Crop immunity against viruses: outcomes and future challenges

被引:259
作者
Nicaise, Valerie [1 ]
机构
[1] Univ Bordeaux, UMR 1332, Virol Lab, Inst Natl Rech Agron, F-33882 Villenave Dornon, France
关键词
plant virus; R gene; recessive resistance; gene silencing; systemic acquired resistance; PAMP-triggered immunity; crop improvement; TOBACCO-MOSAIC-VIRUS; SYSTEMIC ACQUIRED-RESISTANCE; PLUM-POX-VIRUS; LONG-DISTANCE MOVEMENT; DICER-LIKE PROTEINS; DEPENDENT RNA-POLYMERASES; PAMP-TRIGGERED IMMUNITY; PAPAYA-RINGSPOT-VIRUS; CITRUS-TRISTEZA-VIRUS; ACIBENZOLAR-S-METHYL;
D O I
10.3389/fpls.2014.00660
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Viruses cause epidemics on all major cultures of agronomic importance, representing a serious threat to global food security. As strict intracellular pathogens, they cannot be controlled chemically and prophylactic measures consist mainly in the destruction of infected plants and excessive pesticide applications to limit the population of vector organisms. A powerful alternative frequently employed in agriculture relies on the use of crop genetic resistances, approach that depends on mechanisms governing plant virus interactions. Hence, knowledge related to the molecular bases of viral infections and crop resistances is key to face viral attacks in fields. Over the past 80 years, great advances have been made on our understanding of plant immunity against viruses. Although most of the known natural resistance genes have long been dominant R genes (encoding NBS-LRR proteins), a vast number of crop recessive resistance genes were cloned in the last decade, emphasizing another evolutive strategy to block viruses. In addition, the discovery of RNA interference pathways highlighted a very efficient antiviral system targeting the infectious agent at the nucleic acid level. Insidiously, plant viruses evolve and often acquire the ability to overcome the resistances employed by breeders. The development of efficient and durable resistances able to withstand the extreme genetic plasticity of viruses therefore represents a major challenge for the coming years. This review aims at describing some of the most devastating diseases caused by viruses on crops and summarizes current knowledge about plant virus interactions, focusing on resistance mechanisms that prevent or limit viral infection in plants. In addition, I will discuss the current outcomes of the actions employed to control viral diseases in fields and the future investigations that need to be undertaken to develop sustainable broad-spectrum crop resistances against viruses.
引用
收藏
页数:18
相关论文
共 238 条
[21]   Four plant Dicers mediate viral small RNA biogenesis and DNA virus induced silencing [J].
Blevins, Todd ;
Rajeswaran, Rajendran ;
Shivaprasad, Padubidri V. ;
Beknazariants, Daria ;
Si-Ammour, Azeddine ;
Park, Hyun-Sook ;
Vazquez, Franck ;
Robertson, Dominique ;
Meins, Frederick, Jr. ;
Hohn, Thomas ;
Pooggin, Mikhail M. .
NUCLEIC ACIDS RESEARCH, 2006, 34 (21) :6233-6246
[22]   Massive production of small RNAs from a non-coding region of Cauliflower mosaic virus in plant defense and viral counter-defense [J].
Blevins, Todd ;
Rajeswaran, Rajendran ;
Aregger, Michael ;
Borah, Basanta K. ;
Schepetilnikov, Mikhail ;
Baerlocher, Loic ;
Farinelli, Laurent ;
Meins, Frederick, Jr. ;
Hohn, Thomas ;
Pooggin, Mikhail M. .
NUCLEIC ACIDS RESEARCH, 2011, 39 (12) :5003-5014
[23]   The Arabidopsis miR472-RDR6 Silencing Pathway Modulates PAMP-and Effector-Triggered Immunity through the Post-transcriptional Control of Disease Resistance Genes [J].
Boccara, Martine ;
Sarazin, Alexis ;
Thiebeauld, Odon ;
Jay, Florence ;
Voinnet, Olivier ;
Navarro, Lionel ;
Colot, Vincent .
PLOS PATHOGENS, 2014, 10 (01)
[24]   A Renaissance of Elicitors: Perception of Microbe-Associated Molecular Patterns and Danger Signals by Pattern-Recognition Receptors [J].
Boller, Thomas ;
Felix, Georg .
ANNUAL REVIEW OF PLANT BIOLOGY, 2009, 60 :379-406
[25]   The Diversity, Biogenesis, and Activities of Endogenous Silencing Small RNAs in Arabidopsis [J].
Bologna, Nicolas G. ;
Voinnet, Olivier .
ANNUAL REVIEW OF PLANT BIOLOGY, VOL 65, 2014, 65 :473-503
[26]   Methods in virus diagnostics: From ELISA to next generation sequencing [J].
Boonham, Neil ;
Kreuze, Jan ;
Winter, Stephan ;
van der Vlugt, Rene ;
Bergervoet, Jan ;
Tomlinson, Jenny ;
Mumford, Rick .
VIRUS RESEARCH, 2014, 186 :20-31
[27]   Structural and functional analysis of SGT1 reveals that its interaction with HSP90 is required for the accumulation of Rx, an R protein involved in plant immunity [J].
Boter, Marta ;
Amigues, Beatrice ;
Peart, Jack ;
Breuer, Christian ;
Kadota, Yasuhiro ;
Casais, Catarina ;
Moore, Geoffrey ;
Kleanthous, Colin ;
Ochsenbein, Francoise ;
Shirasu, Ken ;
Guerois, Raphael .
PLANT CELL, 2007, 19 (11) :3791-3804
[28]   Status and Prospects of Plant Virus Control Through Interference with Vector Transmission [J].
Bragard, C. ;
Caciagli, P. ;
Lemaire, O. ;
Lopez-Moya, J. J. ;
MacFarlane, S. ;
Peters, D. ;
Susi, P. ;
Torrance, L. .
ANNUAL REVIEW OF PHYTOPATHOLOGY, VOL 51, 2013, 51 :177-201
[29]   Field testing, gene flow assessment and pre-commercial studies on transgenic Solanum tuberosum spp. tuberosum (cv. Spunta) selected for PVY resistance in Argentina [J].
Bravo-Almonacid, Fernando ;
Rudoy, Valeria ;
Welin, Bjorn ;
Eugenia Segretin, Maria ;
Cecilia Bedogni, Maria ;
Stolowicz, Fabiana ;
Criscuolo, Marcelo ;
Foti, Marcelo ;
Gomez, Maximiliano ;
Lopez, Mariana ;
Serino, German ;
Cabral, Silvia ;
Dos Santos, Cristina ;
Huarte, Marcelo ;
Mentaberry, Alejandro .
TRANSGENIC RESEARCH, 2012, 21 (05) :967-982
[30]   Viral suppressors of RNA silencing [J].
Burgyan, Jozsef ;
Havelda, Zoltan .
TRENDS IN PLANT SCIENCE, 2011, 16 (05) :265-272