Genome-Wide QTL Mapping for Stripe Rust Resistance in Winter Wheat Pindong 34 Using a 90K SNP Array

被引:9
|
作者
Zhou, Xinli [1 ]
Li, Xin [1 ]
Han, Dejun [2 ]
Yang, Suizhuang [1 ]
Kang, Zhensheng [2 ]
Ren, Runsheng [3 ]
机构
[1] Southwest Univ Sci & Technol, Wheat Res Inst, Sch Life Sci & Engn, Mianyang, Peoples R China
[2] Northwest A&F Univ, Coll Plant Protect, State Key Lab Crop Stress Biol Arid Areas, Xianyang, Peoples R China
[3] Jiangsu Acad Agr Sci, Excellence & Innovat Ctr, Nanjing, Peoples R China
来源
基金
中国国家自然科学基金;
关键词
wheat; stripe rust; QTL mapping; resistance gene; 90K wheat SNP array; ADULT-PLANT RESISTANCE; F-SP TRITICI; QUANTITATIVE TRAIT LOCI; PUCCINIA-STRIIFORMIS; YELLOW RUST; LEAF RUST; CHROMOSOMAL LOCATION; GENETIC-ANALYSIS; IDENTIFICATION; CULTIVARS;
D O I
10.3389/fpls.2022.932762
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Winter wheat cultivar Pindong 34 has both adult-plant resistance (APR) and all-stage resistance (ASR) to stripe rust, which is caused by Puccinia striiformis f. sp. tritici (Pst). To map the quantitative trait loci (QTL) for stripe rust resistance, an F6-10 recombinant inbred line (RIL) population from a cross of Mingxian 169 x Pingdong 34 was phenotyped for stripe rust response over multiple years in fields under natural infection conditions and with selected Pst races under controlled greenhouse conditions, and genotyping was performed with a 90K single nucleotide polymorphism (SNP) array chip. Inclusive composite interval mapping (ICIM) identified 12 APR resistance QTLs and 3 ASR resistance QTLs. Among the 12 APR resistance QTLs, QYrpd.swust-1BL (explaining 9.24-13.33% of the phenotypic variation), QYrpd.swust-3AL.1 (11.41-14.80%), QYrpd.swust-3AL.2 (11.55-16.10%), QYrpd.swust-6BL (9.39-12.78%), QYrpd.swust-6DL (9.52-16.36%), QYrpd.swust-7AL (9.09-17.0%), and QYrpd.swust-7DL (8.87-11.38%) were more abundant than in the five tested environments and QYrpd.swust-1AS (11.05-12.72%), QYrpd.swust-1DL (9.81-13.05%), QYrpd.swust-2BL.1 (9.69-10.57%), QYrpd.swust-2BL.2 (10.36-12.97%), and QYrpd.swust-2BL.3 (9.54-13.15%) were significant in some of the tests. The three ASR resistance QTLs QYrpd.swust-2AS (9.69-13.58%), QYrpd.swust-2BL.4 (9.49-12.07%), and QYrpd.swust-7AS (16.16%) were detected based on the reactions in the seedlings tested with the CYR34 Pst race. Among the 15 QTLs detected in Pindong 34, the ASR resistance gene QYrpd.swust-7AS mapped on the short arm of chromosome 7A was likely similar to the previously reported QTL Yr61 in the region. The QTLs identified in the present study and their closely linked molecular markers could be useful for developing wheat cultivars with durable resistance to stripe rust.
引用
收藏
页数:17
相关论文
共 50 条
  • [41] Genome-wide SNP identification and QTL mapping for black rot resistance in cabbage
    Jonghoon Lee
    Nur Kholilatul Izzah
    Murukarthick Jayakodi
    Sampath Perumal
    Ho Jun Joh
    Hyeon Ju Lee
    Sang-Choon Lee
    Jee Young Park
    Ki-Woung Yang
    Il-Sup Nou
    Joodeok Seo
    Jaeheung Yoo
    Youngdeok Suh
    Kyounggu Ahn
    Ji Hyun Lee
    Gyung Ja Choi
    Yeisoo Yu
    Heebal Kim
    Tae-Jin Yang
    BMC Plant Biology, 15
  • [42] Genome-Wide Mapping of Adult Plant Resistance to Leaf Rust and Stripe Rust in CIMMYT Wheat Line Arableu#1
    Yuan, Chan
    Singh, Ravi P.
    Liu, Demei
    Randhawa, Mandeep S.
    Huerta-Espino, Julio
    Lan, Caixia
    PLANT DISEASE, 2020, 104 (05) : 1455 - 1464
  • [43] Genome-wide association mapping for resistance to leaf rust, stripe rust and tan spot in wheat reveals potential candidate genes
    Philomin Juliana
    Ravi P. Singh
    Pawan K. Singh
    Jesse A. Poland
    Gary C. Bergstrom
    Julio Huerta-Espino
    Sridhar Bhavani
    Jose Crossa
    Mark E. Sorrells
    Theoretical and Applied Genetics, 2018, 131 : 1405 - 1422
  • [44] Genome-wide association mapping for resistance to leaf rust, stripe rust and tan spot in wheat reveals potential candidate genes
    Juliana, Philomin
    Singh, Ravi P.
    Singh, Pawan K.
    Poland, Jesse A.
    Bergstrom, Gary C.
    Huerta-Espino, Julio
    Bhavani, Sridhar
    Crossa, Jose
    Sorrells, Mark E.
    THEORETICAL AND APPLIED GENETICS, 2018, 131 (07) : 1405 - 1422
  • [45] GENOME-WIDE ASSOCIATION MAPPING AND POPULATION STRUCTURE FOR STRIPE RUST IN PAKISTANI WHEAT GERMPLASM
    Qaiser, Rizwan
    Akram, Zahid
    Asad, Shahzad
    Inam-Ul-Haq
    Malik, Saad Imran
    Fayyaz, Muhammad
    Sufiyan, Muhammad
    Khattak, Sahir Hameed
    Sandhu, Karansher Singh
    Sidhu, Gaganjot Singh
    PAKISTAN JOURNAL OF BOTANY, 2022, 54 (04) : 1405 - 1416
  • [46] Genome-Wide Association Mapping of Loci for Resistance to Stripe Rust in North American Elite Spring Wheat Germplasm
    Godoy, Jayfred Gaham
    Rynearson, Sheri
    Chen, Xianming
    Pumphrey, Michael
    PHYTOPATHOLOGY, 2018, 108 (02) : 234 - 245
  • [47] Genome-Wide Association Mapping of Adult-Plant Resistance to Stripe Rust in Common Wheat (Triticum aestivum)
    Yang, Fangping
    Liu, Jindong
    Guo, Ying
    He, Zhonghu
    Rasheed, Awais
    Wu, Ling
    Cao, Shiqin
    Nan, Hai
    Xia, Xianchun
    PLANT DISEASE, 2020, 104 (08) : 2174 - 2180
  • [48] Genome-Wide Linkage Mapping of QTL for Adult-Plant Resistance to Stripe Rust in a Chinese Wheat Population Linmai 2 x Zhong 892
    Liu, Jindong
    He, Zhonghu
    Wu, Ling
    Bai, Bin
    Wen, Weie
    Xie, Chaojie
    Xia, Xianchun
    PLOS ONE, 2015, 10 (12):
  • [49] QTL mapping for seedling and adult plant resistance to stripe and leaf rust in two winter wheat populations
    Kokhmetova, Alma
    Rathan, Nagenahalli Dharmegowda
    Sehgal, Deepmala
    Malysheva, Angelina
    Kumarbayeva, Madina
    Nurzhuma, Makpal
    Bolatbekova, Ardak
    Krishnappa, Gopalareddy
    Gultyaeva, Elena
    Kokhmetova, Asia
    Keishilov, Zhenis
    Bakhytuly, Kanat
    FRONTIERS IN GENETICS, 2023, 14
  • [50] Mapping of Aegilops speltoides derived leaf rust and stripe rust resistance genes using 35K SNP array
    Kaur, Balihar
    Bai, Bukke Kutti
    Dhillon, Guriqbal Singh
    Kaur, Jaspal
    Sharma, Achla
    Srivastava, Puja
    Chhuneja, Parveen
    Kaur, Satinder
    BMC GENOMIC DATA, 2024, 25 (01):