Recent insights into R gene evolution

被引:132
作者
Mcdowell, John M. [1 ]
Simon, Stacey A.
机构
[1] Virginia Polytech Inst & State Univ, Dept Plant Pathol Physiol & Weed Sci, Blacksburg, VA 24061 USA
[2] Virginia Polytech Inst & State Univ, Fralin Biotechnol Ctr, Blacksburg, VA 24061 USA
关键词
D O I
10.1111/j.1364-3703.2006.00342.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Plants are under strong evolutionary pressure to maintain surveillance against pathogens. Resistance (R) gene-dependent recognition of pathogen avirulence (Avr) determinants plays a major role in plant defence. Here we highlight recent insights into the molecular mechanisms and selective forces that drive the evolution of NB-LRR (nucleotide binding-leucine-rich repeat) resistance genes. New implications for models of R gene evolution have been raised by demonstrations that R proteins can detect cognate Avr proteins indirectly by 'guarding' virulence targets, and by evidence that R protein signalling is regulated by intramolecular interactions between different R functional domains. Comparative genomic surveys of NB-LRR diversity in different species have revealed ancient NB-LRR lineages that are unequally represented among plant taxa, consistent with a Birth and Death Model of evolution. The physical distribution of NB-LRRs in plant genomes indicates that tandem and segmental duplication are important factors in R gene proliferation. The majority of R genes reside in clusters, and the frequency of recombination between clustered genes can vary strikingly, even within a single cluster. Biotic and abiotic factors have been shown to increase the frequency of recombination in reporter transgene-based assays, suggesting that external stressors can affect genome stability. Fitness penalties have been associated with some R genes, and population studies have provided evidence for maintenance of ancient R allelic diversity by balancing selection. The available data suggest that different R genes can follow strikingly distinct evolutionary trajectories, indicating that it will be difficult to formulate universally applicable models of R gene evolution.
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页码:437 / 448
页数:12
相关论文
共 91 条
[1]   Strategies used by bacterial pathogens to suppress plant defenses [J].
Abramovitch, RB ;
Martin, GB .
CURRENT OPINION IN PLANT BIOLOGY, 2004, 7 (04) :356-364
[2]   A novel gene family in moss (Physcomitrella patens) shows sequence homology and a phylogenetic relationship with the TIR-NBS class of plant disease resistance genes [J].
Akita, M ;
Valkonen, JPT .
JOURNAL OF MOLECULAR EVOLUTION, 2002, 55 (05) :595-605
[3]   Host-parasite coevolutionary conflict between Arabidopsis and downy mildew [J].
Allen, RL ;
Bittner-Eddy, PD ;
Grenvitte-Briggs, LJ ;
Meitz, JC ;
Rehmany, AP ;
Rose, LE ;
Beynon, JL .
SCIENCE, 2004, 306 (5703) :1957-1960
[4]   Convergent evolution of disease resistance gene specificity in two flowering plant families [J].
Ashfield, T ;
Ong, LE ;
Nobuta, K ;
Schneider, CM ;
Innes, RW .
PLANT CELL, 2004, 16 (02) :309-318
[5]   Initiation of RPS2-specified disease resistance in Arabidopsis is coupled to the AvrRpt2-directed elimination of RIN4 [J].
Axtell, MJ ;
Staskawicz, BJ .
CELL, 2003, 112 (03) :369-377
[6]   Diversity in nucleotide binding site-leucine-rich repeat genes in cereals [J].
Bai, JF ;
Pennill, LA ;
Ning, JC ;
Lee, SW ;
Ramalingam, J ;
Webb, CA ;
Zhao, BY ;
Sun, Q ;
Nelson, JC ;
Leach, JE ;
Hulbert, SH .
GENOME RESEARCH, 2002, 12 (12) :1871-1884
[7]  
Baumgarten A, 2003, GENETICS, V165, P309
[8]   Plant disease resistance protein signaling: NBS-LRR proteins and their partners [J].
Belkhadir, Y ;
Subramaniam, R ;
Dangl, JL .
CURRENT OPINION IN PLANT BIOLOGY, 2004, 7 (04) :391-399
[9]   Evolutionary dynamics of plant R-genes [J].
Bergelson, J ;
Kreitman, M ;
Stahl, EA ;
Tian, DC .
SCIENCE, 2001, 292 (5525) :2281-2285
[10]   Three genes of the arabidopsis RPP1 complex resistance locus recognize distinct Peronospora parasitica avirulence determinants [J].
Botella, MA ;
Parker, JE ;
Frost, LN ;
Bittner-Eddy, PD ;
Beynon, JL ;
Daniels, MJ ;
Holub, EB ;
Jones, JDG .
PLANT CELL, 1998, 10 (11) :1847-1860