Recent developments in plant-downy mildew interactions

被引:13
作者
Tor, Mahmut [1 ]
Wood, Tom [2 ]
Webb, Anne [2 ]
Gol, Deniz [1 ]
McDowell, John M. [3 ]
机构
[1] Univ Worcester, Sch Sci & Environm, Dept Biol, Worcester WR2 6AJ, England
[2] NIAB, Cambridge CB3 0LE, England
[3] Virginia Tech, Sch Plant & Environm Sci, Blacksburg, VA 24061 USA
基金
英国生物技术与生命科学研究理事会; 美国食品与农业研究所;
关键词
Oomycetes; Obligate pathogens; Susceptibility genes; Effectors; SRNA; HIGS; SIGS; CAUSAL AGENT; HYALOPERONOSPORA-ARABIDOPSIDIS; PLASMOPARA-VITICOLA; BREMIA-LACTUCAE; RESISTANCE; SUSCEPTIBILITY; HOST; VIRULENCE; TEMPERATURE; POPULATIONS;
D O I
10.1016/j.semcdb.2023.01.010
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Downy mildews are obligate oomycete pathogens that attack a wide range of plants and can cause significant economic impacts on commercial crops and ornamental plants. Traditionally, downy mildew disease control relied on an integrated strategies, that incorporate cultural practices, deployment of resistant cultivars, crop rotation, application of contact and systemic pesticides, and biopesticides. Recent advances in genomics provided data that significantly advanced understanding of downy mildew evolution, taxonomy and classification. In addition, downy mildew genomics also revealed that these obligate oomycetes have reduced numbers of viru-lence factor genes in comparison to hemibiotrophic and necrotrophic oomycetes. However, downy mildews do deploy significant arrays of virulence proteins, including so-called RXLR proteins that promote virulence or are recognized as avirulence factors. Pathogenomics are being applied to downy mildew population studies to determine the genetic diversity within the downy mildew populations and manage disease by selection of appropriate varieties and management strategies. Genome editing technologies have been used to manipulate host disease susceptibility genes in different plants including grapevine and sweet basil and thereby provide new soucres of resistance genes against downy mildews. Previously, it has proved difficult to transform and manipulate downy mildews because of their obligate lifestyle. However, recent exploitation of RNA interference machinery through Host-Induced Gene Silencing (HIGS) and Spray-Induced Gene Silencing (SIGS) indicate that functional genomics in downy mildews is now possible. Altogether, these breakthrough technologies and attendant fundamental understanding will advance our ability to mitigate downy mildew diseases.
引用
收藏
页码:42 / 50
页数:9
相关论文
共 113 条
[1]  
Agrios G. N., 2005, Plant pathology, V5th ed
[2]   Recent Progress in RXLR Effector Research [J].
Anderson, Ryan G. ;
Deb, Devdutta ;
Fedkenheuer, Kevin ;
McDowell, John M. .
MOLECULAR PLANT-MICROBE INTERACTIONS, 2015, 28 (10) :1063-1072
[3]   Molecular Cloning of ATR5Emoy2 from Hyaloperonospora arabidopsidis, an Avirulence Determinant That Triggers RPP5-Mediated Defense in Arabidopsis [J].
Bailey, Kate ;
Cevik, Volkan ;
Holton, Nicholas ;
Byrne-Richardson, Jane ;
Sohn, Kee Hoon ;
Coates, Mary ;
Woods-Toer, Alison ;
Aksoy, H. Murat ;
Hughes, Linda ;
Baxter, Laura ;
Jones, Jonathan D. G. ;
Beynon, Jim ;
Holub, Eric B. ;
Toer, Mahmut .
MOLECULAR PLANT-MICROBE INTERACTIONS, 2011, 24 (07) :827-838
[4]   Signatures of Adaptation to Obligate Biotrophy in the Hyaloperonospora arabidopsidis Genome [J].
Baxter, Laura ;
Tripathy, Sucheta ;
Ishaque, Naveed ;
Boot, Nico ;
Cabral, Adriana ;
Kemen, Eric ;
Thines, Marco ;
Ah-Fong, Audrey ;
Anderson, Ryan ;
Badejoko, Wole ;
Bittner-Eddy, Peter ;
Boore, Jeffrey L. ;
Chibucos, Marcus C. ;
Coates, Mary ;
Dehal, Paramvir ;
Delehaunty, Kim ;
Dong, Suomeng ;
Downton, Polly ;
Dumas, Bernard ;
Fabro, Georgina ;
Fronick, Catrina ;
Fuerstenberg, Susan I. ;
Fulton, Lucinda ;
Gaulin, Elodie ;
Govers, Francine ;
Hughes, Linda ;
Humphray, Sean ;
Jiang, Rays H. Y. ;
Judelson, Howard ;
Kamoun, Sophien ;
Kyung, Kim ;
Meijer, Harold ;
Minx, Patrick ;
Morris, Paul ;
Nelson, Joanne ;
Phuntumart, Vipa ;
Qutob, Dinah ;
Rehmany, Anne ;
Rougon-Cardoso, Alejandra ;
Ryden, Peter ;
Torto-Alalibo, Trudy ;
Studholme, David ;
Wang, Yuanchao ;
Win, Joe ;
Wood, Jo ;
Clifton, Sandra W. ;
Rogers, Jane ;
Van den Ackerveken, Guido ;
Jones, Jonathan D. G. ;
McDowell, John M. .
SCIENCE, 2010, 330 (6010) :1549-1551
[5]   Application of Target Enrichment Sequencing for Population Genetic Analyses of the Obligate Plant Pathogens Pseudoperonospora cubensis and P. humuli in Michigan [J].
Bello, Julian C. ;
Hausbeck, Mary K. ;
Sakalidis, Monique L. .
MOLECULAR PLANT-MICROBE INTERACTIONS, 2021, 34 (10) :1103-1118
[6]   Transfer of Downy Mildew Resistance from Wild Basil (Ocimum americanum) to Sweet Basil (O. basilicum) [J].
Ben-Naim, Yariv ;
Falach, Lidan ;
Cohen, Yigal .
PHYTOPATHOLOGY, 2018, 108 (01) :114-123
[7]   Analysis of QTL DM4.1 for Downy Mildew Resistance in Cucumber Reveals Multiple subQTL: A Novel RLK as Candidate Gene for the Most Important subQTL [J].
Berg, Jeroen A. ;
Hermans, Freddy W. K. ;
Beenders, Frank ;
Lou, Lina ;
Vriezen, Wim H. ;
Visser, Richard G. F. ;
Bai, Yuling ;
Schouten, Henk J. .
FRONTIERS IN PLANT SCIENCE, 2020, 11
[8]   High resolution mapping and candidate gene identification of downy mildew race 16 resistance in spinach [J].
Bhattarai, Gehendra ;
Yang, Wei ;
Shi, Ainong ;
Feng, Chunda ;
Dhillon, Braham ;
Correll, James C. ;
Mou, Beiquan .
BMC GENOMICS, 2021, 22 (01)
[9]  
Biddle AJ, 2003, BCPC INTERNATIONAL CONGRESS CROP SCIENCE & TECHNOLOGY 2003, VOL 1 AND 2, CONGRESS PROCEEDINGS, P947
[10]   Small RNA-based plant protection against diseases [J].
Bilir, Ozlem ;
Gol, Deniz ;
Hong, Yiguo ;
McDowell, John M. ;
Tor, Mahmut .
FRONTIERS IN PLANT SCIENCE, 2022, 13