Phenotypic and Genotypic screening of fifty-two rice (Oryza sativa L.) genotypes for desirable cultivars against blast disease

被引:5
作者
Jeevan, B. [1 ]
Hosahatti, Rajashekara [1 ]
Koti, Prasanna [2 ]
Devappa, Vinaykumar Hargi [3 ]
Ngangkham, Umakanta [4 ]
Devanna, Pramesh [5 ]
Yadav, Manoj Kumar [6 ]
Mishra, Krishna Kant [1 ]
Aditya, Jay Prakash [1 ]
Boraiah, Palanna Kaki [3 ]
Gaber, Ahmed [7 ]
Hossain, Akbar [8 ]
机构
[1] ICAR Vivekananda Parvatiya Krishi Anusandhan Sanst, Almora, Uttarakhand, India
[2] Univ Transdisciplinary Hlth Sci & Technol, Bengaluru, Karnataka, India
[3] GKVK, UAS, ICAR AICRP Small Millets, Project Coordinating Unit, Bengaluru, Karnataka, India
[4] Manipur Ctr, ICAR Res Complex North Eastern Hill Reg, Imphal, Manipur, India
[5] Univ Agr Sci, AICRIP, Rice Pathol Lab, Raichur, Karnataka, India
[6] Indian Agr Res Inst, ICAR, Karnal, Haryana, India
[7] Taif Univ, Coll Sci, Dept Biol, Taif, Saudi Arabia
[8] Bangladesh Wheat & Maize Res Inst, Dept Agron, Dinajpur, Bangladesh
来源
PLOS ONE | 2023年 / 18卷 / 03期
关键词
BROAD-SPECTRUM RESISTANCE; NBS-LRR PROTEIN; MAGNAPORTHE-ORYZAE; CONFERS RESISTANCE; NECK BLAST; POPULATION-STRUCTURE; COMPLEX TRAITS; GENES; IDENTIFICATION; LANDRACES;
D O I
10.1371/journal.pone.0280762
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Magnaporthe oryzae, the rice blast fungus, is one of the most dangerous rice pathogens, causing considerable crop losses around the world. In order to explore the rice blast-resistant sources, initially performed a large-scale screening of 277 rice accessions. In parallel with field evaluations, fifty-two rice accessions were genotyped for 25 major blast resistance genes utilizing functional/gene-based markers based on their reactivity against rice blast disease. According to the phenotypic examination, 29 (58%) and 22 (42%) entries were found to be highly resistant, 18 (36%) and 29 (57%) showed moderate resistance, and 05 (6%) and 01 (1%), respectively, were highly susceptible to leaf and neck blast. The genetic frequency of 25 major blast resistance genes ranged from 32 to 60%, with two genotypes having a maximum of 16 R-genes each. The 52 rice accessions were divided into two groups based on cluster and population structure analysis. The highly resistant and moderately resistant accessions are divided into different groups using the principal coordinate analysis. According to the analysis of molecular variance, the maximum diversity was found within the population, while the minimum diversity was found between the populations. Two markers (RM5647 and K39512), which correspond to the blast-resistant genes Pi36 and Pik, respectively, showed a significant association to the neck blast disease, whereas three markers (Pi2-i, Pita3, and k2167), which correspond to the blast-resistant genes Pi2, Pita/Pita2, and Pikm, respectively, showed a significant association to the leaf blast disease. The associated R-genes might be utilized in rice breeding programmes through marker-assisted breeding, and the identified resistant rice accessions could be used as prospective donors for the production of new resistant varieties in India and around the world.
引用
收藏
页数:19
相关论文
共 72 条
  • [11] Identification and Characterization of a Large Effect QTL from Oryza glumaepatula Revealed Pi68(t) as Putative Candidate Gene for Rice Blast Resistance
    Devi, S. J. S. Rama
    Singh, Kuldeep
    Umakanth, B.
    Vishalakshi, B.
    Rao, K. Vijaya Sudhakara
    Suneel, B.
    Sharma, S. K.
    Kadambari, Gopala Krishna Murthy
    Prasad, M. S.
    Senguttvel, P.
    Syamaladevi, Divya P.
    Madhav, M. S.
    [J]. RICE, 2020, 13 (01)
  • [12] STRUCTURE HARVESTER: a website and program for visualizing STRUCTURE output and implementing the Evanno method
    Earl, Dent A.
    vonHoldt, Bridgett M.
    [J]. CONSERVATION GENETICS RESOURCES, 2012, 4 (02) : 359 - 361
  • [13] QTL mapping of panicle blast resistance in japonica landrace heikezijing and its application in rice breeding
    Fang, Nengyan
    Wang, Ruisen
    He, Wanwan
    Yin, Congfei
    Guan, Changhong
    Chen, Hao
    Huang, Ji
    Wang, Jianfei
    Bao, Yongmei
    Zhang, Hongsheng
    [J]. MOLECULAR BREEDING, 2016, 36 (12)
  • [14] Analysis of the structure of the AVR1-CO39 avirulence locus in virulent rice-infecting isolates of Magnaporthe grisea
    Farman, ML
    Eto, Y
    Nakao, T
    Tosa, Y
    Nakayashiki, H
    Mayama, S
    Leong, SA
    [J]. MOLECULAR PLANT-MICROBE INTERACTIONS, 2002, 15 (01) : 6 - 16
  • [15] Rise of a Cereal Killer: The Biology of Magnaporthe oryzae Biotrophic Growth
    Fernandez, Jessie
    Orth, Kim
    [J]. TRENDS IN MICROBIOLOGY, 2018, 26 (07) : 582 - 597
  • [16] Loss of Function of a Proline-Containing Protein Confers Durable Disease Resistance in Rice
    Fukuoka, Shuichi
    Saka, Norikuni
    Koga, Hironori
    Ono, Kazuko
    Shimizu, Takehiko
    Ebana, Kaworu
    Hayashi, Nagao
    Takahashi, Akira
    Hirochika, Hirohiko
    Okuno, Kazutoshi
    Yano, Masahiro
    [J]. SCIENCE, 2009, 325 (5943) : 998 - 1001
  • [17] Gayatree Panda Gayatree Panda, 2017, Oryza, V54, P330
  • [18] Using association mapping to dissect the genetic basis of complex traits in plants
    Hall, David
    Tegstrom, Carolina
    Ingvarsson, Par K.
    [J]. BRIEFINGS IN FUNCTIONAL GENOMICS, 2010, 9 (02) : 157 - 165
  • [19] Development of PCR-based allele-specific and InDel marker sets for nine rice blast resistance genes
    Hayashi, K.
    Yoshida, H.
    Ashikawa, I.
    [J]. THEORETICAL AND APPLIED GENETICS, 2006, 113 (02) : 251 - 260
  • [20] Durable panicle blast-resistance gene Pb1 encodes an atypical CC-NBS-LRR protein and was generated by acquiring a promoter through local genome duplication
    Hayashi, Nagao
    Inoue, Haruhiko
    Kato, Takahiro
    Funao, Taketo
    Shirota, Masaki
    Shimizu, Takehiko
    Kanamori, Hiroyuki
    Yamane, Hiroko
    Hayano-Saito, Yuriko
    Matsumoto, Takashi
    Yano, Masahiro
    Takatsuji, Hiroshi
    [J]. PLANT JOURNAL, 2010, 64 (03) : 498 - 510