Mapping quantitative trait loci conferring resistance to Marssonina leaf spot disease in Populus deltoides

被引:3
|
作者
Jiang, Hairong [1 ]
Wan, Zhibing [1 ]
Liu, Min [1 ]
Hou, Jing [1 ]
Yin, Tongming [1 ]
机构
[1] Nanjing Forestry Univ, Coll Forestry, Southern Modern Forestry Collaborat Innovat Ctr, Key Lab Poplar Cultivar Innovat & Germplasm Impro, 159 Longpan Rd, Nanjing 210037, Jiangsu, Peoples R China
来源
TREES-STRUCTURE AND FUNCTION | 2019年 / 33卷 / 03期
基金
中国国家自然科学基金;
关键词
Marssonina brunnea; Genetic map; Sequence dissection; Disease resistance gene; GENETIC-LINKAGE MAPS; MELAMPSORA-LARICI-POPULINA; ABSCISIC-ACID; SEGREGATION DISTORTION; INBREEDING DEPRESSION; POPULATION-SIZE; GENOME; REVEALS; QTL; EXPRESSION;
D O I
10.1007/s00468-018-01809-y
中图分类号
S7 [林业];
学科分类号
0829 ; 0907 ;
摘要
Key messageTwo large-effect QTLs and 14 candidate genes conferring resistance to Marssonina leaf spot disease were identified in an F(1)Populus deltoides pedigree, which provided valuable information for cloning the particular underlying genes in future.AbstractMarssonina leaf spot disease (MLSD), which is caused by Marssonina brunnea, is a devastating threat to poplar plantations. To map quantitative trait loci (QTLs) underlying resistance to MLSD, an F1P. deltoides pedigree has been established and genetic maps were constructed for the mapping parents according to the two-way pseudo-testcross mapping strategy. The female map contained 913 markers spanning a total genetic distance of 3132cM, with linkage groups (LGs) corresponding to the 19 haploid chromosomes in poplar, whereas the paternal map contained 252 markers distributed on 22 LGs and covered a genetic length of 1809cM. The established maps were further aligned to the poplar consensus genetic map based on the integrated SSR markers. The resistance to MLSD was recorded as a complex binary trait based on the black spot symptom on leaves. Analyses of QTLs revealed two large-effect QTLs in LGs VI and XVI, namely qMLSD-VI-1 and qMLSD-XVI-2, which explained 50.3% and 34.5% of the total phenotypic variance, respectively. A significant interaction between these two QTLs was detected based on a two-wayANOVA. In this mapping pedigree, the female parent contributed all of the QTL alleles conferring resistance to M. brunnea. Genome sequences in the target regions were obtained by aligning the QTL intervals to the poplar genome sequence with the mapped SSR markers. The importance and utility of the 14 candidate genes associated with disease resistance identified in the QTL intervals should be more thoroughly characterized in future studies.
引用
收藏
页码:697 / 706
页数:10
相关论文
共 50 条
  • [21] Mapping QTL conferring resistance in maize to gray leaf spot disease caused by Cercospora zeina
    Berger, Dave K.
    Carstens, Maryke
    Korsman, Jeanne N.
    Middleton, Felix
    Kloppers, Frederik J.
    Tongoona, Pangirayi
    Myburg, Alexander A.
    BMC GENETICS, 2014, 15
  • [22] Identification of quantitative trait loci for sorghum leaf blight resistance
    Lipps, Sarah
    Rooney, William L.
    Mideros, Santiago X.
    Jamann, Tiffany M.
    CROP SCIENCE, 2022, 62 (04) : 1550 - 1558
  • [23] Mapping Quantitative Trait Loci for Powdery Mildew Resistance in Flax (Linum usitatissimum L.)
    Asgarinia, Parvaneh
    Cloutier, Sylvie
    Duguid, Scott
    Rashid, Khalid
    Mirlohi, AghaFakhr
    Banik, Mitali
    Saeidi, Ghodratollah
    CROP SCIENCE, 2013, 53 (06) : 2462 - 2472
  • [24] Mapping quantitative trait loci associated with resistance to coccidiosis and growth
    Zhu, JJ
    Lillehoj, HS
    Allen, PC
    Van Tassell, CP
    Sonstegard, TS
    Cheng, HH
    Pollock, D
    Sadjadi, M
    Min, W
    Emara, MG
    POULTRY SCIENCE, 2003, 82 (01) : 9 - 16
  • [25] Identification and mapping of leaf, stem and stripe rust resistance quantitative trait loci and their interactions in durum wheat
    Singh, A.
    Pandey, M. P.
    Singh, A. K.
    Knox, R. E.
    Ammar, K.
    Clarke, J. M.
    Clarke, F. R.
    Singh, R. P.
    Pozniak, C. J.
    DePauw, R. M.
    McCallum, B. D.
    Cuthbert, R. D.
    Randhawa, H. S.
    Fetch, T. G., Jr.
    MOLECULAR BREEDING, 2013, 31 (02) : 405 - 418
  • [26] Detection of quantitative trait loci influencing growth trajectories of adventitious roots in Populus using functional mapping
    Zhang, Bo
    Tong, Chunfa
    Yin, Tongming
    Zhang, Xinye
    Zhuge, Qiang
    Huang, Minren
    Wang, Mingxiu
    Wu, Rongling
    TREE GENETICS & GENOMES, 2009, 5 (03) : 539 - 552
  • [27] Identification and mapping of leaf, stem and stripe rust resistance quantitative trait loci and their interactions in durum wheat
    A. Singh
    M. P. Pandey
    A. K. Singh
    R. E. Knox
    K. Ammar
    J. M. Clarke
    F. R. Clarke
    R. P. Singh
    C. J. Pozniak
    R. M. DePauw
    B. D. McCallum
    R. D. Cuthbert
    H. S. Randhawa
    T. G. Fetch
    Molecular Breeding, 2013, 31 : 405 - 418
  • [28] Mapping of quantitative trait loci for resistance to turcicum leaf blight in maize (Zea mays L.)
    Jakhar, Dan Singh
    Singh, Rajesh
    Devesh, Pavan
    Kumar, Saket
    Singh, Abhishek
    Srivastava, Ram Prakash
    EMIRATES JOURNAL OF FOOD AND AGRICULTURE, 2022, 34 (04): : 260 - 267
  • [29] Mapping of quantitative trait loci for leaf rust resistance in the wheat population 'Xinmai 26/Zhoumai 22'
    Hou, Weixiu
    Lu, Qisen
    Ma, Lin
    Sun, Xiaonan
    Wang, Liyan
    Nie, Jingyun
    Guo, Peng
    Liu, Ti
    Li, Zaifeng
    Sun, Congwei
    Ren, Yan
    Wang, Xiaodong
    Yang, Jian
    Chen, Feng
    JOURNAL OF EXPERIMENTAL BOTANY, 2023, 74 (10) : 3019 - 3032
  • [30] Identification of quantitative trait loci (QTLs) linked to Apple chlorotic leaf spot virus (ACLSV) resistance in apricot
    Rubio, Manuel
    Alfonso Salazar, Juan
    Dicenta, Federico
    Ruiz, David
    Martinez-Gomez, Pedro
    Jose Martinez-Garcia, Pedro
    EUPHYTICA, 2019, 215 (10)