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1.
Nat Plants ; 7(9): 1220-1228, 2021 09.
Article in English | MEDLINE | ID: mdl-34294906

ABSTRACT

Stem rust caused by the fungus Puccinia graminis f. sp. tritici (Pgt) is a devastating disease of the global staple crop wheat. Although this disease was largely controlled in the latter half of the twentieth century, new virulent strains of Pgt, such as Ug99, have recently evolved1,2. These strains have caused notable losses worldwide and their continued spread threatens global wheat production. Breeding for disease resistance provides the most cost-effective control of wheat rust diseases3. A number of rust resistance genes have been characterized in wheat and most encode immune receptors of the nucleotide-binding leucine-rich repeat (NLR) class4, which recognize pathogen effector proteins known as avirulence (Avr) proteins5. However, only two Avr genes have been identified in Pgt so far, AvrSr35 and AvrSr50 (refs. 6,7), and none in other cereal rusts8,9. The Sr27 resistance gene was first identified in a wheat line carrying an introgression of the 3R chromosome from Imperial rye10. Although not deployed widely in wheat, Sr27 is widespread in the artificial crop species Triticosecale (triticale), which is a wheat-rye hybrid and is a host for Pgt11,12. Sr27 is effective against Ug99 (ref. 13) and other recent Pgt strains14,15. Here, we identify both the Sr27 gene in wheat and the corresponding AvrSr27 gene in Pgt and show that virulence to Sr27 can arise experimentally and in the field through deletion mutations, copy number variation and expression level polymorphisms at the AvrSr27 locus.


Subject(s)
Disease Resistance/genetics , Plant Diseases/microbiology , Puccinia/genetics , Puccinia/isolation & purification , Puccinia/pathogenicity , Triticum/genetics , Virulence/genetics , Australia , Gene Expression Regulation, Fungal , Gene Expression Regulation, Plant , Genes, Fungal , Genes, Plant , Genetic Variation , Genomics , Genotype , Triticum/microbiology
2.
Mol Plant Pathol ; 20(2): 211-222, 2019 02.
Article in English | MEDLINE | ID: mdl-30242946

ABSTRACT

During infection, plant pathogens secrete effector proteins to facilitate colonization. In comparison with our knowledge of bacterial effectors, the current understanding of how fungal effectors function is limited. In this study, we show that the effector AvrL567-A from the flax rust fungus Melampsora lini interacts with a flax cytosolic cytokinin oxidase, LuCKX1.1, using both yeast two-hybrid and in planta bimolecular fluorescence assays. Purified LuCKX1.1 protein shows catalytic activity against both N6-(Δ2-isopentenyl)-adenine (2iP) and trans-zeatin (tZ) substrates. Incubation of LuCKX1.1 with AvrL567-A results in increased catalytic activity against both substrates. The crystal structure of LuCKX1.1 and docking studies with AvrL567-A indicate that the AvrL567 binding site involves a flexible surface-exposed region that surrounds the cytokinin substrate access site, which may explain its effect in modulating LuCKX1.1 activity. Expression of AvrL567-A in transgenic flax plants gave rise to an epinastic leaf phenotype consistent with hormonal effects, although no difference in overall cytokinin levels was observed. We propose that, during infection, plant pathogens may differentially modify the levels of extracellular and intracellular cytokinins.


Subject(s)
Basidiomycota/metabolism , Basidiomycota/pathogenicity , Flax/metabolism , Flax/microbiology , Fungal Proteins/metabolism , Oxidoreductases/metabolism , Plant Diseases/microbiology , Plant Proteins/metabolism , Basidiomycota/genetics , Fungal Proteins/genetics , Oxidoreductases/genetics , Plant Proteins/genetics , Protein Binding , Two-Hybrid System Techniques
3.
Mol Plant Pathol ; 19(5): 1196-1209, 2018 05.
Article in English | MEDLINE | ID: mdl-28817232

ABSTRACT

The effector protein AvrP is secreted by the flax rust fungal pathogen (Melampsora lini) and recognized specifically by the flax (Linum usitatissimum) P disease resistance protein, leading to effector-triggered immunity. To investigate the biological function of this effector and the mechanisms of specific recognition by the P resistance protein, we determined the crystal structure of AvrP. The structure reveals an elongated zinc-finger-like structure with a novel interleaved zinc-binding topology. The residues responsible for zinc binding are conserved in AvrP effector variants and mutations of these motifs result in a loss of P-mediated recognition. The first zinc-coordinating region of the structure displays a positively charged surface and shows some limited similarities to nucleic acid-binding and chromatin-associated proteins. We show that the majority of the AvrP protein accumulates in the plant nucleus when transiently expressed in Nicotiana benthamiana cells, suggesting a nuclear pathogenic function. Polymorphic residues in AvrP and its allelic variants map to the protein surface and could be associated with differences in recognition specificity. Several point mutations of residues on the non-conserved surface patch result in a loss of recognition by P, suggesting that these residues are required for recognition.


Subject(s)
Basidiomycota/metabolism , Cell Nucleus/metabolism , Disease Resistance , Flax/microbiology , Fungal Proteins/chemistry , Plant Proteins/metabolism , Agrobacterium/metabolism , Amino Acid Motifs , Amino Acid Sequence , Conserved Sequence , Crystallography, X-Ray , Fungal Proteins/metabolism , Models, Molecular , Plant Cells/metabolism , Plant Diseases/microbiology , Protein Binding , Protein Domains , Saccharomyces cerevisiae/metabolism , Structural Homology, Protein , Nicotiana/genetics , Zinc/metabolism
4.
Science ; 358(6370): 1607-1610, 2017 12 22.
Article in English | MEDLINE | ID: mdl-29269475

ABSTRACT

Race-specific resistance genes protect the global wheat crop from stem rust disease caused by Puccinia graminis f. sp. tritici (Pgt) but are often overcome owing to evolution of new virulent races of the pathogen. To understand virulence evolution in Pgt, we identified the protein ligand (AvrSr50) recognized by the Sr50 resistance protein. A spontaneous mutant of Pgt virulent to Sr50 contained a 2.5 mega-base pair loss-of-heterozygosity event. A haustorial secreted protein from this region triggers Sr50-dependent defense responses in planta and interacts directly with the Sr50 protein. Virulence alleles of AvrSr50 have arisen through DNA insertion and sequence divergence, and our data provide molecular evidence that in addition to sexual recombination, somatic exchange can play a role in the emergence of new virulence traits in Pgt.


Subject(s)
Basidiomycota/genetics , Basidiomycota/pathogenicity , Disease Resistance , Plant Diseases/microbiology , Triticum/immunology , Triticum/microbiology , Alleles , Loss of Heterozygosity , Virulence/genetics
5.
Mol Plant Microbe Interact ; 30(3): 190-193, 2017 03.
Article in English | MEDLINE | ID: mdl-28051350

ABSTRACT

In this review, the wisdom and efficacy of studies seeking disease attenuating microbes and microbiomes only in healthy plant communities is questioned and an alternative view is posited, namely that success in biocontrol of crop diseases may also come from studies of microbiota, or at least individual species isolates, associated with diseased plants. In support of this view, I summarize the current extensive knowledge of the biology behind what is probably the most successful biocontrol of a plant disease, namely the biocontrol of crown gall of stone fruit using non-pathogenic Rhizobium rhizogenes K84, in which the biocontrol agent itself came from a diseased plant.


Subject(s)
Biological Control Agents , Microbiota/physiology , Plant Diseases/prevention & control , Plants/microbiology , Plant Tumors/microbiology
6.
BMC Genomics ; 17: 667, 2016 08 22.
Article in English | MEDLINE | ID: mdl-27550217

ABSTRACT

BACKGROUND: Rust fungi are an important group of plant pathogens that cause devastating losses in agricultural, silvicultural and natural ecosystems. Plants can be protected from rust disease by resistance genes encoding receptors that trigger a highly effective defence response upon recognition of specific pathogen avirulence proteins. Identifying avirulence genes is crucial for understanding how virulence evolves in the field. RESULTS: To facilitate avirulence gene cloning in the flax rust fungus, Melampsora lini, we constructed a high-density genetic linkage map using single nucleotide polymorphisms detected in restriction site-associated DNA sequencing (RADseq) data. The map comprises 13,412 RADseq markers in 27 linkage groups that together span 5860 cM and contain 2756 recombination bins. The marker sequences were used to anchor 68.9 % of the M. lini genome assembly onto the genetic map. The map and anchored assembly were then used to: 1) show that M. lini has a high overall meiotic recombination rate, but recombination distribution is uneven and large coldspots exist; 2) show that substantial genome rearrangements have occurred in spontaneous loss-of-avirulence mutants; and 3) identify the AvrL2 and AvrM14 avirulence genes by map-based cloning. AvrM14 is a dual-specificity avirulence gene that encodes a predicted nudix hydrolase. AvrL2 is located in the region of the M. lini genome with the lowest recombination rate and encodes a small, highly-charged proline-rich protein. CONCLUSIONS: The M. lini high-density linkage map has greatly advanced our understanding of virulence mechanisms in this pathogen by providing novel insights into genome variability and enabling identification of two new avirulence genes.


Subject(s)
Basidiomycota/genetics , Chromosome Mapping , Genome, Fungal , Genomics , Virulence/genetics , Amino Acid Sequence , Basidiomycota/pathogenicity , Computational Biology/methods , Gene Frequency , Genetic Loci , Genomics/methods , High-Throughput Nucleotide Sequencing , Loss of Heterozygosity , Mutation , Phenotype , Polymorphism, Single Nucleotide , Recombination, Genetic
7.
BMC Biol ; 14: 13, 2016 Feb 19.
Article in English | MEDLINE | ID: mdl-26896088

ABSTRACT

Plant immune receptors involved in disease resistance and crop protection are related to the animal Nod-like receptor (NLR) class, and recognise the virulence effectors of plant pathogens, whereby they arm the plant's defensive response. Although plant NLRs mainly contain three protein domains, about 10% of these receptors identified by extensive cross-plant species data base searches have now been shown to include novel and highly variable integrated domains, some of which have been shown to detect pathogen effectors by direct interaction. Sarris et al. have identified a large number of integrated domains that can be used to detect effector targets in host plant proteomes and identify unknown pathogen effectors.Please see related Research article: Comparative analysis of plant immune receptor architectures uncovers host proteins likely targeted by pathogens, http://dx.doi.org/10.1186/s12915-016-0228-7 Since the time of writing, a closely related paper has been released: Kroj T, Chanclud E, Michel-Romiti C, Grand X, Morel J-B. Integration of decoy domains derived from protein targets of pathogen effectors into plant immune receptors is widespread. New Phytol. 2016 (ahead of print).


Subject(s)
Disease Resistance , Plants , Animals , Plant Proteins/metabolism , Proteins , Virulence
8.
Plant Cell ; 28(1): 146-59, 2016 Jan.
Article in English | MEDLINE | ID: mdl-26744216

ABSTRACT

NOD-like receptors (NLRs) are central components of the plant immune system. L6 is a Toll/interleukin-1 receptor (TIR) domain-containing NLR from flax (Linum usitatissimum) conferring immunity to the flax rust fungus. Comparison of L6 to the weaker allele L7 identified two polymorphic regions in the TIR and the nucleotide binding (NB) domains that regulate both effector ligand-dependent and -independent cell death signaling as well as nucleotide binding to the receptor. This suggests that a negative functional interaction between the TIR and NB domains holds L7 in an inactive/ADP-bound state more tightly than L6, hence decreasing its capacity to adopt the active/ATP-bound state and explaining its weaker activity in planta. L6 and L7 variants with a more stable ADP-bound state failed to bind to AvrL567 in yeast two-hybrid assays, while binding was detected to the signaling active variants. This contrasts with current models predicting that effectors bind to inactive receptors to trigger activation. Based on the correlation between nucleotide binding, effector interaction, and immune signaling properties of L6/L7 variants, we propose that NLRs exist in an equilibrium between ON and OFF states and that effector binding to the ON state stabilizes this conformation, thereby shifting the equilibrium toward the active form of the receptor to trigger defense signaling.


Subject(s)
Flax/metabolism , Models, Biological , Plant Proteins/metabolism , Receptors, Cell Surface/metabolism , Adenosine Diphosphate/metabolism , Adenosine Triphosphate/metabolism , Amino Acid Sequence , Cell Death , Flax/cytology , Molecular Sequence Data , Mutation/genetics , Phenotype , Plant Proteins/chemistry , Polymorphism, Genetic , Protein Binding , Protein Structure, Tertiary , Receptors, Cell Surface/chemistry , Saccharomyces cerevisiae/metabolism , Sequence Alignment
9.
Front Plant Sci ; 5: 641, 2014.
Article in English | MEDLINE | ID: mdl-25505474

ABSTRACT

Two classes of genes are used for breeding rust resistant wheat. The first class, called R (for resistance) genes, are pathogen race specific in their action, effective at all plant growth stages and probably mostly encode immune receptors of the nucleotide binding leucine rich repeat (NB-LRR) class. The second class is called adult plant resistance genes (APR) because resistance is usually functional only in adult plants, and, in contrast to most R genes, the levels of resistance conferred by single APR genes are only partial and allow considerable disease development. Some but not all APR genes provide resistance to all isolates of a rust pathogen species and a subclass of these provides resistance to several fungal pathogen species. Initial indications are that APR genes encode a more heterogeneous range of proteins than R proteins. Two APR genes, Lr34 and Yr36, have been cloned from wheat and their products are an ABC transporter and a protein kinase, respectively. Lr34 and Sr2 have provided long lasting and widely used (durable) partial resistance and are mainly used in conjunction with other R and APR genes to obtain adequate rust resistance. We caution that some APR genes indeed include race specific, weak R genes which may be of the NB-LRR class. A research priority to better inform rust resistance breeding is to characterize further APR genes in wheat and to understand how they function and how they interact when multiple APR and R genes are stacked in a single genotype by conventional and GM breeding. An important message is do not be complacent about the general durability of all APR genes.

10.
BMC Plant Biol ; 14: 379, 2014 Dec 30.
Article in English | MEDLINE | ID: mdl-25547135

ABSTRACT

BACKGROUND: The adult plant stem rust resistance gene Sr2 was introgressed into hexaploid wheat cultivar (cv) Marquis from tetraploid emmer wheat cv Yaroslav, to generate stem rust resistant cv Hope in the 1920s. Subsequently, Sr2 has been widely deployed and has provided durable partial resistance to all known races of Puccinia graminis f. sp. tritici. This report describes the physical map of the Sr2-carrying region on the short arm of chromosome 3B of cv Hope and compares the Hope haplotype with non-Sr2 wheat cv Chinese Spring. RESULTS: Sr2 was located to a region of 867 kb on chromosome 3B in Hope, which corresponded to a region of 567 kb in Chinese Spring. The Hope Sr2 region carried 34 putative genes but only 17 were annotated in the comparable region of Chinese Spring. The two haplotypes differed by extensive DNA sequence polymorphisms between flanking markers as well as by a major insertion/deletion event including ten Germin-Like Protein (GLP) genes in Hope that were absent in Chinese Spring. Haplotype analysis of a limited number of wheat genotypes of interest showed that all wheat genotypes carrying Sr2 possessed the GLP cluster; while, of those lacking Sr2, some, including Marquis, possessed the cluster, while some lacked it. Thus, this region represents a common presence-absence polymorphism in wheat, with presence of the cluster not correlated with presence of Sr2. Comparison of Hope and Marquis GLP genes on 3BS found no polymorphisms in the coding regions of the ten genes but several SNPs in the shared promoter of one divergently transcribed GLP gene pair and a single SNP downstream of the transcribed region of a second GLP. CONCLUSION: Physical mapping and sequence comparison showed major haplotype divergence at the Sr2 locus between Hope and Chinese Spring. Candidate genes within the Sr2 region of Hope are being evaluated for the ability to confer stem rust resistance. Based on the detailed mapping and sequencing of the locus, we predict that Sr2 does not belong to the NB-LRR gene family and is not related to previously cloned, race non-specific rust resistance genes Lr34 and Yr36.


Subject(s)
Basidiomycota/physiology , Disease Resistance/genetics , Evolution, Molecular , Plant Diseases/genetics , Plant Proteins/genetics , Triticum/genetics , Triticum/microbiology , Base Sequence , Glycoproteins/genetics , Glycoproteins/metabolism , Haplotypes , Molecular Sequence Data , Phylogeny , Plant Diseases/microbiology , Plant Proteins/metabolism , Polymorphism, Genetic , Triticum/metabolism
11.
Front Plant Sci ; 5: 98, 2014.
Article in English | MEDLINE | ID: mdl-24715894

ABSTRACT

Rust fungi cause serious yield reductions on crops, including wheat, barley, soybean, coffee, and represent real threats to global food security. Of these fungi, the flax rust pathogen Melampsora lini has been developed most extensively over the past 80 years as a model to understand the molecular mechanisms that underpin pathogenesis. During infection, M. lini secretes virulence effectors to promote disease. The number of these effectors, their function and their degree of conservation across rust fungal species is unknown. To assess this, we sequenced and assembled de novo the genome of M. lini isolate CH5 into 21,130 scaffolds spanning 189 Mbp (scaffold N50 of 31 kbp). Global analysis of the DNA sequence revealed that repetitive elements, primarily retrotransposons, make up at least 45% of the genome. Using ab initio predictions, transcriptome data and homology searches, we identified 16,271 putative protein-coding genes. An analysis pipeline was then implemented to predict the effector complement of M. lini and compare it to that of the poplar rust, wheat stem rust and wheat stripe rust pathogens to identify conserved and species-specific effector candidates. Previous knowledge of four cloned M. lini avirulence effector proteins and two basidiomycete effectors was used to optimize parameters of the effector prediction pipeline. Markov clustering based on sequence similarity was performed to group effector candidates from all four rust pathogens. Clusters containing at least one member from M. lini were further analyzed and prioritized based on features including expression in isolated haustoria and infected leaf tissue and conservation across rust species. Herein, we describe 200 of 940 clusters that ranked highest on our priority list, representing 725 flax rust candidate effectors. Our findings on this important model rust species provide insight into how effectors of rust fungi are conserved across species and how they may act to promote infection on their hosts.

12.
Front Plant Sci ; 5: 759, 2014.
Article in English | MEDLINE | ID: mdl-25620970

ABSTRACT

The wheat stem rust fungus Puccinia graminis f. sp. tritici (Pgt) is one of the most destructive pathogens of wheat. In this study, a draft genome was built for a founder Australian Pgt isolate of pathotype (pt.) 21-0 (collected in 1954) by next generation DNA sequencing. A combination of reference-based assembly using the genome of the previously sequenced American Pgt isolate CDL 75-36-700-3 (p7a) and de novo assembly were performed resulting in a 92 Mbp reference genome for Pgt isolate 21-0. Approximately 13 Mbp of de novo assembled sequence in this genome is not present in the p7a reference assembly. This novel sequence is not specific to 21-0 as it is also present in three other Pgt rust isolates of independent origin. The new reference genome was subsequently used to build a pan-genome based on five Australian Pgt isolates. Transcriptomes from germinated urediniospores and haustoria were separately assembled for pt. 21-0 and comparison of gene expression profiles showed differential expression in ∼10% of the genes each in germinated spores and haustoria. A total of 1,924 secreted proteins were predicted from the 21-0 transcriptome, of which 520 were classified as haustorial secreted proteins (HSPs). Comparison of 21-0 with two presumed clonal field derivatives of this lineage (collected in 1982 and 1984) that had evolved virulence on four additional resistance genes (Sr5, Sr11, Sr27, SrSatu) identified mutations in 25 HSP effector candidates. Some of these mutations could explain their novel virulence phenotypes.

13.
Mol Plant Microbe Interact ; 27(3): 255-64, 2014 Mar.
Article in English | MEDLINE | ID: mdl-24156769

ABSTRACT

Large numbers of candidate effectors from fungal pathogens are being identified through whole-genome sequencing and in planta expression studies. Although Agrobacterium-mediated transient expression has enabled high-throughput functional analysis of effectors in dicot plants, this assay is not effective in cereal leaves. Here, we show that a nonpathogenic Pseudomonas fluorescens engineered to express the type III secretion system (T3SS) of P. syringae and the wheat pathogen Xanthomonas translucens can deliver fusion proteins containing T3SS signals from P. syringae (AvrRpm1) and X. campestris (AvrBs2) avirulence (Avr) proteins, respectively, into wheat leaf cells. A calmodulin-dependent adenylate cyclase reporter protein was delivered effectively into wheat and barley by both bacteria. Absence of any disease symptoms with P. fluorescens makes it more suitable than X. translucens for detecting a hypersensitive response (HR) induced by an effector protein with avirulence activity. We further modified the delivery system by removal of the myristoylation site from the AvrRpm1 fusion to prevent its localization to the plasma membrane which could inhibit recognition of an Avr protein. Delivery of the flax rust AvrM protein by the modified delivery system into transgenic tobacco leaves expressing the corresponding M resistance protein induced a strong HR, indicating that the system is capable of delivering a functional rust Avr protein. In a preliminary screen of effectors from the stem rust fungus Puccinia graminis f. sp. tritici, we identified one effector that induced a host genotype-specific HR in wheat. Thus, the modified AvrRpm1:effector-Pseudomonas fluorescens system is an effective tool for large-scale screening of pathogen effectors for recognition in wheat.


Subject(s)
Bacterial Proteins/metabolism , Hordeum/metabolism , Plant Diseases/microbiology , Pseudomonas fluorescens/metabolism , Triticum/metabolism , Adenylyl Cyclases/genetics , Adenylyl Cyclases/metabolism , Bacterial Proteins/genetics , Basidiomycota/pathogenicity , Calmodulin/genetics , Calmodulin/metabolism , Genetic Engineering , Hordeum/microbiology , Plant Leaves/metabolism , Plant Leaves/microbiology , Plant Stems/metabolism , Plant Stems/microbiology , Plants, Genetically Modified , Protein Transport , Pseudomonas fluorescens/genetics , Pseudomonas syringae/genetics , Recombinant Fusion Proteins , Triticum/microbiology , Virulence , Xanthomonas/genetics
14.
Article in English | MEDLINE | ID: mdl-24100555

ABSTRACT

The plant hormones cytokinins play a central role in regulating cell division and developmental events. Cytokinin oxidase regulates the levels of these plant hormones by catalyzing their irreversible oxidation, which contributes to the regulation of various morpho-physiological processes controlled by cytokinins. In this study, the crystallization and preliminary X-ray diffraction analysis of the flax cytokinin oxidase LuCKX1.1 are reported. Plate-like crystals of LuCKX1.1 were obtained using PEG 3350 as a precipitant and diffracted X-rays to 1.78 Šresolution. The protein crystals have the symmetry of space group C2 and are most likely to contain two molecules per asymmetric unit.


Subject(s)
Flax/enzymology , Oxidoreductases/chemistry , Crystallization , Crystallography, X-Ray
15.
Proc Natl Acad Sci U S A ; 110(43): 17594-9, 2013 Oct 22.
Article in English | MEDLINE | ID: mdl-24101475

ABSTRACT

Fungal and oomycete pathogens cause some of the most devastating diseases in crop plants, and facilitate infection by delivering a large number of effector molecules into the plant cell. AvrM is a secreted effector protein from flax rust (Melampsora lini) that can internalize into plant cells in the absence of the pathogen, binds to phosphoinositides (PIPs), and is recognized directly by the resistance protein M in flax (Linum usitatissimum), resulting in effector-triggered immunity. We determined the crystal structures of two naturally occurring variants of AvrM, AvrM-A and avrM, and both reveal an L-shaped fold consisting of a tandem duplicated four-helix motif, which displays similarity to the WY domain core in oomycete effectors. In the crystals, both AvrM variants form a dimer with an unusual nonglobular shape. Our functional analysis of AvrM reveals that a hydrophobic surface patch conserved between both variants is required for internalization into plant cells, whereas the C-terminal coiled-coil domain mediates interaction with M. AvrM binding to PIPs is dependent on positive surface charges, and mutations that abrogate PIP binding have no significant effect on internalization, suggesting that AvrM binding to PIPs is not essential for transport of AvrM across the plant membrane. The structure of AvrM and the identification of functionally important surface regions advance our understanding of the molecular mechanisms underlying how effectors enter plant cells and how they are detected by the plant immune system.


Subject(s)
Basidiomycota/immunology , Flax/immunology , Fungal Proteins/immunology , Plant Diseases/immunology , Amino Acid Sequence , Basidiomycota/genetics , Basidiomycota/physiology , Crystallography, X-Ray , Flax/cytology , Flax/microbiology , Fungal Proteins/chemistry , Fungal Proteins/metabolism , Host-Pathogen Interactions/immunology , Immunoblotting , Microscopy, Confocal , Models, Molecular , Molecular Sequence Data , Mutation , Phosphatidylinositols/immunology , Phosphatidylinositols/metabolism , Plant Cells/immunology , Plant Cells/microbiology , Plant Diseases/genetics , Plant Diseases/microbiology , Plant Leaves/genetics , Plant Leaves/metabolism , Plants, Genetically Modified , Protein Binding/immunology , Protein Multimerization , Protein Structure, Secondary , Protein Structure, Tertiary , Sequence Homology, Amino Acid , Nicotiana/genetics , Nicotiana/metabolism
16.
PLoS Pathog ; 8(11): e1003004, 2012.
Article in English | MEDLINE | ID: mdl-23209402

ABSTRACT

L locus resistance (R) proteins are nucleotide binding (NB-ARC) leucine-rich repeat (LRR) proteins from flax (Linum usitatissimum) that provide race-specific resistance to the causal agent of flax rust disease, Melampsora lini. L5 and L6 are two alleles of the L locus that directly recognize variants of the fungal effector AvrL567. In this study, we have investigated the molecular details of this recognition by site-directed mutagenesis of AvrL567 and construction of chimeric L proteins. Single, double and triple mutations of polymorphic residues in a variety of AvrL567 variants showed additive effects on recognition strength, suggesting that multiple contact points are involved in recognition. Domain-swap experiments between L5 and L6 show that specificity differences are determined by their corresponding LRR regions. Most positively selected amino acid sites occur in the N- and C-terminal LRR units, and polymorphisms in the first seven and last four LRR units contribute to recognition specificity of L5 and L6 respectively. This further confirms that multiple, additive contact points occur between AvrL567 variants and either L5 or L6. However, we also observed that recognition of AvrL567 is affected by co-operative polymorphisms between both adjacent and distant domains of the R protein, including the TIR, ARC and LRR domains, implying that these residues are involved in intramolecular interactions to optimize detection of the pathogen and defense signal activation. We suggest a model where Avr ligand interaction directly competes with intramolecular interactions to cause activation of the R protein.


Subject(s)
Basidiomycota/metabolism , Disease Resistance , Flax/metabolism , Fungal Proteins/metabolism , Plant Diseases , Plant Proteins/metabolism , Basidiomycota/genetics , Flax/genetics , Flax/microbiology , Fungal Proteins/genetics , Mutagenesis, Site-Directed , Plant Proteins/genetics
17.
Curr Opin Plant Biol ; 15(4): 477-82, 2012 Aug.
Article in English | MEDLINE | ID: mdl-22658704

ABSTRACT

Both mutualistic and biotrophic pathogenic fungi rely on living host plants for growth and reproduction and must modify host cell structure and function for successful infection. The deployment of a diverse set of secreted virulence determinants referred to as 'effectors', many of which are directly delivered into the host cell, is postulated to be the key to host infection. This review provides a snapshot of the current progress in fungal effector biology. Recent genome sequencing of rust and powdery mildew obligate biotrophs has provided insight into the repertoires of potential effectors of these highly specialised pathogens. Identification of the first host-translocated effectors from mutualistic fungi has revealed that these fungi also manipulate host cells through effectors. The biological activities of some fungal effectors are just beginning to be revealed, while much uncertainty still surrounds the mechanisms of transport into host cells.


Subject(s)
Fungal Proteins/metabolism , Fungi/pathogenicity , Host-Pathogen Interactions/immunology , Plant Proteins/metabolism , Plants/immunology , Plants/microbiology , Virulence Factors/metabolism , Ascomycota/physiology , Basidiomycota/physiology , Fungi/immunology , Signal Transduction/physiology , Symbiosis/physiology , Virulence
18.
Mol Plant Microbe Interact ; 25(3): 379-92, 2012 Mar.
Article in English | MEDLINE | ID: mdl-22046960

ABSTRACT

To investigate the role of N-terminal domains of plant disease resistance proteins in membrane targeting, the N termini of a number of Arabidopsis and flax disease resistance proteins were fused to green fluorescent protein (GFP) and the fusion proteins localized in planta using confocal microscopy. The N termini of the Arabidopsis RPP1-WsB and RPS5 resistance proteins and the PBS1 protein, which is required for RPS5 resistance, targeted GFP to the plasma membrane, and mutation of predicted myristoylation and potential palmitoylation sites resulted in a shift to nucleocytosolic localization. The N-terminal domain of the membrane-attached Arabidopsis RPS2 resistance protein was targeted incompletely to the plasma membrane. In contrast, the N-terminal domains of the Arabidopsis RPP1-WsA and flax L6 and M resistance proteins, which carry predicted signal anchors, were targeted to the endomembrane system, RPP1-WsA to the endoplasmic reticulum and the Golgi apparatus, L6 to the Golgi apparatus, and M to the tonoplast. Full-length L6 was also targeted to the Golgi apparatus. Site-directed mutagenesis of six nonconserved amino acid residues in the signal anchor domains of L6 and M was used to change the localization of the L6 N-terminal fusion protein to that of M and vice versa, showing that these residues control the targeting specificity of the signal anchor. Replacement of the signal anchor domain of L6 by that of M did not affect L6 protein accumulation or resistance against flax rust expressing AvrL567 but removal of the signal anchor domain reduced L6 protein accumulation and L6 resistance, suggesting that membrane attachment is required to stabilize the L6 protein.


Subject(s)
Arabidopsis/metabolism , Cell Membrane/metabolism , Disease Resistance , Flax/metabolism , Plant Proteins/metabolism , Amino Acid Motifs , Amino Acid Sequence , Amino Acid Substitution , Arabidopsis/genetics , Endoplasmic Reticulum/metabolism , Flax/genetics , Golgi Apparatus/metabolism , Green Fluorescent Proteins , Molecular Sequence Data , Mutagenesis, Site-Directed , Mutation , Plant Proteins/chemistry , Plant Proteins/genetics , Plants, Genetically Modified , Recombinant Fusion Proteins , Sequence Homology, Amino Acid
20.
Curr Opin Plant Biol ; 14(5): 512-8, 2011 Oct.
Article in English | MEDLINE | ID: mdl-21723182

ABSTRACT

Plant disease resistance can be triggered by specific recognition of microbial effectors by plant nucleotide binding-leucine rich repeat (NB-LRR) receptors. Over the last few years, many efforts have greatly improved the understanding of effector and NB-LRR function, but have left a lot of questions as to how effector perception activates NB-LRR induction of defense signaling. This review describes exciting new findings showing similarities and differences in function of diverse plant NB-LRR proteins in terms of pathogen recognition and where and how resistance proteins are activated. Localization studies have shown that some NB-LRRs can activate signaling from the cytosol while others act in the nucleus. Also, the structural determination of two NB-LRR signaling domains demonstrated that receptor oligomerization is fundamental for the activation of resistance signaling.


Subject(s)
Plant Diseases/immunology , Plant Immunity/physiology , Plant Proteins/immunology , Defense Mechanisms , Disease Resistance , Signal Transduction
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