuexiong .
PLANTS-BASEL, 2023, 12 (16)
[45]   Construction of a high-density genetic map and its application for leaf shape QTL mapping in poplar [J].
Xia, Wenxiu ;
Xiao, Zheng'ang ;
Cao, Pei ;
Zhang, Yan ;
Du, Kebing ;
Wang, Nian .
PLANTA, 2018, 248 (05) :1173-1185
[46]   Construction of a high-density genetic map and its application for leaf shape QTL mapping in poplar [J].
Wenxiu Xia ;
Zheng’ang Xiao ;
Pei Cao ;
Yan Zhang ;
Kebing Du ;
Nian Wang .
Planta, 2018, 248 :1173-1185
[47]   Construction of a high-density genetic linkage map and QTL mapping for growth traits in Pseudobagrus ussuriensis [J].
Zhu, Chuankun ;
Liu, Haiyang ;
Pan, Zhengjun ;
Chang, Guoliang ;
Wang, Hui ;
Wu, Nan ;
Ding, Huaiyu ;
Yu, Xiangsheng .
AQUACULTURE, 2019, 511
[48]   Genotyping-by-sequencing based genetic mapping reveals large number of epistatic interactions for stem rot resistance in groundnut [J].
Sneha M. Dodia ;
Binal Joshi ;
Sunil S. Gangurde ;
Polavakkalipalayam P. Thirumalaisamy ;
Gyan P. Mishra ;
Dayama Narandrakumar ;
Pooja Soni ;
Arulthambi L. Rathnakumar ;
Jentilal R. Dobaria ;
Chandramohan Sangh ;
Annapurna Chitikineni ;
Sumitra V. Chanda ;
Manish K. Pandey ;
Rajeev K. Varshney ;
Radhakrishnan Thankappan .
Theoretical and Applied Genetics, 2019, 132 :1001-1016
[49]   Evaluation of genetic structure in European wheat cultivars and advanced breeding lines using high-density genotyping-by-sequencing approach [J].
Mirosław Tyrka ;
Monika Mokrzycka ;
Beata Bakera ;
Dorota Tyrka ;
Magdalena Szeliga ;
Stefan Stojałowski ;
Przemysław Matysik ;
Michał Rokicki ;
Monika Rakoczy-Trojanowska ;
Paweł Krajewski .
BMC Genomics, 22
[50]   Evaluation of genetic structure in European wheat cultivars and advanced breeding lines using high-density genotyping-by-sequencing approach [J].
Tyrka, Miroslaw ;
Mokrzycka, Monika ;
Bakera, Beata ;
Tyrka, Dorota ;
Szeliga, Magdalena ;
Stojalowski, Stefan ;
Matysik, Przemyslaw ;
Rokicki, Michal ;
Rakoczy-Trojanowska, Monika ;
Krajewski, Pawel .
BMC GENOMICS, 2021, 22 (01)