Identification and fine mapping of Pi39(t), a major gene conferring the broad-spectrum resistance to Magnaporthe oryzae

被引:0
|
作者
Xinqiong Liu
Qinzhong Yang
Fei Lin
Lixia Hua
Chuntai Wang
Ling Wang
Qinghua Pan
机构
[1] South China Agricultural University,Laboratory of Plant Resistance and Genetics, College of Resources and Environmental Sciences
[2] South-Central University for Nationalities,College of Life Science
[3] Yuannan Academy of Agricultural Sciences,Agricultural Environmental and Resources Research Institute
来源
关键词
L.; Resistance gene; Fine mapping; Differential test;
D O I
暂无
中图分类号
学科分类号
摘要
Blast, caused by the ascomycete fungus Magnaporthe oryzae, is one of the most devastating diseases of rice worldwide. The Chinese native cultivar (cv.) Q15 expresses the broad-spectrum resistance to most of the isolates collected from China. To effectively utilize the resistance, three rounds of linkage analysis were performed in an F2 population derived from a cross of Q15 and a susceptible cv. Tsuyuake, which segregated into 3:1 (resistant/susceptible) ratio. The first round of linkage analysis employing simple sequence repeat (SSR) markers was carried out in the F2 population through bulked-segregant assay. A total of 180 SSR markers selected from each chromosome equally were surveyed. The results revealed that only two polymorphic markers, RM247 and RM463, located on chromosome 12, were linked to the resistance (R) gene. To further define the chromosomal location of the R gene locus, the second round of linkage analysis was performed using additional five SSR markers, which located in the region anchored by markers RM247 and RM463. The locus was further mapped to a 0.27 cM region bounded by markers RM27933 and RM27940 in the pericentromeric region towards the short arm. For fine mapping of the R locus, seven new markers were developed in the smaller region for the third round of linkage analysis, based on the reference sequences. The R locus was further mapped to a 0.18 cM region flanked by marker clusters 39M11 and 39M22, which is closest to, but away from the Pita/Pita2 locus by 0.09 cM. To physically map the locus, all the linked markers were landed on the respective bacterial artificial chromosome clones of the reference cv. Nipponbare. Sequence information of these clones was used to construct a physical map of the locus, in silico, by bioinformatics analysis. The locus was physically defined to an interval of ≈37 kb. To further characterize the R gene, five R genes mapped near the locus, as well as 10 main R genes those might be exploited in the resistance breeding programs, were selected for differential tests with 475 Chinese isolates. The R gene carrier Q15 conveys resistances distinct from those conditioned by the carriers of the 15 R genes. Together, this valuable R gene was, therefore, designated as Pi39(t). The sequence information of the R gene locus could be used for further marker-based selection and cloning.
引用
收藏
页码:403 / 410
页数:7
相关论文
共 50 条
  • [31] Functional complementation of rice blast resistance gene Pi-kh(Pi54) conferring resistance to diverse strains of Magnaporthe oryzae
    Amit Kumar Rai
    Satya Pal Kumar
    Santosh Kumar Gupta
    Naveen Gautam
    Nagendera Kumar Singh
    Tilak Raj Sharma
    Journal of Plant Biochemistry and Biotechnology, 2011, 20 : 55 - 65
  • [32] Identification of SSR markers for a broad-spectrum blast resistance gene Pi20(t) for marker-assisted breeding
    Wei Li
    Cailin Lei
    Zhijun Cheng
    Yulin Jia
    Dongyi Huang
    Jiulin Wang
    Jiankang Wang
    Xin Zhang
    Ning Su
    Xiuping Guo
    Huqu Zhai
    Jianmin Wan
    Molecular Breeding, 2008, 22 : 141 - 149
  • [33] Identification and rapid mapping of a gene conferring broad-spectrum late blight resistance in the diploid potato species Solanum verrucosum through DNA capture technologies
    Xinwei Chen
    Dominika Lewandowska
    Miles R. Armstrong
    Katie Baker
    Tze-Yin Lim
    Micha Bayer
    Brian Harrower
    Karen McLean
    Florian Jupe
    Kamil Witek
    Alison K. Lees
    Jonathan D. Jones
    Glenn J. Bryan
    Ingo Hein
    Theoretical and Applied Genetics, 2018, 131 : 1287 - 1297
  • [34] Identification and rapid mapping of a gene conferring broad-spectrum late blight resistance in the diploid potato species Solanum verrucosum through DNA capture technologies
    Chen, Xinwei
    Lewandowska, Dominika
    Armstrong, Miles R.
    Baker, Katie
    Lim, Tze-Yin
    Bayer, Micha
    Harrower, Brian
    McLean, Karen
    Jupe, Florian
    Witek, Kamil
    Lees, Alison K.
    Jones, Jonathan D.
    Bryan, Glenn J.
    Hein, Ingo
    THEORETICAL AND APPLIED GENETICS, 2018, 131 (06) : 1287 - 1297
  • [35] Fine-mapping of PmHHM, a broad-spectrum allele from a wheat landrace conferring both seedling and adult resistance to powdery mildew
    Fu, Bisheng
    Lin, Zhixin
    Yan, Lijuan
    Zhang, Qiaofeng
    Liu, Caiyun
    Cai, Jin
    Guo, Wei
    Liu, Ying
    Zhai, Wenling
    Gong, Shuangjun
    Xu, Feng
    Wu, Jizhong
    FRONTIERS IN PLANT SCIENCE, 2025, 15
  • [36] Genetic and physical mapping of Pi5(t), a locus associated with broad-spectrum resistance to rice blast
    J.-S. Jeon
    D. Chen
    G.-H. Yi
    G. L. Wang
    P. C. Ronald
    Molecular Genetics and Genomics, 2003, 269 : 280 - 289
  • [37] Genetic and physical mapping of Pi5(t), a locus associated with broad-spectrum resistance to rice blast
    Jeon, JS
    Chen, D
    Yi, GH
    Wang, GL
    Ronald, PC
    MOLECULAR GENETICS AND GENOMICS, 2003, 269 (02) : 280 - 289
  • [38] Identification and application of the rice broad-spectrum blast resistance gene Pigm
    He, Z.
    Deng, Y.
    PHYTOPATHOLOGY, 2010, 100 (06) : S49 - S49
  • [39] Mapping of a broad-spectrum rust resistance locus in Andean common bean PI 260418
    Valentini, G.
    Xavier, L.
    Pastor-Corrales, M. A.
    PHYTOPATHOLOGY, 2020, 110 (12) : 190 - 191
  • [40] Identification of genomic loci conferring broad-spectrum resistance to multiple nematode species in exotic soybean accession PI 567,305
    Vuong, T. D.
    Sonah, H.
    Patil, G.
    Meinhardt, C.
    Usovsky, M.
    Kim, K. S.
    Belzile, F.
    Li, Z.
    Robbins, R.
    Shannon, J. G.
    Nguyen, H. T.
    THEORETICAL AND APPLIED GENETICS, 2021, 134 (10) : 3379 - 3395