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1.
Plant Cell ; 36(2): 447-470, 2024 Jan 30.
Article in English | MEDLINE | ID: mdl-37820736

ABSTRACT

Plant nucleotide-binding leucine-rich repeat (NLRs) immune receptors directly or indirectly recognize pathogen-secreted effector molecules to initiate plant defense. Recognition of multiple pathogens by a single NLR is rare and usually occurs via monitoring for changes to host proteins; few characterized NLRs have been shown to recognize multiple effectors. The barley (Hordeum vulgare) NLR gene Mildew locus a (Mla) has undergone functional diversification, and the proteins encoded by different Mla alleles recognize host-adapted isolates of barley powdery mildew (Blumeria graminis f. sp. hordei [Bgh]). Here, we show that Mla3 also confers resistance to the rice blast fungus Magnaporthe oryzae in a dosage-dependent manner. Using a forward genetic screen, we discovered that the recognized effector from M. oryzae is Pathogenicity toward Weeping Lovegrass 2 (Pwl2), a host range determinant factor that prevents M. oryzae from infecting weeping lovegrass (Eragrostis curvula). Mla3 has therefore convergently evolved the capacity to recognize effectors from diverse pathogens.


Subject(s)
Ascomycota , Eragrostis , Hordeum , Magnaporthe , Virulence/genetics , Hordeum/genetics , Eragrostis/metabolism , Plants/metabolism , Host Specificity , Plant Diseases/microbiology , Plant Proteins/genetics , Plant Proteins/metabolism
2.
PLoS Biol ; 21(1): e3001945, 2023 01.
Article in English | MEDLINE | ID: mdl-36656825

ABSTRACT

Studies focused solely on single organisms can fail to identify the networks underlying host-pathogen gene-for-gene interactions. Here, we integrate genetic analyses of rice (Oryza sativa, host) and rice blast fungus (Magnaporthe oryzae, pathogen) and uncover a new pathogen recognition specificity of the rice nucleotide-binding domain and leucine-rich repeat protein (NLR) immune receptor Pik, which mediates resistance to M. oryzae expressing the avirulence effector gene AVR-Pik. Rice Piks-1, encoded by an allele of Pik-1, recognizes a previously unidentified effector encoded by the M. oryzae avirulence gene AVR-Mgk1, which is found on a mini-chromosome. AVR-Mgk1 has no sequence similarity to known AVR-Pik effectors and is prone to deletion from the mini-chromosome mediated by repeated Inago2 retrotransposon sequences. AVR-Mgk1 is detected by Piks-1 and by other Pik-1 alleles known to recognize AVR-Pik effectors; recognition is mediated by AVR-Mgk1 binding to the integrated heavy metal-associated (HMA) domain of Piks-1 and other Pik-1 alleles. Our findings highlight how complex gene-for-gene interaction networks can be disentangled by applying forward genetics approaches simultaneously to the host and pathogen. We demonstrate dynamic coevolution between an NLR integrated domain and multiple families of effector proteins.


Subject(s)
Oryza , Receptors, Immunologic , Receptors, Immunologic/metabolism , Fungi/metabolism , Plant Diseases/microbiology , Host-Pathogen Interactions/genetics , Oryza/genetics , Oryza/microbiology , Plant Proteins/genetics , Plant Proteins/metabolism
3.
Proc Natl Acad Sci U S A ; 119(27): e2116896119, 2022 07 05.
Article in English | MEDLINE | ID: mdl-35771942

ABSTRACT

Throughout their evolution, plant nucleotide-binding leucine-rich-repeat receptors (NLRs) have acquired widely divergent unconventional integrated domains that enhance their ability to detect pathogen effectors. However, the functional dynamics that drive the evolution of NLRs with integrated domains (NLR-IDs) remain poorly understood. Here, we reconstructed the evolutionary history of an NLR locus prone to unconventional domain integration and experimentally tested hypotheses about the evolution of NLR-IDs. We show that the rice (Oryza sativa) NLR Pias recognizes the effector AVR-Pias of the blast fungal pathogen Magnaporthe oryzae. Pias consists of a functionally specialized NLR pair, the helper Pias-1 and the sensor Pias-2, that is allelic to the previously characterized Pia pair of NLRs: the helper RGA4 and the sensor RGA5. Remarkably, Pias-2 carries a C-terminal DUF761 domain at a similar position to the heavy metal-associated (HMA) domain of RGA5. Phylogenomic analysis showed that Pias-2/RGA5 sensor NLRs have undergone recurrent genomic recombination within the genus Oryza, resulting in up to six sequence-divergent domain integrations. Allelic NLRs with divergent functions have been maintained transspecies in different Oryza lineages to detect sequence-divergent pathogen effectors. By contrast, Pias-1 has retained its NLR helper activity throughout evolution and is capable of functioning together with the divergent sensor-NLR RGA5 to respond to AVR-Pia. These results suggest that opposite selective forces have driven the evolution of paired NLRs: highly dynamic domain integration events maintained by balancing selection for sensor NLRs, in sharp contrast to purifying selection and functional conservation of immune signaling for helper NLRs.


Subject(s)
Evolution, Molecular , Magnaporthe , NLR Proteins , Oryza , Plant Diseases , Plant Proteins , Receptors, Immunologic , Genetic Linkage , Host-Pathogen Interactions/immunology , Magnaporthe/genetics , Magnaporthe/pathogenicity , NLR Proteins/genetics , NLR Proteins/immunology , Oryza/immunology , Oryza/microbiology , Plant Diseases/immunology , Plant Diseases/microbiology , Plant Proteins/genetics , Plant Proteins/immunology , Protein Inhibitors of Activated STAT/genetics , Protein Inhibitors of Activated STAT/immunology , Receptors, Immunologic/genetics , Receptors, Immunologic/immunology
4.
PLoS Pathog ; 18(9): e1010792, 2022 09.
Article in English | MEDLINE | ID: mdl-36173975

ABSTRACT

When infecting plants, fungal pathogens secrete cell wall-degrading enzymes (CWDEs) that break down cellulose and hemicellulose, the primary components of plant cell walls. Some fungal CWDEs contain a unique domain, named the carbohydrate binding module (CBM), that facilitates their access to polysaccharides. However, little is known about how plants counteract pathogen degradation of their cell walls. Here, we show that the rice cysteine-rich repeat secretion protein OsRMC binds to and inhibits xylanase MoCel10A of the blast fungus pathogen Magnaporthe oryzae, interfering with its access to the rice cell wall and degradation of rice xylan. We found binding of OsRMC to various CBM1-containing enzymes, suggesting that it has a general role in inhibiting the action of CBM1. OsRMC is localized to the apoplast, and its expression is strongly induced in leaves infected with M. oryzae. Remarkably, knockdown and overexpression of OsRMC reduced and enhanced rice defense against M. oryzae, respectively, demonstrating that inhibition of CBM1-containing fungal enzymes by OsRMC is crucial for rice defense. We also identified additional CBM-interacting proteins (CBMIPs) from Arabidopsis thaliana and Setaria italica, indicating that a wide range of plants counteract pathogens through this mechanism.


Subject(s)
Arabidopsis , Oryza , Cellulose , Cysteine , Fungal Proteins/genetics , Oryza/genetics , Xylans
5.
J Biol Chem ; 296: 100371, 2021.
Article in English | MEDLINE | ID: mdl-33548226

ABSTRACT

Microbial plant pathogens secrete effector proteins, which manipulate the host to promote infection. Effectors can be recognized by plant intracellular nucleotide-binding leucine-rich repeat (NLR) receptors, initiating an immune response. The AVR-Pik effector from the rice blast fungus Magnaporthe oryzae is recognized by a pair of rice NLR receptors, Pik-1 and Pik-2. Pik-1 contains a noncanonical integrated heavy-metal-associated (HMA) domain, which directly binds AVR-Pik to activate plant defenses. The host targets of AVR-Pik are also HMA-domain-containing proteins, namely heavy-metal-associated isoprenylated plant proteins (HIPPs) and heavy-metal-associated plant proteins (HPPs). Here, we demonstrate that one of these targets interacts with a wider set of AVR-Pik variants compared with the Pik-1 HMA domains. We define the biochemical and structural basis of the interaction between AVR-Pik and OsHIPP19 and compare the interaction to that formed with the HMA domain of Pik-1. Using analytical gel filtration and surface plasmon resonance, we show that multiple AVR-Pik variants, including the stealthy variants AVR-PikC and AVR-PikF, which do not interact with any characterized Pik-1 alleles, bind to OsHIPP19 with nanomolar affinity. The crystal structure of OsHIPP19 in complex with AVR-PikF reveals differences at the interface that underpin high-affinity binding of OsHIPP19-HMA to a wider set of AVR-Pik variants than achieved by the integrated HMA domain of Pik-1. Our results provide a foundation for engineering the HMA domain of Pik-1 to extend binding to currently unrecognized AVR-Pik variants and expand disease resistance in rice to divergent pathogen strains.


Subject(s)
Ascomycota/genetics , Disease Resistance/immunology , Alleles , Ascomycota/metabolism , Ascomycota/pathogenicity , Disease Resistance/genetics , Host-Pathogen Interactions/immunology , Magnaporthe/immunology , Models, Molecular , NLR Proteins/metabolism , Oryza/genetics , Oryza/metabolism , Plant Diseases/microbiology , Plant Proteins/metabolism
6.
Proc Natl Acad Sci U S A ; 116(2): 496-505, 2019 01 08.
Article in English | MEDLINE | ID: mdl-30584105

ABSTRACT

Plant pathogens have optimized their own effector sets to adapt to their hosts. However, certain effectors, regarded as core effectors, are conserved among various pathogens, and may therefore play an important and common role in pathogen virulence. We report here that the widely distributed fungal effector NIS1 targets host immune components that transmit signaling from pattern recognition receptors (PRRs) in plants. NIS1 from two Colletotrichum spp. suppressed the hypersensitive response and oxidative burst, both of which are induced by pathogen-derived molecules, in Nicotiana benthamianaMagnaporthe oryzae NIS1 also suppressed the two defense responses, although this pathogen likely acquired the NIS1 gene via horizontal transfer from Basidiomycota. Interestingly, the root endophyte Colletotrichum tofieldiae also possesses a NIS1 homolog that can suppress the oxidative burst in N. benthamiana We show that NIS1 of multiple pathogens commonly interacts with the PRR-associated kinases BAK1 and BIK1, thereby inhibiting their kinase activities and the BIK1-NADPH oxidase interaction. Furthermore, mutations in the NIS1-targeting proteins, i.e., BAK1 and BIK1, in Arabidopsis thaliana also resulted in reduced immunity to Colletotrichum fungi. Finally, M. oryzae lacking NIS1 displayed significantly reduced virulence on rice and barley, its hosts. Our study therefore reveals that a broad range of filamentous fungi maintain and utilize the core effector NIS1 to establish infection in their host plants and perhaps also beneficial interactions, by targeting conserved and central PRR-associated kinases that are also known to be targeted by bacterial effectors.


Subject(s)
Carrier Proteins/immunology , Fungal Proteins/immunology , Magnaporthe/immunology , Nicotiana , Plant Diseases , Plant Proteins/immunology , Protein Serine-Threonine Kinases/immunology , Signal Transduction/immunology , Plant Diseases/immunology , Plant Diseases/microbiology , Nicotiana/immunology , Nicotiana/microbiology
7.
J Biol Chem ; 294(35): 13006-13016, 2019 08 30.
Article in English | MEDLINE | ID: mdl-31296569

ABSTRACT

Unconventional integrated domains in plant intracellular immune receptors of the nucleotide-binding leucine-rich repeat (NLRs) type can directly bind translocated effector proteins from pathogens and thereby initiate an immune response. The rice (Oryza sativa) immune receptor pairs Pik-1/Pik-2 and RGA5/RGA4 both use integrated heavy metal-associated (HMA) domains to bind the effectors AVR-Pik and AVR-Pia, respectively, from the rice blast fungal pathogen Magnaporthe oryzae These effectors both belong to the MAX effector family and share a core structural fold, despite being divergent in sequence. How integrated domains in NLRs maintain specificity of effector recognition, even of structurally similar effectors, has implications for understanding plant immune receptor evolution and function. Here, using plant cell death and pathogenicity assays and protein-protein interaction analyses, we show that the rice NLR pair Pikp-1/Pikp-2 triggers an immune response leading to partial disease resistance toward the "mis-matched" effector AVR-Pia in planta and that the Pikp-HMA domain binds AVR-Pia in vitro We observed that the HMA domain from another Pik-1 allele, Pikm, cannot bind AVR-Pia, and it does not trigger a plant response. The crystal structure of Pikp-HMA bound to AVR-Pia at 1.9 Å resolution revealed a binding interface different from those formed with AVR-Pik effectors, suggesting plasticity in integrated domain-effector interactions. The results of our work indicate that a single NLR immune receptor can bait multiple pathogen effectors via an integrated domain, insights that may enable engineering plant immune receptors with extended disease resistance profiles.


Subject(s)
Magnaporthe/immunology , NLR Proteins/immunology , Oryza/immunology , Plant Diseases/immunology , Models, Molecular , NLR Proteins/chemistry , Oryza/microbiology , Plant Diseases/microbiology , Protein Binding
8.
Plant J ; 89(2): 381-393, 2017 01.
Article in English | MEDLINE | ID: mdl-27711985

ABSTRACT

Plant immune responses triggered upon recognition of microbe-associated molecular patterns (MAMPs) typically restrict pathogen growth without a host cell death response. We isolated two Arabidopsis mutants, derived from accession Col-0, that activated cell death upon inoculation with nonadapted fungal pathogens. Notably, the mutants triggered cell death also when treated with bacterial MAMPs such as flg22. Positional cloning identified NSL1 (Necrotic Spotted Lesion 1) as a responsible gene for the phenotype of the two mutants, whereas nsl1 mutations of the accession No-0 resulted in necrotic lesion formation without pathogen inoculation. NSL1 encodes a protein of unknown function containing a putative membrane-attack complex/perforin (MACPF) domain. The application of flg22 increased salicylic acid (SA) accumulation in the nsl1 plants derived from Col-0, while depletion of isochorismate synthase 1 repressed flg22-inducible lesion formation, indicating that elevated SA is needed for the cell death response. nsl1 plants of Col-0 responded to flg22 treatment with an RBOHD-dependent oxidative burst, but this response was dispensable for the nsl1-dependent cell death. Surprisingly, loss-of-function mutations in PEN2, involved in the metabolism of tryptophan (Trp)-derived indole glucosinolates, suppressed the flg22-induced and nsl1-dependent cell death. Moreover, the increased accumulation of SA in the nsl1 plants was abrogated by blocking Trp-derived secondary metabolite biosynthesis, whereas the nsl1-dependent hyperaccumulation of PEN2-dependent compounds was unaffected when the SA biosynthesis pathway was blocked. Collectively, these findings suggest that MAMP-triggered immunity activates a genetically programmed cell death in the absence of the functional MACPF domain protein NSL1 via Trp-derived secondary metabolite-mediated activation of the SA pathway.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/immunology , Nuclear Proteins/metabolism , Tryptophan/metabolism , Arabidopsis/cytology , Arabidopsis/microbiology , Arabidopsis Proteins/genetics , Cell Death/immunology , Cell Membrane/metabolism , Colletotrichum/pathogenicity , Gene Expression Regulation, Plant , Genetic Variation , Green Fluorescent Proteins/genetics , Mutation , Nuclear Proteins/genetics , Plant Cells/metabolism , Plant Leaves , Plants, Genetically Modified , Protein Domains , Reactive Oxygen Species/metabolism , Salicylic Acid/metabolism
9.
Mol Plant Microbe Interact ; 31(1): 34-45, 2018 01.
Article in English | MEDLINE | ID: mdl-29144205

ABSTRACT

A diversity of plant-associated organisms secrete effectors-proteins and metabolites that modulate plant physiology to favor host infection and colonization. However, effectors can also activate plant immune receptors, notably nucleotide-binding domain and leucine-rich repeat region (NLR)-containing proteins, enabling plants to fight off invading organisms. This interplay between effectors, their host targets, and the matching immune receptors is shaped by intricate molecular mechanisms and exceptionally dynamic coevolution. In this article, we focus on three effectors, AVR-Pik, AVR-Pia, and AVR-Pii, from the rice blast fungus Magnaporthe oryzae (syn. Pyricularia oryzae), and their corresponding rice NLR immune receptors, Pik, Pia, and Pii, to highlight general concepts of plant-microbe interactions. We draw 12 lessons in effector and NLR biology that have emerged from studying these three little effectors and are broadly applicable to other plant-microbe systems.


Subject(s)
Host-Pathogen Interactions , NLR Proteins/metabolism , Plants/metabolism , Plants/microbiology , Amino Acid Sequence , Biological Evolution , Genetic Variation , NLR Proteins/chemistry , NLR Proteins/genetics , Plants/immunology , Selection, Genetic
10.
BMC Genomics ; 18(1): 897, 2017 Nov 22.
Article in English | MEDLINE | ID: mdl-29166857

ABSTRACT

BACKGROUND: Downy mildew, caused by the oomycete pathogen Sclerospora graminicola, is an economically important disease of Gramineae crops including foxtail millet (Setaria italica). Plants infected with S. graminicola are generally stunted and often undergo a transformation of flower organs into leaves (phyllody or witches' broom), resulting in serious yield loss. To establish the molecular basis of downy mildew disease in foxtail millet, we carried out whole-genome sequencing and an RNA-seq analysis of S. graminicola. RESULTS: Sequence reads were generated from S. graminicola using an Illumina sequencing platform and assembled de novo into a draft genome sequence comprising approximately 360 Mbp. Of this sequence, 73% comprised repetitive elements, and a total of 16,736 genes were predicted from the RNA-seq data. The predicted genes included those encoding effector-like proteins with high sequence similarity to those previously identified in other oomycete pathogens. Genes encoding jacalin-like lectin-domain-containing secreted proteins were enriched in S. graminicola compared to other oomycetes. Of a total of 1220 genes encoding putative secreted proteins, 91 significantly changed their expression levels during the infection of plant tissues compared to the sporangia and zoospore stages of the S. graminicola lifecycle. CONCLUSIONS: We established the draft genome sequence of a downy mildew pathogen that infects Gramineae plants. Based on this sequence and our transcriptome analysis, we generated a catalog of in planta-induced candidate effector genes, providing a solid foundation from which to identify the effectors causing phyllody.


Subject(s)
Genome , Oomycetes/genetics , Plant Diseases , Setaria Plant , Genome Size , Heterozygote , Oomycetes/metabolism , Oomycetes/pathogenicity , Plant Lectins/genetics , Proteins/genetics , Proteins/metabolism , Repetitive Sequences, Nucleic Acid
11.
Plant Cell ; 26(5): 2265-2281, 2014 May.
Article in English | MEDLINE | ID: mdl-24850852

ABSTRACT

The hemibiotrophic pathogen Colletotrichum orbiculare develops biotrophic hyphae inside cucumber (Cucumis sativus) cells via appressorial penetration; later, the pathogen switches to necrotrophy. C. orbiculare also expresses specific effectors at different stages. Here, we found that virulence-related effectors of C. orbiculare accumulate in a pathogen-host biotrophic interface. Fluorescence-tagged effectors accumulated in a ring-like region around the neck of the biotrophic primary hyphae. Fluorescence imaging of cellular components and transmission electron microscopy showed that the ring-like signals of the effectors localized at the pathogen-plant interface. Effector accumulation at the interface required induction of its expression during the early biotrophic phase, suggesting that transcriptional regulation may link to effector localization. We also investigated the route of effector secretion to the interface. An exocytosis-related component, the Rab GTPase SEC4, localized to the necks of biotrophic primary hyphae adjacent to the interface, thereby suggesting focal effector secretion. Disruption of SEC4 in C. orbiculare reduced virulence and impaired effector delivery to the ring signal interface. Disruption of the v-SNARE SEC22 also reduced effector delivery. These findings suggest that biotrophy-expressed effectors are secreted, via the endoplasmic reticulum-to-Golgi route and subsequent exocytosis, toward the interface generated between C. orbiculare and the host cell.

12.
Plant J ; 83(5): 875-87, 2015 Sep.
Article in English | MEDLINE | ID: mdl-26186703

ABSTRACT

Vesicle trafficking including the exocytosis pathway is intimately associated with host immunity against pathogens. However, we still have insufficient knowledge about how it contributes to immunity, and how pathogen factors affect it. In this study, we explore host factors that interact with the Magnaporthe oryzae effector AVR-Pii. Gel filtration chromatography and co-immunoprecipitation assays identified a 150 kDa complex of proteins in the soluble fraction comprising AVR-Pii and OsExo70-F2 and OsExo70-F3, two rice Exo70 proteins presumably involved in exocytosis. Simultaneous knockdown of OsExo70-F2 and F3 totally abrogated Pii immune receptor-dependent resistance, but had no effect on Pia- and Pik-dependent resistance. Knockdown levels of OsExo70-F3 but not OsExo70-F2 correlated with reduction of Pii function, suggesting that OsExo70-F3 is specifically involved in Pii-dependent resistance. Under our current experimental conditions, over-expression of AVR-Pii or knockdown of OsExo70-F2 and -F3 genes in rice did not affect the virulence of compatible isolates of M. oryzae. AVR-Pii interaction with OsExo70-F3 appears to play a crucial role in immunity triggered by Pii, suggesting a role for OsExo70 as a decoy or helper in Pii/AVR-Pii interactions.


Subject(s)
Fungal Proteins/metabolism , Host-Pathogen Interactions , Magnaporthe/pathogenicity , Oryza/immunology , Oryza/microbiology , Plant Proteins/metabolism , Amino Acid Sequence , Burkholderia/pathogenicity , Fungal Proteins/genetics , Gene Expression Regulation, Fungal , Gene Expression Regulation, Plant , Gene Knockdown Techniques , Magnaporthe/metabolism , Molecular Sequence Data , Oryza/physiology , Plant Diseases/immunology , Plant Diseases/microbiology , Plant Proteins/genetics , Plants, Genetically Modified , Protein Multimerization , Xanthomonas/pathogenicity
13.
BMC Genomics ; 17: 370, 2016 05 18.
Article in English | MEDLINE | ID: mdl-27194050

ABSTRACT

BACKGROUND: Magnaporthe oryzae (anamorph Pyricularia oryzae) is the causal agent of blast disease of Poaceae crops and their wild relatives. To understand the genetic mechanisms that drive host specialization of M. oryzae, we carried out whole genome resequencing of four M. oryzae isolates from rice (Oryza sativa), one from foxtail millet (Setaria italica), three from wild foxtail millet S. viridis, and one isolate each from finger millet (Eleusine coracana), wheat (Triticum aestivum) and oat (Avena sativa), in addition to an isolate of a sister species M. grisea, that infects the wild grass Digitaria sanguinalis. RESULTS: Whole genome sequence comparison confirmed that M. oryzae Oryza and Setaria isolates form a monophyletic and close to another monophyletic group consisting of isolates from Triticum and Avena. This supports previous phylogenetic analysis based on a small number of genes and molecular markers. When comparing the host specific subgroups, 1.2-3.5 % of genes showed presence/absence polymorphisms and 0-6.5 % showed an excess of non-synonymous substitutions. Most of these genes encoded proteins whose functional domains are present in multiple copies in each genome. Therefore, the deleterious effects of these mutations could potentially be compensated by functional redundancy. Unlike the accumulation of nonsynonymous nucleotide substitutions, gene loss appeared to be independent of divergence time. Interestingly, the loss and gain of genes in pathogens from the Oryza and Setaria infecting lineages occurred more frequently when compared to those infecting Triticum and Avena even though the genetic distance between Oryza and Setaria lineages was smaller than that between Triticum and Avena lineages. In addition, genes showing gain/loss and nucleotide polymorphisms are linked to transposable elements highlighting the relationship between genome position and gene evolution in this pathogen species. CONCLUSION: Our comparative genomics analyses of host-specific M. oryzae isolates revealed gain and loss of genes as a major evolutionary mechanism driving specialization to Oryza and Setaria. Transposable elements appear to facilitate gene evolution possibly by enhancing chromosomal rearrangements and other forms of genetic variation.


Subject(s)
DNA Transposable Elements , Genes, Fungal , Genetic Variation , Host-Pathogen Interactions , Magnaporthe/genetics , Chromosome Mapping , Chromosomes, Fungal , Evolution, Molecular , Genome, Fungal , Genomics/methods , Magnaporthe/classification , Mutation , Phylogeny
14.
New Phytol ; 210(4): 1282-97, 2016 06.
Article in English | MEDLINE | ID: mdl-26864209

ABSTRACT

Understanding how plants allocate their resources to growth or defence is of long-term importance to the development of new and improved varieties of different crops. Using molecular genetics, plant physiology, hormone analysis and Next-Generation Sequencing (NGS)-based transcript profiling, we have isolated and characterized the rice (Oryza sativa) LESION AND LAMINA BENDING (LLB) gene that encodes a chloroplast-targeted putative leucine carboxyl methyltransferase. Loss of LLB function results in reduced growth and yield, hypersensitive response (HR)-like lesions, accumulation of the antimicrobial compounds momilactones and phytocassanes, and constitutive expression of pathogenesis-related genes. Consistent with these defence-associated responses, llb shows enhanced resistance to rice blast (Magnaporthe oryzae) and bacterial blight (Xanthomonas oryzae pv. oryzae). The lesion and resistance phenotypes are likely to be caused by the over-accumulation of jasmonates (JAs) in the llb mutant including the JA precursor 12-oxo-phytodienoic acid. Additionally, llb shows an increased lamina inclination and enhanced early seedling growth due to elevated brassinosteroid (BR) synthesis and/or signalling. These findings show that LLB functions in the chloroplast to either directly or indirectly repress both JA- and BR-mediated responses, revealing a possible mechanism for controlling how plants allocate resources for defence and growth.


Subject(s)
Disease Resistance , Magnaporthe/physiology , Oryza/genetics , Plant Diseases/immunology , Xanthomonas/physiology , Amino Acid Sequence , Chloroplasts/metabolism , Cyclopentanes/metabolism , Fatty Acids, Unsaturated/metabolism , Genes, Reporter , Mutation , Oryza/growth & development , Oryza/immunology , Oxylipins/metabolism , Phenotype , Plant Diseases/microbiology , Plant Growth Regulators/metabolism , Plant Leaves/genetics , Plant Leaves/growth & development , Plant Leaves/immunology , Seedlings/genetics , Seedlings/growth & development , Seedlings/immunology
15.
Plant Mol Biol ; 88(1-2): 85-99, 2015 May.
Article in English | MEDLINE | ID: mdl-25800365

ABSTRACT

Cytochrome P450s are among the largest protein coding gene families in plant genomes. However, majority of the genes remain uncharacterized. Here, we report the characterization of dss1, a rice mutant showing dwarfism and reduced grain size. The dss1 phenotype is caused by a non-synonymous point mutation we identified in DSS1, which is member of a P450 gene cluster located on rice chromosome 3 and corresponds to the previously reported CYP96B4/SD37 gene. Phenotypes of several dwarf mutants characterized in rice are associated with defects in the biosynthesis or perception of the phytohormones gibberellins (GAs) and brassinosteroids (BRs). However, both GA and BR failed to rescue the dss1 phenotype. Hormone profiling revealed the accumulation of abscisic acid (ABA) and ABA metabolites, as well as significant reductions in GA19 and GA53 levels, precursors of the bioactive GA1, in the mutant. The dss1 contents of cytokinin and auxins were not significantly different from wild-type plants. Consistent with the accumulation of ABA and metabolites, germination and early growth was delayed in dss1, which also exhibited an enhanced tolerance to drought. Additionally, expressions of members of the DSS1/CYP96B gene cluster were regulated by drought stress and exogenous ABA. RNA-seq-based transcriptome profiling revealed, among others, that cell wall-related genes and genes involved in lipid metabolism were up- and down-regulated in dss1, respectively. Taken together, these findings suggest that DSS1 mediates growth and stress responses in rice by fine-tuning GA-to-ABA balance, and might as well play a role in lipid metabolism.


Subject(s)
Cytochrome P-450 Enzyme System/metabolism , Droughts , Oryza/enzymology , Oryza/growth & development , Plant Proteins/metabolism , Stress, Physiological , Abscisic Acid/metabolism , Amino Acid Sequence , Chromosome Mapping , Chromosomes, Plant/genetics , Cloning, Molecular , Cytochrome P-450 Enzyme System/chemistry , Cytochrome P-450 Enzyme System/genetics , Endoplasmic Reticulum/metabolism , Gene Expression Profiling , Gene Expression Regulation, Plant , Genes, Plant , Gibberellins/metabolism , Molecular Sequence Data , Multigene Family , Mutation/genetics , Oryza/genetics , Oryza/physiology , Phenotype , Plant Proteins/chemistry , Plant Proteins/genetics
16.
Mol Genet Genomics ; 290(2): 611-22, 2015 Apr.
Article in English | MEDLINE | ID: mdl-25367283

ABSTRACT

Lesion mimic mutants (LMMs) provide a useful tool to study defense-related programmed cell death (PCD) in plants. Although a number of LMMs have been identified in multiple species, most of the candidate genes are yet to be isolated. Here, we report the identification and characterization of a novel rice (Oryza sativa L.) lesion mimic resembling (lmr) mutant, and cloning of the corresponding LMR gene. The LMR locus was initially delineated to 1.2 Mb region on chromosome 6, which was further narrowed down to 155-kb using insertions/deletions (INDELs) and cleavage amplified polymorphic sequence markers developed in this study. We sequenced the open reading frames predicted within the candidate genomic region, and identified a G-A base substitution causing a premature translation termination in a gene that encodes an ATPase associated with various cellular activities type (AAA-type) protein. RNA interference transgenic lines with reduced LMR transcripts exhibited the lesion mimic phenotype similar to that of lmr plants. Furthermore, expression of the wild-type LMR in the mutant background complemented the lesion phenotype, confirming that the mutation identified in LMR is responsible for the mutant phenotype. The pathogenesis-related (PR) genes PBZ1 and PR1 were induced in lmr, which also showed enhanced resistance to rice blast (Magnaporthe oryzae) and bacterial blight (Xanthomonas oryzae pv. oryzae), suggesting LMR is a negative regulator of cell death in rice. The identification of lmr and cloning of the corresponding LMR gene provide an additional resource for the study of PCD in plants.


Subject(s)
Adenosine Triphosphatases/genetics , Oryza/enzymology , Plant Leaves/enzymology , Plant Proteins/genetics , Adenosine Triphosphatases/biosynthesis , Amino Acid Sequence , Chloroplasts/enzymology , Cloning, Molecular , Disease Resistance , Genetic Association Studies , Genetic Linkage , Molecular Sequence Data , Oryza/genetics , Phenotype , Phylogeny , Plant Leaves/genetics , Plant Proteins/biosynthesis , Protein Transport , Sequence Analysis, DNA
17.
Plant Cell ; 24(1): 322-35, 2012 Jan.
Article in English | MEDLINE | ID: mdl-22267486

ABSTRACT

Plants use pattern recognition receptors to defend themselves from microbial pathogens. These receptors recognize pathogen-associated molecular patterns (PAMPs) and activate signaling pathways that lead to immunity. In rice (Oryza sativa), the chitin elicitor binding protein (CEBiP) recognizes chitin oligosaccharides released from the cell walls of fungal pathogens. Here, we show that the rice blast fungus Magnaporthe oryzae overcomes this first line of plant defense by secreting an effector protein, Secreted LysM Protein1 (Slp1), during invasion of new rice cells. We demonstrate that Slp1 accumulates at the interface between the fungal cell wall and the rice plasma membrane, can bind to chitin, and is able to suppress chitin-induced plant immune responses, including generation of reactive oxygen species and plant defense gene expression. Furthermore, we show that Slp1 competes with CEBiP for binding of chitin oligosaccharides. Slp1 is required by M. oryzae for full virulence and exerts a significant effect on tissue invasion and disease lesion expansion. By contrast, gene silencing of CEBiP in rice allows M. oryzae to cause rice blast disease in the absence of Slp1. We propose that Slp1 sequesters chitin oligosaccharides to prevent PAMP-triggered immunity in rice, thereby facilitating rapid spread of the fungus within host tissue.


Subject(s)
Chitin/immunology , Magnaporthe/immunology , Magnaporthe/pathogenicity , Oryza/immunology , Oryza/microbiology , Plant Diseases/immunology , Plant Diseases/microbiology , Plant Immunity/physiology , Plant Proteins/metabolism , Molecular Sequence Data , Oryza/metabolism , Plant Proteins/genetics
18.
Plant J ; 74(4): 701-12, 2013 May.
Article in English | MEDLINE | ID: mdl-23451734

ABSTRACT

Genome sequences of plant fungal pathogens have enabled the identification of effectors that cooperatively modulate the cellular environment for successful fungal growth and suppress host defense. Identification and characterization of novel effector proteins are crucial for understanding pathogen virulence and host-plant defense mechanisms. Previous reports indicate that the Pseudomonas syringae pv. tomato DC3000 type III secretion system (T3SS) can be used to study how non-bacterial effectors manipulate dicot plant cell function using the effector detector vector (pEDV) system. Here we report a pEDV-based effector delivery system in which the T3SS of Burkholderia glumae, an emerging rice pathogen, is used to translocate the AVR-Pik and AVR-Pii effectors of the fungal pathogen Magnaporthe oryzae to rice cytoplasm. The translocated AVR-Pik and AVR-Pii showed avirulence activity when tested in rice cultivars containing the cognate R genes. AVR-Pik reduced and delayed the hypersensitive response triggered by B. glumae in the non-host plant Nicotiana benthamiana, indicative of an immunosuppressive virulence activity. AVR proteins fused with fluorescent protein and nuclear localization signal were delivered by B. glumae T3SS and observed in the nuclei of infected cells in rice, wheat, barley and N. benthamiana. Our bacterial T3SS-enabled eukaryotic effector delivery and subcellular localization assays provide a useful method for identifying and studying effector functions in monocot plants.


Subject(s)
Bacterial Proteins/metabolism , Burkholderia/metabolism , Magnaporthe/pathogenicity , Oryza/metabolism , Plant Diseases/immunology , Bacterial Proteins/genetics , Burkholderia/genetics , Burkholderia/pathogenicity , Cytoplasm/metabolism , Genetic Vectors , Hordeum/cytology , Hordeum/genetics , Hordeum/metabolism , Host-Pathogen Interactions , Hyphae , Magnaporthe/genetics , Magnaporthe/metabolism , Oryza/cytology , Oryza/genetics , Oryza/microbiology , Plant Diseases/microbiology , Plant Leaves/cytology , Plant Leaves/genetics , Plant Leaves/metabolism , Plant Leaves/microbiology , Protein Transport , Nicotiana/cytology , Nicotiana/genetics , Nicotiana/metabolism , Triticum/cytology , Triticum/genetics , Triticum/metabolism , Virulence
19.
PLoS Pathog ; 8(5): e1002711, 2012.
Article in English | MEDLINE | ID: mdl-22589729

ABSTRACT

To search for virulence effector genes of the rice blast fungus, Magnaporthe oryzae, we carried out a large-scale targeted disruption of genes for 78 putative secreted proteins that are expressed during the early stages of infection of M. oryzae. Disruption of the majority of genes did not affect growth, conidiation, or pathogenicity of M. oryzae. One exception was the gene MC69. The mc69 mutant showed a severe reduction in blast symptoms on rice and barley, indicating the importance of MC69 for pathogenicity of M. oryzae. The mc69 mutant did not exhibit changes in saprophytic growth and conidiation. Microscopic analysis of infection behavior in the mc69 mutant revealed that MC69 is dispensable for appressorium formation. However, mc69 mutant failed to develop invasive hyphae after appressorium formation in rice leaf sheath, indicating a critical role of MC69 in interaction with host plants. MC69 encodes a hypothetical 54 amino acids protein with a signal peptide. Live-cell imaging suggested that fluorescently labeled MC69 was not translocated into rice cytoplasm. Site-directed mutagenesis of two conserved cysteine residues (Cys36 and Cys46) in the mature MC69 impaired function of MC69 without affecting its secretion, suggesting the importance of the disulfide bond in MC69 pathogenicity function. Furthermore, deletion of the MC69 orthologous gene reduced pathogenicity of the cucumber anthracnose fungus Colletotrichum orbiculare on both cucumber and Nicotiana benthamiana leaves. We conclude that MC69 is a secreted pathogenicity protein commonly required for infection of two different plant pathogenic fungi, M. oryzae and C. orbiculare pathogenic on monocot and dicot plants, respectively.


Subject(s)
Colletotrichum/pathogenicity , Fungal Proteins/metabolism , Magnaporthe/pathogenicity , Plant Diseases/microbiology , Amino Acid Sequence , Colletotrichum/genetics , Cucumis sativus/microbiology , Fungal Proteins/genetics , Gene Expression Regulation, Fungal , Genes, Fungal , Hordeum/microbiology , Magnaporthe/genetics , Mutation , Oryza/microbiology , Sequence Deletion , Nicotiana/microbiology
20.
Plant J ; 72(6): 894-907, 2012 Dec.
Article in English | MEDLINE | ID: mdl-22805093

ABSTRACT

Attack and counter-attack impose strong reciprocal selection on pathogens and hosts, leading to development of arms race evolutionary dynamics. Here we show that Magnaporthe oryzae avirulence gene AVR-Pik and the cognate rice resistance (R) gene Pik are highly variable, with multiple alleles in which DNA replacements cause amino acid changes. There is tight recognition specificity of the AVR-Pik alleles by the various Pik alleles. We found that AVR-Pik physically binds the N-terminal coiled-coil domain of Pik in a yeast two-hybrid assay as well as in an in planta co-immunoprecipitation assay. This binding specificity correlates with the recognition specificity between AVR and R genes. We propose that AVR-Pik and Pik are locked into arms race co-evolution driven by their direct physical interactions.


Subject(s)
Fungal Proteins/genetics , Host-Pathogen Interactions , Magnaporthe/genetics , Oryza/genetics , Plant Diseases/microbiology , Plant Proteins/genetics , Alleles , Amino Acid Sequence , Disease Resistance , Evolution, Molecular , Fungal Proteins/metabolism , Gene Expression Regulation, Fungal , Gene Expression Regulation, Plant , Magnaporthe/pathogenicity , Models, Biological , Mutation , Oryza/microbiology , Plant Proteins/metabolism , Protein Structure, Tertiary , Sequence Analysis, DNA , Two-Hybrid System Techniques , Virulence
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