Abstract
Plant resistance (R) gene products recognize pathogen effector molecules. Many R genes code for proteins containing nucleotide binding site (NBS) and C-terminal leucine-rich repeat (LRR) domains. NBS-LRR proteins can be divided into two groups, TIR-NBS-LRR and non-TIR-NBS-LRR, based on the structure of the N-terminal domain. Although both classes are clearly present in gymnosperms and eudicots, only non-TIR sequences have been found consistently in monocots. Since most studies in monocots have been limited to agriculturally important grasses, it is difficult to draw conclusions. The purpose of our study was to look for evidence of these sequences in additional monocot orders. Using degenerate PCR, we amplified NBS sequences from four monocot species (C. blanda, D. marginata, S. trifasciata, and Spathiphyllum sp.), a gymnosperm (C. revoluta) and a eudicot (C. canephora). We successfully amplified TIR-NBS-LRR sequences from dicot and gymnosperm DNA, but not from monocot DNA. Using databases, we obtained NBS sequences from additional monocots, magnoliids and basal angiosperms. TIR-type sequences were not present in monocot or magnoliid sequences, but were present in the basal angiosperms. Phylogenetic analysis supported a single TIR clade and multiple non-TIR clades. We were unable to find monocot TIR-NBS-LRR sequences by PCR amplification or database searches. In contrast to previous studies, our results represent five monocot orders (Poales, Zingiberales, Arecales, Asparagales, and Alismatales). Our results establish the presence of TIR-NBS-LRR sequences in basal angiosperms and suggest that although these sequences were present in early land plants, they have been reduced significantly in monocots and magnoliids.
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Tarr D Ellen K
Department of Ecology and Evolutionary Biology, University of Kansas 1200 Sunnyside Avenue, Lawrence, Kansas, USA.
[email protected]
Alexander Helen M
References (25)
25 references, click to expand
-
Diversity in nucleotide binding site-leucine-rich repeat genes in cereals.
Genome Res. 2002 Dec;12(12):1871-84
PMID: 12466291
-
Analysis of non-TIR NBS-LRR resistance gene analogs in Musa acuminata Colla: isolation, RFLP marker development, and physical mapping.
BMC Plant Biol. 2008 Jan 30;8:15
PMID: 18234103
-
Divergent evolution of plant NBS-LRR resistance gene homologues in dicot and cereal genomes.
J Mol Evol. 2000 Mar;50(3):203-13
PMID: 10754062
-
Isolation, genetic variation and expression of TIR-NBS-LRR resistance gene analogs from western white pine ( Pinus monticola Dougl. ex. D. Don.).
Mol Genet Genomics. 2003 Dec;270(5):432-41
PMID: 14586641
-
Genomes, diversity and resistance gene analogues in Musa species.
Cytogenet Genome Res. 2008;121(1):59-66
PMID: 18544928
-
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 Mol Evol. 2002 Nov;55(5):595-605
PMID: 12399933
-
The plant immune system.
Nature. 2006 Nov 16;444(7117):323-9
PMID: 17108957
-
Isolation, characterization and expression studies of resistance gene candidates (RGCs) from Zingiber spp.
Theor Appl Genet. 2007 Dec;116(1):123-34
PMID: 17928987
-
Plant pathogens and integrated defence responses to infection.
Nature. 2001 Jun 14;411(6839):826-33
PMID: 11459065
-
PLANT DISEASE RESISTANCE GENES.
Annu Rev Plant Physiol Plant Mol Biol. 1997 Jun;48:575-607
PMID: 15012275
-
TIR-X and TIR-NBS proteins: two new families related to disease resistance TIR-NBS-LRR proteins encoded in Arabidopsis and other plant genomes.
Plant J. 2002 Oct;32(1):77-92
PMID: 12366802
-
Plant disease resistance genes encode members of an ancient and diverse protein family within the nucleotide-binding superfamily.
Plant J. 1999 Nov;20(3):317-32
PMID: 10571892
-
Diversity, distribution, and ancient taxonomic relationships within the TIR and non-TIR NBS-LRR resistance gene subfamilies.
J Mol Evol. 2002 Apr;54(4):548-62
PMID: 11956693
-
Plant NBS-LRR proteins in pathogen sensing and host defense.
Nat Immunol. 2006 Dec;7(12):1243-9
PMID: 17110940
-
Resistance gene complexes: evolution and utilization.
Annu Rev Phytopathol. 2001;39:285-312
PMID: 11701867
-
GenBank.
Nucleic Acids Res. 2007 Jan;35(Database issue):D21-5
PMID: 17202161
-
Interaction between domains of a plant NBS-LRR protein in disease resistance-related cell death.
EMBO J. 2002 Sep 2;21(17):4511-9
PMID: 12198153
-
Identification and characterization of nucleotide-binding site-leucine-rich repeat genes in the model plant Medicago truncatula.
Plant Physiol. 2008 Jan;146(1):5-21
PMID: 17981990
-
Origin, diversity and evolution of NBS-type disease-resistance gene homologues in coffee trees (Coffea L.).
Mol Genet Genomics. 2001 Jun;265(4):654-62
PMID: 11459185
-
Pfam: clans, web tools and services.
Nucleic Acids Res. 2006 Jan 1;34(Database issue):D247-51
PMID: 16381856
-
Cloning of resistance gene analogs located on the alien chromosome in an addition line of wheat-Thinopyrum intermedium.
Theor Appl Genet. 2005 Sep;111(5):923-31
PMID: 16044269
-
The NB-ARC domain: a novel signalling motif shared by plant resistance gene products and regulators of cell death in animals.
Curr Biol. 1998 Mar 26;8(7):R226-7
PMID: 9545207
-
Revealing constitutively expressed resistance genes in Agrostis species using PCR-based motif-directed RNA fingerprinting.
Genet Res. 2006 Dec;88(3):165-75
PMID: 17371611
-
Different requirements for EDS1 and NDR1 by disease resistance genes define at least two R gene-mediated signaling pathways in Arabidopsis.
Proc Natl Acad Sci U S A. 1998 Aug 18;95(17):10306-11
PMID: 9707643
-
Host-microbe interactions: shaping the evolution of the plant immune response.
Cell. 2006 Feb 24;124(4):803-14
PMID: 16497589