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1.
Cell ; 187(10): 2557-2573.e18, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38729111

ABSTRACT

Many of the world's most devastating crop diseases are caused by fungal pathogens that elaborate specialized infection structures to invade plant tissue. Here, we present a quantitative mass-spectrometry-based phosphoproteomic analysis of infection-related development by the rice blast fungus Magnaporthe oryzae, which threatens global food security. We mapped 8,005 phosphosites on 2,062 fungal proteins following germination on a hydrophobic surface, revealing major re-wiring of phosphorylation-based signaling cascades during appressorium development. Comparing phosphosite conservation across 41 fungal species reveals phosphorylation signatures specifically associated with biotrophic and hemibiotrophic fungal infection. We then used parallel reaction monitoring (PRM) to identify phosphoproteins regulated by the fungal Pmk1 MAPK that controls plant infection by M. oryzae. We define 32 substrates of Pmk1 and show that Pmk1-dependent phosphorylation of regulator Vts1 is required for rice blast disease. Defining the phosphorylation landscape of infection therefore identifies potential therapeutic interventions for the control of plant diseases.


Subject(s)
Fungal Proteins , Oryza , Plant Diseases , Phosphorylation , Oryza/microbiology , Oryza/metabolism , Plant Diseases/microbiology , Fungal Proteins/metabolism , Phosphoproteins/metabolism , Ascomycota/metabolism , Mitogen-Activated Protein Kinases/metabolism , Proteomics , Signal Transduction
2.
New Phytol ; 241(4): 1763-1779, 2024 Feb.
Article in English | MEDLINE | ID: mdl-37823353

ABSTRACT

Perception of pathogen-associated molecular patterns (PAMPs) by surface-localized pattern recognition receptors activates RESPIRATORY BURST OXIDASE HOMOLOG D (RBOHD) through direct phosphorylation by BOTRYTIS-INDUCED KINASE 1 (BIK1) and induces the production of reactive oxygen species (ROS). RBOHD activity must be tightly controlled to avoid the detrimental effects of ROS, but little is known about RBOHD downregulation. To understand the regulation of RBOHD, we used co-immunoprecipitation of RBOHD with mass spectrometry analysis and identified PHAGOCYTOSIS OXIDASE/BEM1P (PB1) DOMAIN-CONTAINING PROTEIN (PB1CP). PB1CP negatively regulates RBOHD and the resistance against the fungal pathogen Colletotrichum higginsianum. PB1CP competes with BIK1 for binding to RBOHD in vitro. Furthermore, PAMP treatment enhances the PB1CP-RBOHD interaction, thereby leading to the dissociation of phosphorylated BIK1 from RBOHD in vivo. PB1CP localizes at the cell periphery and PAMP treatment induces relocalization of PB1CP and RBOHD to the same small endomembrane compartments. Additionally, overexpression of PB1CP in Arabidopsis leads to a reduction in the abundance of RBOHD protein, suggesting the possible involvement of PB1CP in RBOHD endocytosis. We found PB1CP, a novel negative regulator of RBOHD, and revealed its possible regulatory mechanisms involving the removal of phosphorylated BIK1 from RBOHD and the promotion of RBOHD endocytosis.


Subject(s)
Arabidopsis Proteins , Arabidopsis , NADPH Oxidases , Plant Immunity , Arabidopsis/metabolism , Arabidopsis Proteins/metabolism , Gene Expression Regulation, Plant , NADPH Oxidases/metabolism , Oxidoreductases/metabolism , Phagocytosis , Plant Immunity/genetics , Plant Immunity/physiology , Protein Serine-Threonine Kinases/metabolism , Reactive Oxygen Species/metabolism
3.
Nat Plants ; 9(12): 2085-2094, 2023 12.
Article in English | MEDLINE | ID: mdl-38049516

ABSTRACT

Plant signalling peptides are typically released from larger precursors by proteolytic cleavage to regulate plant growth, development and stress responses. Recent studies reported the characterization of a divergent family of Brassicaceae-specific peptides, SERINE RICH ENDOGENOUS PEPTIDES (SCOOPs), and their perception by the leucine-rich repeat receptor kinase MALE DISCOVERER 1-INTERACTING RECEPTOR-LIKE KINASE 2 (MIK2). Here, we reveal that the SCOOP family is highly expanded, containing at least 50 members in the Columbia-0 reference Arabidopsis thaliana genome. Notably, perception of these peptides is strictly MIK2-dependent. How bioactive SCOOP peptides are produced, and to what extent their perception is responsible for the multiple physiological roles associated with MIK2 are currently unclear. Using N-terminomics, we validate the N-terminal cleavage site of representative PROSCOOPs. The cleavage sites are determined by conserved motifs upstream of the minimal SCOOP bioactive epitope. We identified subtilases necessary and sufficient to process PROSCOOP peptides at conserved cleavage motifs. Mutation of these subtilases, or their recognition motifs, suppressed PROSCOOP cleavage and associated overexpression phenotypes. Furthermore, we show that higher-order mutants of these subtilases show phenotypes reminiscent of mik2 null mutant plants, consistent with impaired PROSCOOP biogenesis, and demonstrating biological relevance of SCOOP perception by MIK2. Together, this work provides insights into the molecular mechanisms underlying the functions of the recently identified SCOOP peptides and their receptor MIK2.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Brassicaceae , Arabidopsis Proteins/genetics , Serine , Arabidopsis/physiology , Peptides , Protein Kinases/genetics , Receptors, Cell Surface/genetics
4.
mBio ; 14(4): e0358922, 2023 08 31.
Article in English | MEDLINE | ID: mdl-37366628

ABSTRACT

Vesiculation is a process employed by Gram-negative bacteria to release extracellular vesicles (EVs) into the environment. EVs from pathogenic bacteria play functions in host immune modulation, elimination of host defenses, and acquisition of nutrients from the host. Here, we observed EV production of the bacterial speck disease causal agent, Pseudomonas syringae pv. tomato (Pto) DC3000, as outer membrane vesicle release. Mass spectrometry identified 369 proteins enriched in Pto DC3000 EVs. The EV samples contained known immunomodulatory proteins and could induce plant immune responses mediated by bacterial flagellin. Having identified two biomarkers for EV detection, we provide evidence for Pto DC3000 releasing EVs during plant infection. Bioinformatic analysis of the EV-enriched proteins suggests a role for EVs in antibiotic defense and iron acquisition. Thus, our data provide insights into the strategies this pathogen may use to develop in a plant environment. IMPORTANCE The release of extracellular vesicles (EVs) into the environment is ubiquitous among bacteria. Vesiculation has been recognized as an important mechanism of bacterial pathogenesis and human disease but is poorly understood in phytopathogenic bacteria. Our research addresses the role of bacterial EVs in plant infection. In this work, we show that the causal agent of bacterial speck disease, Pseudomonas syringae pv. tomato, produces EVs during plant infection. Our data suggest that EVs may help the bacteria to adapt to environments, e.g., when iron could be limiting such as the plant apoplast, laying the foundation for studying the factors that phytopathogenic bacteria use to thrive in the plant environment.


Subject(s)
Extracellular Vesicles , Solanum lycopersicum , Humans , Pseudomonas syringae/genetics , Pseudomonas syringae/metabolism , Proteomics , Flagellin/metabolism , Extracellular Vesicles/metabolism , Plant Diseases/microbiology , Bacterial Proteins/metabolism
5.
Cell ; 186(15): 3196-3207.e17, 2023 07 20.
Article in English | MEDLINE | ID: mdl-37369204

ABSTRACT

Pathogens produce diverse effector proteins to manipulate host cellular processes. However, how functional diversity is generated in an effector repertoire is poorly understood. Many effectors in the devastating plant pathogen Phytophthora contain tandem repeats of the "(L)WY" motif, which are structurally conserved but variable in sequences. Here, we discovered a functional module formed by a specific (L)WY-LWY combination in multiple Phytophthora effectors, which efficiently recruits the serine/threonine protein phosphatase 2A (PP2A) core enzyme in plant hosts. Crystal structure of an effector-PP2A complex shows that the (L)WY-LWY module enables hijacking of the host PP2A core enzyme to form functional holoenzymes. While sharing the PP2A-interacting module at the amino terminus, these effectors possess divergent C-terminal LWY units and regulate distinct sets of phosphoproteins in the host. Our results highlight the appropriation of an essential host phosphatase through molecular mimicry by pathogens and diversification promoted by protein modularity in an effector repertoire.


Subject(s)
Phosphoric Monoester Hydrolases , Phytophthora , Phosphoric Monoester Hydrolases/metabolism , Proteins/metabolism , Phytophthora/chemistry , Phytophthora/metabolism , Plants/metabolism , Protein Processing, Post-Translational , Protein Phosphatase 2/metabolism , Plant Diseases
6.
Proc Natl Acad Sci U S A ; 118(38)2021 09 21.
Article in English | MEDLINE | ID: mdl-34531323

ABSTRACT

Receptor kinases (RKs) are fundamental for extracellular sensing and regulate development and stress responses across kingdoms. In plants, leucine-rich repeat receptor kinases (LRR-RKs) are primarily peptide receptors that regulate responses to myriad internal and external stimuli. Phosphorylation of LRR-RK cytoplasmic domains is among the earliest responses following ligand perception, and reciprocal transphosphorylation between a receptor and its coreceptor is thought to activate the receptor complex. Originally proposed based on characterization of the brassinosteroid receptor, the prevalence of complex activation via reciprocal transphosphorylation across the plant RK family has not been tested. Using the LRR-RK ELONGATION FACTOR TU RECEPTOR (EFR) as a model, we set out to understand the steps critical for activating RK complexes. While the EFR cytoplasmic domain is an active protein kinase in vitro and is phosphorylated in a ligand-dependent manner in vivo, catalytically deficient EFR variants are functional in antibacterial immunity. These results reveal a noncatalytic role for EFR in triggering immune signaling and indicate that reciprocal transphoshorylation is not a ubiquitous requirement for LRR-RK complex activation. Rather, our analysis of EFR along with a detailed survey of the literature suggests a distinction between LRR-RKs with RD- versus non-RD protein kinase domains. Based on newly identified phosphorylation sites that regulate the activation state of the EFR complex in vivo, we propose that LRR-RK complexes containing a non-RD protein kinase may be regulated by phosphorylation-dependent conformational changes of the ligand-binding receptor, which could initiate signaling either allosterically or through driving the dissociation of negative regulators of the complex.


Subject(s)
Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Plant Immunity/physiology , Receptors, Pattern Recognition/genetics , Receptors, Pattern Recognition/metabolism , Arabidopsis/genetics , Cell Membrane/metabolism , Gene Expression , Immunity, Innate/genetics , Ligands , Peptide Elongation Factor Tu/metabolism , Phosphorylation , Plant Immunity/genetics , Plants, Genetically Modified/metabolism , Protein Binding , Protein Domains , Protein Kinases/metabolism , Protein Serine-Threonine Kinases , Signal Transduction/physiology
7.
PLoS Biol ; 19(8): e3001136, 2021 08.
Article in English | MEDLINE | ID: mdl-34424903

ABSTRACT

In plants, nucleotide-binding domain and leucine-rich repeat (NLR)-containing proteins can form receptor networks to confer hypersensitive cell death and innate immunity. One class of NLRs, known as NLR required for cell death (NRCs), are central nodes in a complex network that protects against multiple pathogens and comprises up to half of the NLRome of solanaceous plants. Given the prevalence of this NLR network, we hypothesised that pathogens convergently evolved to secrete effectors that target NRC activities. To test this, we screened a library of 165 bacterial, oomycete, nematode, and aphid effectors for their capacity to suppress the cell death response triggered by the NRC-dependent disease resistance proteins Prf and Rpi-blb2. Among 5 of the identified suppressors, 1 cyst nematode protein and 1 oomycete protein suppress the activity of autoimmune mutants of NRC2 and NRC3, but not NRC4, indicating that they specifically counteract a subset of NRC proteins independently of their sensor NLR partners. Whereas the cyst nematode effector SPRYSEC15 binds the nucleotide-binding domain of NRC2 and NRC3, the oomycete effector AVRcap1b suppresses the response of these NRCs via the membrane trafficking-associated protein NbTOL9a (Target of Myb 1-like protein 9a). We conclude that plant pathogens have evolved to counteract central nodes of the NRC immune receptor network through different mechanisms. Coevolution with pathogen effectors may have driven NRC diversification into functionally redundant nodes in a massively expanded NLR network.


Subject(s)
Biological Evolution , Helminth Proteins/physiology , Host-Pathogen Interactions/physiology , NLR Proteins/physiology , Solanaceae/microbiology , Cell Death , Disease Resistance
8.
Elife ; 102021 07 21.
Article in English | MEDLINE | ID: mdl-34288868

ABSTRACT

A subset of plant NLR immune receptors carry unconventional integrated domains in addition to their canonical domain architecture. One example is rice Pik-1 that comprises an integrated heavy metal-associated (HMA) domain. Here, we reconstructed the evolutionary history of Pik-1 and its NLR partner, Pik-2, and tested hypotheses about adaptive evolution of the HMA domain. Phylogenetic analyses revealed that the HMA domain integrated into Pik-1 before Oryzinae speciation over 15 million years ago and has been under diversifying selection. Ancestral sequence reconstruction coupled with functional studies showed that two Pik-1 allelic variants independently evolved from a weakly binding ancestral state to high-affinity binding of the blast fungus effector AVR-PikD. We conclude that for most of its evolutionary history the Pik-1 HMA domain did not sense AVR-PikD, and that different Pik-1 receptors have recently evolved through distinct biochemical paths to produce similar phenotypic outcomes. These findings highlight the dynamic nature of the evolutionary mechanisms underpinning NLR adaptation to plant pathogens.


Subject(s)
Fungi/immunology , Oryza/genetics , Oryza/immunology , Plant Diseases/immunology , Receptors, Immunologic/metabolism , Alleles , Genes, Plant/genetics , Genotype , Host-Pathogen Interactions/genetics , Host-Pathogen Interactions/immunology , Metals, Heavy , Models, Molecular , Phylogeny , Plant Diseases/microbiology , Plant Proteins , Protein Domains , Sequence Alignment , Sequence Analysis, Protein
9.
Plant Cell ; 33(5): 1447-1471, 2021 07 02.
Article in English | MEDLINE | ID: mdl-33677602

ABSTRACT

Pathogens modulate plant cell structure and function by secreting effectors into host tissues. Effectors typically function by associating with host molecules and modulating their activities. This study aimed to identify the host processes targeted by the RXLR class of host-translocated effectors of the potato blight pathogen Phytophthora infestans. To this end, we performed an in planta protein-protein interaction screen by transiently expressing P. infestans RXLR effectors in Nicotiana benthamiana leaves followed by coimmunoprecipitation and liquid chromatography-tandem mass spectrometry. This screen generated an effector-host protein interactome matrix of 59 P. infestans RXLR effectors x 586 N. benthamiana proteins. Classification of the host interactors into putative functional categories revealed over 35 biological processes possibly targeted by P. infestans. We further characterized the PexRD12/31 family of RXLR-WY effectors, which associate and colocalize with components of the vesicle trafficking machinery. One member of this family, PexRD31, increased the number of FYVE positive vesicles in N. benthamiana cells. FYVE positive vesicles also accumulated in leaf cells near P. infestans hyphae, indicating that the pathogen may enhance endosomal trafficking during infection. This interactome dataset will serve as a useful resource for functional studies of P. infestans effectors and of effector-targeted host processes.


Subject(s)
Host-Pathogen Interactions/physiology , Phytophthora infestans/physiology , Proteins/metabolism , Transport Vesicles/metabolism , Cell Membrane/metabolism , Endosomes/metabolism , Plant Diseases/microbiology , Plant Proteins/metabolism , Protein Interaction Maps , SNARE Proteins/metabolism , Nicotiana/metabolism , Nicotiana/microbiology
10.
Nat Commun ; 11(1): 5299, 2020 10 20.
Article in English | MEDLINE | ID: mdl-33082345

ABSTRACT

Parasitic plants of the genus Cuscuta penetrate shoots of host plants with haustoria and build a connection to the host vasculature to exhaust water, solutes and carbohydrates. Such infections usually stay unrecognized by the host and lead to harmful host plant damage. Here, we show a molecular mechanism of how plants can sense parasitic Cuscuta. We isolated an 11 kDa protein of the parasite cell wall and identified it as a glycine-rich protein (GRP). This GRP, as well as its minimal peptide epitope Crip21, serve as a pathogen-associated molecular pattern and specifically bind and activate a membrane-bound immune receptor of tomato, the Cuscuta Receptor 1 (CuRe1), leading to defense responses in resistant hosts. These findings provide the initial steps to understand the resistance mechanisms against parasitic plants and further offer great potential for protecting crops by engineering resistance against parasitic plants.


Subject(s)
Cell Wall/metabolism , Cuscuta/metabolism , Plant Diseases/parasitology , Plant Proteins/metabolism , Solanum lycopersicum/metabolism , Solanum lycopersicum/parasitology , Cell Wall/genetics , Cuscuta/genetics , Gene Expression Regulation, Plant , Host-Parasite Interactions , Solanum lycopersicum/genetics , Plant Diseases/genetics , Plant Proteins/genetics
11.
Cell Host Microbe ; 27(5): 769-781.e6, 2020 05 13.
Article in English | MEDLINE | ID: mdl-32234500

ABSTRACT

The Arabidopsis immune receptors RPS4 and RRS1 interact to co-confer responsiveness to bacterial effectors. The RRS1-R allele, with RPS4, responds to AvrRps4 and PopP2, whereas RRS1-S responds only to AvrRps4. Here, we show that the C terminus of RRS1-R but not RRS1-S is phosphorylated. Phosphorylation at Thr1214 in the WRKY domain maintains RRS1-R in its inactive state and also inhibits acetylation of RRS1-R by PopP2. PopP2 in turn catalyzes O-acetylation at the same site, thereby preventing its phosphorylation. Phosphorylation at other sites is required for PopP2 but not AvrRps4 responsiveness and facilitates the interaction of RRS1's C terminus with its TIR domain. Derepression of RRS1-R or RRS1-S involves effector-triggered proximity between their TIR domain and C termini. This effector-promoted interaction between these domains relieves inhibition of TIRRPS4 by TIRRRS1. Our data reveal effector-triggered and phosphorylation-regulated conformational changes within RRS1 that results in distinct modes of derepression of the complex by PopP2 and AvrRps4.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/immunology , Arabidopsis/metabolism , Receptors, Immunologic/metabolism , Arabidopsis/genetics , Arabidopsis Proteins/chemistry , Arabidopsis Proteins/genetics , Base Sequence , Disease Resistance/immunology , Disease Resistance/physiology , Phosphorylation , Plant Diseases/immunology , Plant Immunity/genetics , Plant Immunity/physiology , Plant Proteins , Plants, Genetically Modified , Receptors, Immunologic/genetics , Nicotiana/genetics
12.
Nature ; 574(7778): 423-427, 2019 10.
Article in English | MEDLINE | ID: mdl-31597961

ABSTRACT

The blast fungus Magnaporthe oryzae gains entry to its host plant by means of a specialized pressure-generating infection cell called an appressorium, which physically ruptures the leaf cuticle1,2. Turgor is applied as an enormous invasive force by septin-mediated reorganization of the cytoskeleton and actin-dependent protrusion of a rigid penetration hypha3. However, the molecular mechanisms that regulate the generation of turgor pressure during appressorium-mediated infection of plants remain poorly understood. Here we show that a turgor-sensing histidine-aspartate kinase, Sln1, enables the appressorium to sense when a critical turgor threshold has been reached and thereby facilitates host penetration. We found that the Sln1 sensor localizes to the appressorium pore in a pressure-dependent manner, which is consistent with the predictions of a mathematical model for plant infection. A Δsln1 mutant generates excess intracellular appressorium turgor, produces hyper-melanized non-functional appressoria and does not organize the septins and polarity determinants that are required for leaf infection. Sln1 acts in parallel with the protein kinase C cell-integrity pathway as a regulator of cAMP-dependent signalling by protein kinase A. Pkc1 phosphorylates the NADPH oxidase regulator NoxR and, collectively, these signalling pathways modulate appressorium turgor and trigger the generation of invasive force to cause blast disease.


Subject(s)
Ascomycota/metabolism , Oryza/microbiology , Plant Diseases/microbiology , Plant Proteins/metabolism , Fungal Proteins/metabolism , Hyphae , NADPH Oxidases/metabolism , Oryza/physiology
13.
Elife ; 82019 09 16.
Article in English | MEDLINE | ID: mdl-31524595

ABSTRACT

In plants, antimicrobial immune responses involve the cellular release of anions and are responsible for the closure of stomatal pores. Detection of microbe-associated molecular patterns (MAMPs) by pattern recognition receptors (PRRs) induces currents mediated via slow-type (S-type) anion channels by a yet not understood mechanism. Here, we show that stomatal closure to fungal chitin is conferred by the major PRRs for chitin recognition, LYK5 and CERK1, the receptor-like cytoplasmic kinase PBL27, and the SLAH3 anion channel. PBL27 has the capacity to phosphorylate SLAH3, of which S127 and S189 are required to activate SLAH3. Full activation of the channel entails CERK1, depending on PBL27. Importantly, both S127 and S189 residues of SLAH3 are required for chitin-induced stomatal closure and anti-fungal immunity at the whole leaf level. Our results demonstrate a short signal transduction module from MAMP recognition to anion channel activation, and independent of ABA-induced SLAH3 activation.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/immunology , Gene Expression Regulation, Plant , Ion Channels/metabolism , Plant Stomata/physiology , Protein Kinases/metabolism , Arabidopsis/drug effects , Chitin/immunology , Fungi/chemistry , Plant Stomata/drug effects , Protein Serine-Threonine Kinases/metabolism , Receptors, Pattern Recognition/metabolism
14.
PLoS Biol ; 17(7): e3000373, 2019 07.
Article in English | MEDLINE | ID: mdl-31329577

ABSTRACT

Autophagy-related protein 8 (ATG8) is a highly conserved ubiquitin-like protein that modulates autophagy pathways by binding autophagic membranes and a number of proteins, including cargo receptors and core autophagy components. Throughout plant evolution, ATG8 has expanded from a single protein in algae to multiple isoforms in higher plants. However, the degree to which ATG8 isoforms have functionally specialized to bind distinct proteins remains unclear. Here, we describe a comprehensive protein-protein interaction resource, obtained using in planta immunoprecipitation (IP) followed by mass spectrometry (MS), to define the potato ATG8 interactome. We discovered that ATG8 isoforms bind distinct sets of plant proteins with varying degrees of overlap. This prompted us to define the biochemical basis of ATG8 specialization by comparing two potato ATG8 isoforms using both in vivo protein interaction assays and in vitro quantitative binding affinity analyses. These experiments revealed that the N-terminal ß-strand-and, in particular, a single amino acid polymorphism-underpins binding specificity to the substrate PexRD54 by shaping the hydrophobic pocket that accommodates this protein's ATG8-interacting motif (AIM). Additional proteomics experiments indicated that the N-terminal ß-strand shapes the broader ATG8 interactor profiles, defining interaction specificity with about 80 plant proteins. Our findings are consistent with the view that ATG8 isoforms comprise a layer of specificity in the regulation of selective autophagy pathways in plants.


Subject(s)
Autophagy-Related Protein 8 Family/metabolism , Autophagy , Plant Proteins/metabolism , Plants/metabolism , Autophagy-Related Protein 8 Family/chemistry , Autophagy-Related Protein 8 Family/genetics , Immunoprecipitation/methods , Mass Spectrometry/methods , Phylogeny , Plant Proteins/chemistry , Plant Proteins/genetics , Plants/classification , Plants/genetics , Plants, Genetically Modified , Protein Binding , Protein Conformation, beta-Strand , Protein Isoforms/chemistry , Protein Isoforms/genetics , Protein Isoforms/metabolism , Proteomics/methods , Solanum tuberosum/genetics , Solanum tuberosum/metabolism , Nicotiana/genetics , Nicotiana/metabolism
15.
New Phytol ; 221(4): 2160-2175, 2019 03.
Article in English | MEDLINE | ID: mdl-30300945

ABSTRACT

Plant immunity consists of two arms: pathogen-associated molecular pattern (PAMP)-triggered immunity (PTI), induced by surface-localized receptors, and effector-triggered immunity (ETI), induced by intracellular receptors. Despite the little structural similarity, both receptor types activate similar responses with different dynamics. To better understand phosphorylation events during ETI, we employed a phosphoproteomic screen using an inducible expression system of the bacterial effector avrRpt2 in Arabidopsis thaliana, and identified 109 differentially phosphorylated residues of membrane-associated proteins on activation of the intracellular RPS2 receptor. Interestingly, several RPS2-regulated phosphosites overlap with sites that are regulated during PTI, suggesting that these phosphosites may be convergent points of both signaling arms. Moreover, some of these sites are residues of important defense components, including the NADPH oxidase RBOHD, ABC-transporter PEN3, calcium-ATPase ACA8, noncanonical Gα protein XLG2 and H+ -ATPases. In particular, we found that S343 and S347 of RBOHD are common phosphorylation targets during PTI and ETI. Our mutational analyses showed that these sites are required for the production of reactive oxygen species during both PTI and ETI, and immunity against avirulent bacteria and a virulent necrotrophic fungus. We provide, for the first time, large-scale phosphoproteomic data of ETI, thereby suggesting crucial roles of common phosphosites in plant immunity.


Subject(s)
Arabidopsis/metabolism , Pathogen-Associated Molecular Pattern Molecules/metabolism , Phosphoproteins/metabolism , Plant Immunity , Proteomics , Arabidopsis/genetics , Arabidopsis/microbiology , Arabidopsis Proteins/metabolism , Autoimmunity/genetics , Gene Expression Regulation, Plant , Mutation/genetics , Phenotype , Phosphorylation , Plant Immunity/genetics , Proton-Translocating ATPases/metabolism , Pseudomonas syringae/physiology , Reactive Oxygen Species/metabolism , Virulence
16.
Nature ; 563(7733): E30, 2018 11.
Article in English | MEDLINE | ID: mdl-30333630

ABSTRACT

In Extended Data Fig. 5d of this Letter, the blots for anti-pS612 and anti-BAK1 were inadvertently duplicated. This figure has been corrected online.

17.
Nature ; 561(7722): 248-252, 2018 09.
Article in English | MEDLINE | ID: mdl-30177827

ABSTRACT

Multicellular organisms use cell-surface receptor kinases to sense and process extracellular signals. Many plant receptor kinases are activated by the formation of ligand-induced complexes with shape-complementary co-receptors1. The best-characterized co-receptor is BRASSINOSTEROID INSENSITIVE 1-ASSOCIATED KINASE 1 (BAK1), which associates with numerous leucine-rich repeat receptor kinases (LRR-RKs) to control immunity, growth and development2. Here we report key regulatory events that control the function of BAK1 and, more generally, LRR-RKs. Through a combination of phosphoproteomics and targeted mutagenesis, we identified conserved phosphosites that are required for the immune function of BAK1 in Arabidopsis thaliana. Notably, these phosphosites are not required for BAK1-dependent brassinosteroid-regulated growth. In addition to revealing a critical role for the phosphorylation of the BAK1 C-terminal tail, we identified a conserved tyrosine phosphosite that may be required for the function of the majority of Arabidopsis LRR-RKs, and which separates them into two distinct functional classes based on the presence or absence of this tyrosine. Our results suggest a phosphocode-based dichotomy of BAK1 function in plant signalling, and provide insights into receptor kinase activation that have broad implications for our understanding of how plants respond to their changing environment.


Subject(s)
Arabidopsis Proteins/chemistry , Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Protein Serine-Threonine Kinases/chemistry , Protein Serine-Threonine Kinases/metabolism , Signal Transduction/immunology , Arabidopsis/chemistry , Arabidopsis/immunology , Arabidopsis Proteins/immunology , Ligands , Models, Molecular , Phosphorylation , Phosphotyrosine/metabolism , Plant Immunity , Protein Serine-Threonine Kinases/immunology
18.
New Phytol ; 220(1): 232-248, 2018 10.
Article in English | MEDLINE | ID: mdl-30156022

ABSTRACT

The oomycete pathogen Hyaloperonospora arabidopsidis (Hpa) causes downy mildew disease on Arabidopsis. To colonize its host, Hpa translocates effector proteins that suppress plant immunity into infected host cells. Here, we investigate the relevance of the interaction between one of these effectors, HaRxL106, and Arabidopsis RADICAL-INDUCED CELL DEATH1 (RCD1). We use pathogen infection assays as well as molecular and biochemical analyses to test the hypothesis that HaRxL106 manipulates RCD1 to attenuate transcriptional activation of defense genes. We report that HaRxL106 suppresses transcriptional activation of salicylic acid (SA)-induced defense genes and alters plant growth responses to light. HaRxL106-mediated suppression of immunity is abolished in RCD1 loss-of-function mutants. We report that RCD1-type proteins are phosphorylated, and we identified Mut9-like kinases (MLKs), which function as phosphoregulatory nodes at the level of photoreceptors, as RCD1-interacting proteins. An mlk1,3,4 triple mutant exhibits stronger SA-induced defense marker gene expression compared with wild-type plants, suggesting that MLKs also affect transcriptional regulation of SA signaling. Based on the combined evidence, we hypothesize that nuclear RCD1/MLK complexes act as signaling nodes that integrate information from environmental cues and pathogen sensors, and that the Arabidopsis downy mildew pathogen targets RCD1 to prevent activation of plant immunity.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/immunology , Arabidopsis/microbiology , Nuclear Proteins/metabolism , Oomycetes/metabolism , Plant Immunity , Proteins/metabolism , ADP Ribose Transferases/metabolism , Arabidopsis/drug effects , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Gene Expression Regulation, Plant/radiation effects , Mutation/genetics , Nuclear Proteins/genetics , Oomycetes/drug effects , Oomycetes/isolation & purification , Oomycetes/pathogenicity , Plant Diseases/microbiology , Plant Immunity/drug effects , Plants, Genetically Modified , Protein Domains , Protein Multimerization/drug effects , Salicylic Acid/pharmacology , Signal Transduction/radiation effects , Transcription, Genetic/drug effects , Virulence/drug effects
19.
PLoS Pathog ; 12(8): e1005811, 2016 08.
Article in English | MEDLINE | ID: mdl-27494702

ABSTRACT

Plants recognize pathogen-associated molecular patterns (PAMPs) via cell surface-localized pattern recognition receptors (PRRs), leading to PRR-triggered immunity (PTI). The Arabidopsis cytoplasmic kinase BIK1 is a downstream substrate of several PRR complexes. How plant PTI is negatively regulated is not fully understood. Here, we identify the protein phosphatase PP2C38 as a negative regulator of BIK1 activity and BIK1-mediated immunity. PP2C38 dynamically associates with BIK1, as well as with the PRRs FLS2 and EFR, but not with the co-receptor BAK1. PP2C38 regulates PAMP-induced BIK1 phosphorylation and impairs the phosphorylation of the NADPH oxidase RBOHD by BIK1, leading to reduced oxidative burst and stomatal immunity. Upon PAMP perception, PP2C38 is phosphorylated on serine 77 and dissociates from the FLS2/EFR-BIK1 complexes, enabling full BIK1 activation. Together with our recent work on the control of BIK1 turnover, this study reveals another important regulatory mechanism of this central immune component.


Subject(s)
Arabidopsis Proteins/immunology , Arabidopsis/immunology , Phosphoprotein Phosphatases/immunology , Plant Immunity/physiology , Protein Serine-Threonine Kinases/immunology , Arabidopsis/genetics , Arabidopsis Proteins/genetics , NADPH Oxidases/genetics , NADPH Oxidases/immunology , Phosphoprotein Phosphatases/genetics , Phosphorylation/genetics , Phosphorylation/immunology , Protein Kinases/genetics , Protein Kinases/immunology , Protein Serine-Threonine Kinases/genetics
20.
Front Plant Sci ; 7: 97, 2016.
Article in English | MEDLINE | ID: mdl-26925067

ABSTRACT

Plant cells secrete a wide range of proteins in extracellular spaces in response to pathogen attack. The poplar rust-induced secreted protein (RISP) is a small cationic protein of unknown function that was identified as the most induced gene in poplar leaves during immune responses to the leaf rust pathogen Melampsora larici-populina, an obligate biotrophic parasite. Here, we combined in planta and in vitro molecular biology approaches to tackle the function of RISP. Using a RISP-mCherry fusion transiently expressed in Nicotiana benthamiana leaves, we demonstrated that RISP is secreted into the apoplast. A recombinant RISP specifically binds to M. larici-populina urediniospores and inhibits their germination. It also arrests the growth of the fungus in vitro and on poplar leaves. Interestingly, RISP also triggers poplar cell culture alkalinisation and is cleaved at the C-terminus by a plant-encoded mechanism. Altogether our results indicate that RISP is an antifungal protein that has the ability to trigger cellular responses.

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