Effect of Leptosphaeria maculans Infection on Promoter DNA Methylation of Defence Genes in Brassica napus

被引:12
作者
Tirnaz, Soodeh [1 ]
Merce, Clementine [1 ]
Bayer, Philipp E. [1 ]
Severn-Ellis, Anita A. [1 ]
Edwards, David [1 ]
Batley, Jacqueline [1 ]
机构
[1] Univ Western Australia, Sch Biol Sci, Perth, WA 6009, Australia
来源
AGRONOMY-BASEL | 2020年 / 10卷 / 08期
关键词
Brassicaceae; Brassica napus; blackleg; epigenetics; resistance gene; RESISTANCE GENE; EPIGENETIC INHERITANCE; BLACKLEG DISEASE; REGIONS; IDENTIFICATION; DEMETHYLATION; DYNAMICS; ANALOGS;
D O I
10.3390/agronomy10081072
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Canola (Brassica napus) is an important crop species grown worldwide for its seeds, which are crushed for edible oil. Canola production is threatened by blackleg disease, caused by the fungal pathogenLeptosphaeria maculans,which can lead up to 100% yield loss. A plant's disease resistance response depends highly on the regulation of the expression of defence genes. DNA methylation, an epigenetic mark, is one of the most important regulatory mechanisms in a plant's defence system. Here, the DNA methylation pattern of promoters of defence genes has been investigated between leaves from control and infected plants withL. maculansof resistant and susceptible cultivars ofB. napus. In total, over 12,000 promoters were found to be differentially methylated between leaves from control and infected plants in the two cultivars, of which 225 promoters were related to defence genes and differentially methylated between the resistant and susceptible cultivars. The majority of defence gene promoters were hypo- or hyper-methylated in the first and second true leaves, but not in the third and fourth leaves. The outcomes will assist in developing an insight into genome-wide DNA methylation patterns in canola cultivars, and ultimately help breeders to optimise the breeding programmes for enhancing resistance against blackleg disease.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Cytological responses in the hypersensitive reaction in cotyledon and stem tissues of Brassica napus after infection by Leptosphaeria maculans
    Li, Hua
    Sivasithamparam, Krishnapillai
    Barbetti, Martin J.
    Wylie, Stephen J.
    Kuo, John
    JOURNAL OF GENERAL PLANT PATHOLOGY, 2008, 74 (02) : 120 - 124
  • [22] Breakdown of Rlm3 resistance in the Brassica napus-Leptosphaeria maculans pathosystem in western Canada
    Zhang, Xuehua
    Peng, Gary
    Kutcher, H. Randy
    Balesdent, Marie-Helene
    Delourme, Regine
    Fernando, W. G. Dilantha
    EUROPEAN JOURNAL OF PLANT PATHOLOGY, 2016, 145 (03) : 659 - 674
  • [23] Identifying resistance genes to Leptosphaeria maculans in Australian Brassica napus cultivars based on reactions to isolates with known avirulence genotypes
    Marcroft, Steve J.
    Elliott, Vicki L.
    Cozijnsen, Anton J.
    Salisbury, Phillip A.
    Howlett, Barbara J.
    Van de Wouw, Angela P.
    CROP & PASTURE SCIENCE, 2012, 63 (04) : 338 - 350
  • [24] Major gene and polygenic resistance to Leptosphaeria maculans in oilseed rape (Brassica napus)
    Delourme, R
    Chèvre, AM
    Brun, H
    Rouxel, T
    Balesdent, MH
    Dias, JS
    Salisbury, P
    Renard, M
    Rimmer, SR
    EUROPEAN JOURNAL OF PLANT PATHOLOGY, 2006, 114 (01) : 41 - 52
  • [25] Influence of chemicals on inoculum production by Leptosphaeria maculans on canola (Brassica napus L.) residues
    Khangura, Ravjit
    JOURNAL OF FOOD AGRICULTURE & ENVIRONMENT, 2004, 2 (01): : 188 - 192
  • [26] "Late" effectors from Leptosphaeria maculans as tools for identifying novel sources of resistance in Brassica napus
    Jiquel, Audren
    Gay, Elise J.
    Mas, Justine
    George, Pierre
    Wagner, Armand
    Fior, Adrien
    Faure, Sebastien
    Balesdent, Marie-Helene
    Rouxel, Thierry
    PLANT DIRECT, 2022, 6 (08)
  • [27] Transcriptome analysis of the Brassica napus-Leptosphaeria maculans pathosystem identifies receptor, signaling and structural genes underlying plant resistance
    Becker, Michael G.
    Zhang, Xuehua
    Walker, Philip L.
    Wan, Joey C.
    Millar, Jenna L.
    Khan, Deirdre
    Granger, Matthew J.
    Cavers, Jacob D.
    Chan, Ainsley C.
    Fernando, Dilantha W. G.
    Belmonte, Mark F.
    PLANT JOURNAL, 2017, 90 (03) : 573 - 586
  • [28] Major Gene and Polygenic Resistance to Leptosphaeria maculans in Oilseed Rape (Brassica napus)
    R. Delourme
    A. M. Chèvre
    H. Brun
    T. Rouxel
    M. H. Balesdent
    J. S. Dias
    P. Salisbury
    M. Renard
    S. R. Rimmer
    European Journal of Plant Pathology, 2006, 114 : 41 - 52
  • [29] COMPARISON OF INOCULATION METHODS FOR SELECTION OF PLANTS RESISTANT TO LEPTOSPHAERIA-MACULANS IN BRASSICA-NAPUS
    MCNABB, WM
    VANDENBERG, CGJ
    RIMMER, SR
    CANADIAN JOURNAL OF PLANT SCIENCE, 1993, 73 (04) : 1199 - 1207
  • [30] Resistance to Leptosphaeria maculans (phoma stem canker) in Brassica napus (oilseed rape) induced by Leptosphaeria biglobosa and chemical defence activators in field and controlled environments
    Liu, S. Y.
    Liu, Z.
    Fitt, B. D. L.
    Evans, N.
    Foster, S. J.
    Huang, Y. J.
    Latunde-Dada, A. O.
    Lucas, J. A.
    PLANT PATHOLOGY, 2006, 55 (03) : 401 - 412