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1.
J Agric Food Chem ; 72(26): 14581-14591, 2024 Jul 03.
Article in English | MEDLINE | ID: mdl-38957087

ABSTRACT

Plants withstand pathogen attacks by recruiting beneficial bacteria to the rhizosphere and passing their legacy on to the next generation. However, the underlying mechanisms involved in this process remain unclear. In our study, we combined microbiomic and transcriptomic analyses to reveal how the rhizosphere microbiome assembled through multiple generations and defense-related genes expressed in Arabidopsis thaliana under pathogen attack stress. Our results showed that continuous exposure to the pathogen Pseudomonas syringae pv tomato DC3000 led to improved growth and increased disease resistance in a third generation of rps2 mutant Arabidopsis thaliana. It could be attributed to the enrichment of specific rhizosphere bacteria, such as Bacillus and Bacteroides. Pathways associated with plant immunity and growth in A. thaliana, such as MAPK signaling pathways, phytohormone signal transduction, ABC transporter proteins, and flavonoid biosynthesis, were activated under the influence of rhizosphere bacterial communities. Our findings provide a scientific basis for explaining the relationship between beneficial microbes and defense-related gene expression. Understanding microbial communities and the mechanisms involved in plant responses to disease can contribute to better plant management and reduction of pesticide use.


Subject(s)
Arabidopsis , Disease Resistance , Plant Diseases , Pseudomonas syringae , Rhizosphere , Arabidopsis/microbiology , Arabidopsis/genetics , Arabidopsis/immunology , Plant Diseases/microbiology , Plant Diseases/genetics , Plant Diseases/immunology , Disease Resistance/genetics , Microbiota , Bacteria/genetics , Bacteria/classification , Bacteria/metabolism , Bacteria/isolation & purification , Soil Microbiology , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Adaptation, Physiological , Plant Roots/microbiology , Plant Roots/genetics , Plant Roots/immunology , Plant Roots/metabolism , Gene Expression Regulation, Plant
2.
Proc Natl Acad Sci U S A ; 121(25): e2312415121, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38875149

ABSTRACT

Plants rely on immune receptor complexes at the cell surface to perceive microbial molecules and transduce these signals into the cell to regulate immunity. Various immune receptors and associated proteins are often dynamically distributed in specific nanodomains on the plasma membrane (PM). However, the exact molecular mechanism and functional relevance of this nanodomain targeting in plant immunity regulation remain largely unknown. By utilizing high spatiotemporal resolution imaging and single-particle tracking analysis, we show that myosin XIK interacts with remorin to recruit and stabilize PM-associated kinase BOTRYTIS-INDUCED KINASE 1 (BIK1) within immune receptor FLAGELLIN SENSING 2 (FLS2)-containing nanodomains. This recruitment facilitates FLS2/BIK1 complex formation, leading to the full activation of BIK1-dependent defense responses upon ligand perception. Collectively, our findings provide compelling evidence that myosin XI functions as a molecular scaffold to enable a spatially confined complex assembly within nanodomains. This ensures the presence of a sufficient quantity of preformed immune receptor complex for efficient signaling transduction from the cell surface.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Immunity, Innate , Myosins , Plant Immunity , Protein Serine-Threonine Kinases , Arabidopsis/immunology , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Cell Membrane/metabolism , Myosins/metabolism , Plant Diseases/immunology , Plant Diseases/microbiology , Protein Kinases/metabolism , Protein Serine-Threonine Kinases/metabolism , Signal Transduction
3.
Elife ; 122024 Jun 18.
Article in English | MEDLINE | ID: mdl-38896460

ABSTRACT

The abscission of floral organs and emergence of lateral roots in Arabidopsis is regulated by the peptide ligand inflorescence deficient in abscission (IDA) and the receptor protein kinases HAESA (HAE) and HAESA-like 2 (HSL2). During these cell separation processes, the plant induces defense-associated genes to protect against pathogen invasion. However, the molecular coordination between abscission and immunity has not been thoroughly explored. Here, we show that IDA induces a release of cytosolic calcium ions (Ca2+) and apoplastic production of reactive oxygen species, which are signatures of early defense responses. In addition, we find that IDA promotes late defense responses by the transcriptional upregulation of genes known to be involved in immunity. When comparing the IDA induced early immune responses to known immune responses, such as those elicited by flagellin22 treatment, we observe both similarities and differences. We propose a molecular mechanism by which IDA promotes signatures of an immune response in cells destined for separation to guard them from pathogen attack.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Gene Expression Regulation, Plant , Plant Immunity , Arabidopsis/immunology , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Reactive Oxygen Species/metabolism , Calcium/metabolism
4.
Mol Plant Pathol ; 25(6): e13483, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38829344

ABSTRACT

As a universal second messenger, cytosolic calcium (Ca2+) functions in multifaceted intracellular processes, including growth, development and responses to biotic/abiotic stresses in plant. The plant-specific Ca2+ sensors, calmodulin and calmodulin-like (CML) proteins, function as members of the second-messenger system to transfer Ca2+ signal into downstream responses. However, the functions of CMLs in the responses of cotton (Gossypium spp.) after Verticillium dahliae infection, which causes the serious vascular disease Verticillium wilt, remain elusive. Here, we discovered that the expression level of GbCML45 was promoted after V. dahliae infection in roots of cotton, suggesting its potential role in Verticillium wilt resistance. We found that knockdown of GbCML45 in cotton plants decreased resistance while overexpression of GbCML45 in Arabidopsis thaliana plants enhanced resistance to V. dahliae infection. Furthermore, there was physiological interaction between GbCML45 and its close homologue GbCML50 by using yeast two-hybrid and bimolecular fluorescence assays, and both proteins enhanced cotton resistance to V. dahliae infection in a Ca2+-dependent way in a knockdown study. Detailed investigations indicated that several defence-related pathways, including salicylic acid, ethylene, reactive oxygen species and nitric oxide signalling pathways, as well as accumulations of lignin and callose, are responsible for GbCML45- and GbCML50-modulated V. dahliae resistance in cotton. These results collectively indicated that GbCML45 and GbCML50 act as positive regulators to improve cotton Verticillium wilt resistance, providing potential targets for exploitation of improved Verticillium wilt-tolerant cotton cultivars by genetic engineering and molecular breeding.


Subject(s)
Calcium , Disease Resistance , Gossypium , Plant Diseases , Plant Proteins , Gossypium/microbiology , Gossypium/genetics , Gossypium/metabolism , Gossypium/immunology , Disease Resistance/genetics , Plant Diseases/microbiology , Plant Proteins/metabolism , Plant Proteins/genetics , Calcium/metabolism , Gene Expression Regulation, Plant , Calmodulin/metabolism , Calmodulin/genetics , Arabidopsis/microbiology , Arabidopsis/genetics , Arabidopsis/immunology , Arabidopsis/metabolism , Ascomycota/physiology , Ascomycota/pathogenicity , Plants, Genetically Modified , Verticillium/physiology , Verticillium/pathogenicity
5.
Nat Commun ; 15(1): 5102, 2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38877009

ABSTRACT

Tomato (Solanum lycopersicum) is one of the world's most important food crops, and as such, its production needs to be protected from infectious diseases that can significantly reduce yield and quality. Here, we survey the effector-triggered immunity (ETI) landscape of tomato against the bacterial pathogen Pseudomonas syringae. We perform comprehensive ETI screens in five cultivated tomato varieties and two wild relatives, as well as an immunodiversity screen on a collection of 149 tomato varieties that includes both wild and cultivated varieties. The screens reveal a tomato ETI landscape that is more limited than what was previously found in the model plant Arabidopsis thaliana. We also demonstrate that ETI eliciting effectors can protect tomato against P. syringae infection when the effector is delivered by a non-virulent strain either prior to or simultaneously with a virulent strain. Overall, our findings provide a snapshot of the ETI landscape of tomatoes and demonstrate that ETI can be used as a biocontrol treatment to protect crop plants.


Subject(s)
Plant Diseases , Plant Immunity , Pseudomonas syringae , Solanum lycopersicum , Solanum lycopersicum/microbiology , Solanum lycopersicum/immunology , Pseudomonas syringae/immunology , Pseudomonas syringae/pathogenicity , Plant Diseases/microbiology , Plant Diseases/immunology , Arabidopsis/immunology , Arabidopsis/microbiology , Plant Proteins/immunology , Virulence , Gene Expression Regulation, Plant , Bacterial Proteins/metabolism , Bacterial Proteins/immunology
6.
PLoS One ; 19(6): e0297124, 2024.
Article in English | MEDLINE | ID: mdl-38833485

ABSTRACT

In this research, a high-throughput RNA sequencing-based transcriptome analysis technique (RNA-Seq) was used to evaluate differentially expressed genes (DEGs) in the wild type Arabidopsis seedlings in response to AtPep1, a well-known peptide representing an endogenous damage-associated molecular pattern (DAMP), and flg22, a well-known microbe-associated molecular pattern (MAMP). We compared and dissected the global transcriptional landscape of Arabidopsis thaliana in response to AtPep1 and flg22 and could identify shared and unique DEGs in response to these elicitors. We found that while a remarkable number of flg22 up-regulated genes were also induced by AtPep1, 256 genes were exclusively up-regulated in response to flg22, and 328 were exclusively up-regulated in response to AtPep1. Furthermore, among down-regulated DEGs upon flg22 treatment, 107 genes were exclusively down-regulated by flg22 treatment, while 411 genes were exclusively down-regulated by AtPep1. We found a number of hitherto overlooked genes to be induced upon treatment with either flg22 or with AtPep1, indicating their possible involvement general pathways in innate immunity. Here, we characterized two of them, namely PP2-B13 and ACLP1. pp2-b13 and aclp1 mutants showed increased susceptibility to infection by the virulent pathogen Pseudomonas syringae DC3000 and its mutant Pst DC3000 hrcC (lacking the type III secretion system), as evidenced by increased proliferation of the two pathogens in planta. Further, we present evidence that the aclp1 mutant is deficient in ethylene production upon flg22 treatment, while the pp2-b13 mutant is deficient in the production of reactive oxygen species (ROS). The results from this research provide new information for a better understanding of the immune system in Arabidopsis.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Gene Expression Regulation, Plant , Arabidopsis/genetics , Arabidopsis/immunology , Arabidopsis/microbiology , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Plant Immunity/genetics , RNA-Seq/methods , Pseudomonas syringae/pathogenicity , Gene Expression Profiling , Innate Immunity Recognition
7.
Plant Mol Biol ; 114(3): 68, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38842571

ABSTRACT

Alternaria leaf blight (ALB), caused by a necrotrophic fungus Alternaria brassicae is a serious disease of oleiferous Brassicas resulting in significant yield losses worldwide. No robust resistance against A. brassicae has been identified in the Brassicas. Natural accessions of Arabidopsis show a spectrum of responses to A. brassicae ranging from high susceptibility to complete resistance. To understand the molecular mechanisms of resistance/ susceptibility, we analysed the comparative changes in the transcriptome profile of Arabidopsis accessions with contrasting responses- at different time points post-infection. Differential gene expression, GO enrichment, pathway enrichment, and weighted gene co-expression network analysis (WGCNA) revealed reprogramming of phenylpropanoid biosynthetic pathway involving lignin, hydroxycinnamic acids, scopoletin, anthocyanin genes to be highly associated with resistance against A. brassicae. T-DNA insertion mutants deficient in the biosynthesis of coumarin scopoletin exhibited enhanced susceptibility to A. brassicae. The supplementation of scopoletin to medium or exogenous application resulted in a significant reduction in the A. brassicae growth. Our study provides new insights into the transcriptome dynamics in A. brassicae-challenged Arabidopsis and demonstrates the involvement of coumarins in plant immunity against the Brassica pathogen A. brassicae.


Subject(s)
Alternaria , Arabidopsis , Disease Resistance , Gene Expression Regulation, Plant , Plant Diseases , Transcriptome , Arabidopsis/genetics , Arabidopsis/microbiology , Arabidopsis/immunology , Alternaria/physiology , Plant Diseases/microbiology , Plant Diseases/genetics , Plant Diseases/immunology , Disease Resistance/genetics , Scopoletin/metabolism , Gene Expression Profiling , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism
8.
Proc Natl Acad Sci U S A ; 121(23): e2319499121, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38814867

ABSTRACT

Plants and animals detect biomolecules termed microbe-associated molecular patterns (MAMPs) and induce immunity. Agricultural production is severely impacted by pathogens which can be controlled by transferring immune receptors. However, most studies use a single MAMP epitope and the impact of diverse multicopy MAMPs on immune induction is unknown. Here, we characterized the epitope landscape from five proteinaceous MAMPs across 4,228 plant-associated bacterial genomes. Despite the diversity sampled, natural variation was constrained and experimentally testable. Immune perception in both Arabidopsis and tomato depended on both epitope sequence and copy number variation. For example, Elongation Factor Tu is predominantly single copy, and 92% of its epitopes are immunogenic. Conversely, 99.9% of bacterial genomes contain multiple cold shock proteins, and 46% carry a nonimmunogenic form. We uncovered a mechanism for immune evasion, intrabacterial antagonism, where a nonimmunogenic cold shock protein blocks perception of immunogenic forms encoded in the same genome. These data will lay the foundation for immune receptor deployment and engineering based on natural variation.


Subject(s)
Arabidopsis , Epitopes , Solanum lycopersicum , Epitopes/immunology , Solanum lycopersicum/immunology , Solanum lycopersicum/genetics , Solanum lycopersicum/microbiology , Arabidopsis/immunology , Arabidopsis/genetics , Genome, Bacterial , Pathogen-Associated Molecular Pattern Molecules/immunology , Pathogen-Associated Molecular Pattern Molecules/metabolism , Plant Immunity/genetics , Plant Immunity/immunology , Peptide Elongation Factor Tu/genetics , Peptide Elongation Factor Tu/immunology , Bacterial Proteins/immunology , Bacterial Proteins/genetics , Bacteria/immunology , Bacteria/genetics , Cold Shock Proteins and Peptides/genetics , Cold Shock Proteins and Peptides/immunology , Cold Shock Proteins and Peptides/metabolism
9.
Gene ; 923: 148588, 2024 Sep 25.
Article in English | MEDLINE | ID: mdl-38763363

ABSTRACT

Polygalacturonase inhibitor protein (PGIP) restricts fungal growth and colonization and functions in plant immunity. Gray mold in cucumber is a common fungal disease caused by Botrytis cinerea, and is widespread and difficult to control in cucumber (Cucumis sativus L.) production. In this study, Cucumis sativus polygalacturonase-inhibiting protein 2 (CsPGIP2) was found to be upregulated in response to gray mold in cucumber. CsPGIP2 was detected in the endoplasmic reticulum, cell membrane, and cell wall after transient transformation of protoplasts and tobacco. A possible interaction between Botrytis cinerea polygalacturonase 3 (BcPG3) and CsPGIP2 was supported by protein interaction prediction and BiFC analysis. Transgenic Arabidopsis plants expressing CsPGIP2 were constructed and exhibited smaller areas of gray mold infection compared to wild type (WT) plants after simultaneous inoculation. Evans blue dye (EBD) confirmed greater damage for WT plants, with more intense dyeing than for the transgenic Arabidopsis. Interestingly, compared to WT, transgenic Arabidopsis exhibited higher superoxide dismutase (AtSOD1) expression, antioxidant enzyme activities, lignin content, net photosynthetic rate (Pn), and photochemical activity. Our results suggest that CsPGIP2 stimulates a variety of plant defense mechanisms to enhance transgenic Arabidopsis resistance against gray mold disease.


Subject(s)
Arabidopsis , Botrytis , Cucumis sativus , Disease Resistance , Plant Diseases , Plant Proteins , Plants, Genetically Modified , Cucumis sativus/microbiology , Cucumis sativus/genetics , Cucumis sativus/immunology , Arabidopsis/genetics , Arabidopsis/microbiology , Arabidopsis/immunology , Plant Diseases/microbiology , Plant Diseases/genetics , Plant Diseases/immunology , Botrytis/pathogenicity , Disease Resistance/genetics , Plants, Genetically Modified/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Gene Expression Regulation, Plant
10.
Plant Cell Rep ; 43(6): 149, 2024 May 23.
Article in English | MEDLINE | ID: mdl-38780624

ABSTRACT

KEY MESSAGE: The small-molecule glucosyltransferase loss-of-function mutant ugt76b1 exhibits both SID2- or NPR1-dependent and independent facets of enhanced plant immunity, whereupon FMO1 is required for the SID2 and NPR1 independence. The small-molecule glucosyltransferase UGT76B1 inactivates salicylic acid (SA), isoleucic acid (ILA), and N-hydroxypipecolic acid (NHP). ugt76b1 loss-of-function plants manifest an enhanced defense status. Thus, we were interested how UGT76B1 genetically integrates in defense pathways and whether all impacts depend on SA and NHP. We study the integration of UGT76B1 by transcriptome analyses of ugt76b1. The comparison of transcripts altered by the loss of UGT76B1 with public transcriptome data reveals both SA-responsive, ISOCHORISMATE SYNTHASE 1/SALICYLIC ACID INDUCTION DEFICIENT 2 (ICS1/SID2)- and NON EXPRESSOR OF PR GENES 1 (NPR1)-dependent, consistent with the role of UGT76B1 in glucosylating SA, and SA-non-responsive, SID2/NPR1-independent genes. We also discovered that UGT76B1 impacts on a group of genes showing non-SA-responsiveness and regulation by infections independent from SID2/NPR1. Enhanced resistance of ugt76b1 against Pseudomonas syringae is partially independent from SID2 and NPR1. In contrast, the ugt76b1-activated resistance is completely dependent on FMO1 encoding the NHP-synthesizing FLAVIN-DEPENDENT MONOOXYGENASE 1). Moreover, FMO1 ranks top among the ugt76b1-induced SID2- and NPR1-independent pathogen responsive genes, suggesting that FMO1 determines the SID2- and NPR1-independent effect of ugt76b1. Furthermore, the genetic study revealed that FMO1, ENHANCED DISEASE SUSCEPTIBILITY 1 (EDS1), SID2, and NPR1 are required for the SA-JA crosstalk and senescence development of ugt76b1, indicating that EDS1 and FMO1 have a similar effect like stress-induced SA biosynthesis (SID2) or the key SA signaling regulator NPR1. Thus, UGT76B1 influences both SID2/NPR1-dependent and independent plant immunity, and the SID2/NPR1 independence is relying on FMO1 and its product NHP, another substrate of UGT76B1.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Gene Expression Regulation, Plant , Glucosyltransferases , Salicylic Acid , Salicylic Acid/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Arabidopsis/genetics , Arabidopsis/microbiology , Arabidopsis/immunology , Arabidopsis/metabolism , Glucosyltransferases/genetics , Glucosyltransferases/metabolism , Plant Immunity/genetics , Pseudomonas syringae/pathogenicity , Pseudomonas syringae/physiology , Pipecolic Acids/metabolism , Plant Diseases/microbiology , Plant Diseases/genetics , Plant Diseases/immunology , Intramolecular Transferases/genetics , Intramolecular Transferases/metabolism
11.
New Phytol ; 242(6): 2787-2802, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38693568

ABSTRACT

Root-knot nematodes (RKN; Meloidogyne species) are plant pathogens that introduce several effectors in their hosts to facilitate infection. The actual targets and functioning mechanism of these effectors largely remain unexplored. This study illuminates the role and interplay of the Meloidogyne javanica nematode effector ROS suppressor (Mj-NEROSs) within the host plant environment. Mj-NEROSs suppresses INF1-induced cell death as well as flg22-induced callose deposition and reactive oxygen species (ROS) production. A transcriptome analysis highlighted the downregulation of ROS-related genes upon Mj-NEROSs expression. NEROSs interacts with the plant Rieske's iron-sulfur protein (ISP) as shown by yeast-two-hybrid and bimolecular fluorescence complementation. Secreted from the subventral pharyngeal glands into giant cells, Mj-NEROSs localizes in the plastids where it interacts with ISP, subsequently altering electron transport rates and ROS production. Moreover, our results demonstrate that isp Arabidopsis thaliana mutants exhibit increased susceptibility to M. javanica, indicating ISP importance for plant immunity. The interaction of a nematode effector with a plastid protein highlights the possible role of root plastids in plant defense, prompting many questions on the details of this process.


Subject(s)
Arabidopsis , Electron Transport Complex III , Plant Immunity , Plastids , Reactive Oxygen Species , Tylenchoidea , Reactive Oxygen Species/metabolism , Arabidopsis/parasitology , Arabidopsis/immunology , Arabidopsis/genetics , Tylenchoidea/physiology , Tylenchoidea/pathogenicity , Animals , Plastids/metabolism , Electron Transport Complex III/metabolism , Plant Diseases/parasitology , Plant Diseases/immunology , Helminth Proteins/metabolism , Helminth Proteins/genetics , Gene Expression Regulation, Plant , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Protein Binding , Mutation/genetics , Iron-Sulfur Proteins/metabolism , Iron-Sulfur Proteins/genetics
12.
Biochem Biophys Res Commun ; 717: 150049, 2024 Jul 12.
Article in English | MEDLINE | ID: mdl-38714014

ABSTRACT

Acquired osmotolerance induced by initial exposure to mild salt stress is widespread across Arabidopsis thaliana ecotypes, but the mechanism underlying it remains poorly understood. To clarify it, we isolated acquired osmotolerance-deficient 1 (aod1), a mutant highly sensitive to osmotic stress, from ion-beam-irradiated seeds of Zu-0, an ecotype known for its remarkably high osmotolerance. Aod1 showed growth inhibition with spotted necrotic lesions on the rosette leaves under normal growth conditions on soil. However, its tolerance to salt and oxidative stresses was similar to that of the wild type (WT). Genetic and genome sequencing analyses suggested that the gene causing aod1 is identical to CONSTITUTIVELY ACTIVATED CELL DEATH 1 (CAD1). Complementation with the WT CAD1 gene restored the growth and osmotolerance of aod1, indicating that mutated CAD1 is responsible for the observed phenotypes in aod1. Although CAD1 is known to act as a negative regulator of immune response, transcript levels in the WT increased in response to osmotic stress. Aod1 displayed enhanced immune response and cell death under normal growth conditions, whereas the expression profiles of osmotic response genes were comparable to those of the WT. These findings suggest that autoimmunity in aod1 is detrimental to osmotolerance. Overall, our results suggest that CAD1 negatively regulates immune responses under osmotic stress, contributing to osmotolerance in Arabidopsis.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Osmotic Pressure , Arabidopsis/genetics , Arabidopsis/immunology , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Gene Expression Regulation, Plant , Mutation , Plant Immunity/genetics
13.
Nat Commun ; 15(1): 3762, 2024 May 04.
Article in English | MEDLINE | ID: mdl-38704378

ABSTRACT

Plants initiate specific defense responses by recognizing conserved epitope peptides within the flagellin proteins derived from bacteria. Proteolytic cleavage of epitope peptides from flagellin by plant apoplastic proteases is thought to be crucial for the perception of the epitope by the plant receptor. However, the identity of the plant proteases involved in this process remains unknown. Here, we establish an efficient identification system for the target proteases in Arabidopsis apoplastic fluid; the method employs native two-dimensional electrophoresis followed by an in-gel proteolytic assay using a fluorescence-quenching peptide substrate. We designed a substrate to specifically detect proteolytic activity at the C-terminus of the flg22 epitope in flagellin and identified two plant subtilases, SBT5.2 and SBT1.7, as specific proteases responsible for the C-terminal cleavage of flg22. In the apoplastic fluid of Arabidopsis mutant plants deficient in these two proteases, we observe a decrease in the C-terminal cleavage of the flg22 domain from flagellin, leading to a decrease in the efficiency of flg22 epitope liberation. Consequently, defensive reactive oxygen species (ROS) production is delayed in sbt5.2 sbt1.7 double-mutant leaf disks compared to wild type following flagellin exposure.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Epitopes , Flagellin , Reactive Oxygen Species , Subtilisins , Arabidopsis/immunology , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/immunology , Epitopes/immunology , Epitopes/metabolism , Flagellin/metabolism , Flagellin/immunology , Mutation , Proteolysis , Reactive Oxygen Species/metabolism , Subtilisins/metabolism , Subtilisins/genetics
14.
C R Biol ; 347: 35-44, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38771313

ABSTRACT

In nature, plants defend themselves against pathogen attack by activating an arsenal of defense mechanisms. During the last decades, work mainly focused on the understanding of qualitative disease resistance mediated by a few genes conferring an almost complete resistance, while quantitative disease resistance (QDR) remains poorly understood despite the fact that it represents the predominant and more durable form of resistance in natural populations and crops. Here, we review our past and present work on the dissection of the complex mechanisms underlying QDR in Arabidopsis thaliana. The strategies, main steps and challenges of our studies related to one atypical QDR gene, RKS1 (Resistance related KinaSe 1), are presented. First, from genetic analyses by QTL (Quantitative Trait Locus) mapping and GWAs (Genome Wide Association studies), the identification, cloning and functional analysis of this gene have been used as a starting point for the exploration of the multiple and coordinated pathways acting together to mount the QDR response dependent on RKS1. Identification of RKS1 protein interactors and complexes was a first step, systems biology and reconstruction of protein networks were then used to decipher the molecular roadmap to the immune responses controlled by RKS1. Finally, exploration of the potential impact of key components of the RKS1-dependent gene network on leaf microbiota offers interesting and challenging perspectives to decipher how the plant immune systems interact with the microbial communities' systems.


Dans la nature, les plantes se défendent contre les attaques pathogènes en activant tout un arsenal de mécanismes de défense. Au cours des décennies passées, la recherche s'est principalement focalisée sur la compréhension de la résistance qualitative médiée par quelques gènes majeurs conférant une résistance quasi complète, alors que la résistance quantitative (QDR) demeure peu comprise bien qu'elle représente la forme de résistance prédominante et la plus durable dans les populations naturelles ou les cultures. Nous donnons ici une revue de nos travaux passés et présents sur la dissection des mécanismes complexes qui sous-tendent la QDR chez Arabidopsis thaliana. Les stratégies, étapes clés et défis de nos études concernant un gène QDR atypique, RKS1 (Resistance related KinaSe 1), sont rapportés. En premier lieu, à partir d'analyses génétiques par cartographie de QTL et GWA, l'identification, le clonage et l'analyse fonctionnelle de ce gène ont été utilisés comme point de départ à l'exploration des voies multiples et coordonnées agissant ensemble pour le développement de la réponse QDR dépendante de RKS1. L'identification des interacteurs et complexes protéiques impliquant RKS1 a été une première étape, la biologie des systèmes et la reconstruction de réseaux d'interactions protéines-protéines ont ensuite été mises en œuvre pour décoder les voies moléculaires conduisant aux réponses immunitaires contrôlées par RKS1. Finalement, l'exploration de l'impact potentiel de composantes clés du réseau de gènes dépendant de RKS1 sur le microbiote, offre des perspectives intéressantes et ambitieuses pour comprendre comment le système immunitaire de la plante interagit avec le système des communautés microbiennes.


Subject(s)
Chromosome Mapping , Quantitative Trait Loci , Systems Biology , Disease Resistance/genetics , Arabidopsis/genetics , Arabidopsis/immunology , Plant Immunity/genetics , Plant Diseases/genetics , Plant Diseases/immunology , Plant Diseases/microbiology , Plants/genetics , Plants/immunology , Genome-Wide Association Study , Arabidopsis Proteins/genetics
15.
Int J Mol Sci ; 25(10)2024 May 11.
Article in English | MEDLINE | ID: mdl-38791293

ABSTRACT

The plant cell wall is an actively reorganized network during plant growth and triggered immunity in response to biotic stress. While the molecular mechanisms managing perception, recognition, and signal transduction in response to pathogens are well studied in the context of damaging intruders, the current understanding of plant cell wall rebuilding and active defense strategies in response to plant virus infections remains poorly characterized. Pectins can act as major elements of the primary cell wall and are dynamic compounds in response to pathogens. Homogalacturonans (HGs), a main component of pectins, have been postulated as defensive molecules in plant-pathogen interactions and linked to resistance responses. This research focused on examining the regulation of selected pectin metabolism components in susceptible (rbohD-, Col-0-TuMV) and resistance (rbohF-, rbohD/F-TuMV) reactions. Regardless of the interaction type, ultrastructural results indicated dynamic cell wall rebuilding. In the susceptible reaction promoted by RbohF, there was upregulation of AtPME3 (pectin methylesterase) but not AtPME17, confirmed by induction of PME3 protein deposition. Moreover, the highest PME activity along with a decrease in cell wall methylesters compared to resistance interactions in rbohD-TuMV were noticed. Consequently, the susceptible reaction of rbohD and Col-0 to TuMV was characterized by a significant domination of low/non-methylesterificated HGs. In contrast, cell wall changes during the resistance response of rbohF and rbohD/F to TuMV were associated with dynamic induction of AtPMEI2, AtPMEI3, AtGAUT1, and AtGAUT7 genes, confirmed by significant induction of PMEI2, PMEI3, and GAUT1 protein deposition. In both resistance reactions, a dynamic decrease in PME activity was documented, which was most intense in rbohD/F-TuMV. This decrease was accompanied by an increase in cell wall methylesters, indicating that the domination of highly methylesterificated HGs was associated with cell wall rebuilding in rbohF and rbohD/F defense responses to TuMV. These findings suggest that selected PME with PMEI enzymes have a diverse impact on the demethylesterification of HGs and metabolism as a result of rboh-TuMV interactions, and are important factors in regulating cell wall changes depending on the type of interaction, especially in resistance responses. Therefore, PMEI2 and PMEI3 could potentially be important signaling resistance factors in the rboh-TuMV pathosystem.


Subject(s)
Arabidopsis , Cell Wall , Disease Resistance , Pectins , Plant Diseases , Pectins/metabolism , Cell Wall/metabolism , Plant Diseases/genetics , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis/immunology , Gene Expression Regulation, Plant , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Potyvirus , Carboxylic Ester Hydrolases/metabolism
16.
Mol Plant Pathol ; 25(5): e13464, 2024 May.
Article in English | MEDLINE | ID: mdl-38695733

ABSTRACT

Many plant pathogens secrete effector proteins into the host plant to suppress host immunity and facilitate pathogen colonization. The necrotrophic pathogen Sclerotinia sclerotiorum causes severe plant diseases and results in enormous economic losses, in which secreted proteins play a crucial role. SsCVNH was previously reported as a secreted protein, and its expression is significantly upregulated at 3 h after inoculation on the host plant. Here, we further demonstrated that deletion of SsCVNH leads to attenuated virulence. Heterologous expression of SsCVNH in Arabidopsis enhanced pathogen infection, inhibited the host PAMP-triggered immunity (PTI) response and increased plant susceptibility to S. sclerotiorum. SsCVNH interacted with class III peroxidase AtPRX71, a positive regulator of innate immunity against plant pathogens. SsCVNH could also interact with other class III peroxidases, thus reducing peroxidase activity and suppressing plant immunity. Our results reveal a new infection strategy employed by S. sclerotiorum in which the fungus suppresses the function of class III peroxidases, the major component of PTI to promote its own infection.


Subject(s)
Arabidopsis , Ascomycota , Fungal Proteins , Plant Diseases , Plant Immunity , Ascomycota/pathogenicity , Plant Diseases/microbiology , Virulence , Arabidopsis/microbiology , Arabidopsis/immunology , Plant Immunity/genetics , Fungal Proteins/metabolism , Fungal Proteins/genetics , Peroxidases/metabolism , Peroxidases/genetics
17.
New Phytol ; 243(1): 330-344, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38742296

ABSTRACT

Arabidopsis Col-0 RPP2A and RPP2B confer recognition of Arabidopsis downy mildew (Hyaloperonospora arabidopsidis [Hpa]) isolate Cala2, but the identity of the recognized ATR2Cala2 effector was unknown. To reveal ATR2Cala2, an F2 population was generated from a cross between Hpa-Cala2 and Hpa-Noks1. We identified ATR2Cala2 as a non-canonical RxLR-type effector that carries a signal peptide, a dEER motif, and WY domains but no RxLR motif. Recognition of ATR2Cala2 and its effector function were verified by biolistic bombardment, ectopic expression and Hpa infection. ATR2Cala2 is recognized in accession Col-0 but not in Ler-0 in which RPP2A and RPP2B are absent. In ATR2Emoy2 and ATR2Noks1 alleles, a frameshift results in an early stop codon. RPP2A and RPP2B are essential for the recognition of ATR2Cala2. Stable and transient expression of ATR2Cala2 under 35S promoter in Arabidopsis and Nicotiana benthamiana enhances disease susceptibility. Two additional Col-0 TIR-NLR (TNL) genes (RPP2C and RPP2D) adjacent to RPP2A and RPP2B are quantitatively required for full resistance to Hpa-Cala2. We compared RPP2 haplotypes in multiple Arabidopsis accessions and showed that all four genes are present in all ATR2Cala2-recognizing accessions.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Oomycetes , Plant Diseases , Arabidopsis/genetics , Arabidopsis/microbiology , Arabidopsis/immunology , Plant Diseases/microbiology , Plant Diseases/immunology , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Oomycetes/pathogenicity , NLR Proteins/metabolism , NLR Proteins/genetics , Nicotiana/genetics , Nicotiana/microbiology , Nicotiana/immunology , Amino Acid Sequence , Alleles
18.
Plant Commun ; 5(6): 100918, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38600699

ABSTRACT

Four distinct types of sulfated peptides have been identified in Arabidopsis thaliana. These peptides play crucial roles in regulating plant development and stress adaptation. Recent studies have revealed that Xanthomonas and Meloidogyne can secrete plant-like sulfated peptides, exploiting the plant sulfated peptide signaling pathway to suppress plant immunity. Over the past three decades, receptors for these four types of sulfated peptides have been identified, all of which belong to the leucine-rich repeat receptor-like protein kinase subfamily. A number of regulatory proteins have been demonstrated to play important roles in their corresponding signal transduction pathways. In this review, we comprehensively summarize the discoveries of sulfated peptides and their receptors, mainly in Arabidopsis thaliana. We also discuss their known biological functions in plant development and stress adaptation. Finally, we put forward a number of questions for reference in future studies.


Subject(s)
Arabidopsis , Peptides , Stress, Physiological , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis/immunology , Peptides/metabolism , Adaptation, Physiological , Plant Development , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Signal Transduction
19.
Plant J ; 118(6): 2154-2168, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38558071

ABSTRACT

Verticillium wilt (VW) is a devasting disease affecting various plants, including upland cotton, a crucial fiber crop. Despite its impact, the genetic basis underlying cotton's susceptibility or defense against VW remains unclear. Here, we conducted a genome-wide association study on VW phenotyping in upland cotton and identified a locus on A13 that is significantly associated with VW resistance. We then identified a cystathionine ß-synthase domain gene at A13 locus, GhCBSX3A, which was induced by Verticillium dahliae. Functional analysis, including expression silencing in cotton and overexpression in Arabidopsis thaliana, confirmed that GhCBSX3A is a causal gene at the A13 locus, enhancing SAR-RBOHs-mediated apoplastic oxidative burst. We found allelic variation on the TATA-box of GhCBSX3A promoter attenuated its expression in upland cotton, thereby weakening VW resistance. Interestingly, we discovered that altered artificial selection of GhCBSX3A_R (an elite allele for VW) under different VW pressures during domestication and other improved processes allows specific human needs to be met. Our findings underscore the importance of GhCBSX3A in response to VW, and we propose a model for defense-associated genes being selected depending on the pathogen's pressure. The identified locus and gene serve as promising targets for VW resistance enhancement in cotton through genetic engineering.


Subject(s)
Ascomycota , Disease Resistance , Gossypium , Plant Diseases , Plant Proteins , Gossypium/genetics , Gossypium/microbiology , Gossypium/immunology , Gossypium/metabolism , Disease Resistance/genetics , Plant Diseases/microbiology , Plant Diseases/immunology , Plant Diseases/genetics , Ascomycota/physiology , Plant Proteins/genetics , Plant Proteins/metabolism , Genome-Wide Association Study , Respiratory Burst , Gene Expression Regulation, Plant , Arabidopsis/genetics , Arabidopsis/microbiology , Arabidopsis/immunology , Arabidopsis/metabolism , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Plants, Genetically Modified , Verticillium
20.
Mol Plant Microbe Interact ; 37(5): 459-466, 2024 May.
Article in English | MEDLINE | ID: mdl-38597923

ABSTRACT

Citrus Huanglongbing (HLB), which is caused by 'Candidatus Liberibacter asiaticus' (CLas), is one of the most destructive citrus diseases worldwide, and defense-related Citrus sinensis gene resources remain largely unexplored. Calcium signaling plays an important role in diverse biological processes. In plants, a few calcium-dependent protein kinases (CDPKs/CPKs) have been shown to contribute to defense against pathogenic microbes. The genome of C. sinensis encodes dozens of CPKs. In this study, the role of C. sinensis calcium-dependent protein kinases (CsCPKs) in C. sinensis defense was investigated. Silencing of CsCPK6 compromised the induction of defense-related genes in C. sinensis. Expression of a constitutively active form of CsCPK6 (CsCPK6CA) triggered the activation of defense-related genes in C. sinensis. Complementation of CsCPK6 rescued the defense-related gene induction in an Arabidopsis thaliana cpk4/11 mutant, indicating that CsCPK6 carries CPK activity and is capable of functioning as a CPK in Arabidopsis. Moreover, an effector derived from CLas inhibits defense induced by the expression of CsCPK6CA and autophosphorylation of CsCPK6, which suggests the involvement of CsCPK6 and calcium signaling in defense. These results support a positive role for CsCPK6 in C. sinensis defense against CLas, and the autoinhibitory regulation of CsCPK6 provides a potential genome-editing target for improving C. sinensis defense. [Formula: see text] Copyright © 2024 The Author(s). This is an open access article distributed under the CC BY-NC-ND 4.0 International license.


Subject(s)
Citrus sinensis , Gene Expression Regulation, Plant , Plant Diseases , Plant Proteins , Protein Kinases , Citrus sinensis/genetics , Citrus sinensis/microbiology , Plant Diseases/microbiology , Plant Diseases/immunology , Protein Kinases/metabolism , Protein Kinases/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Arabidopsis/genetics , Arabidopsis/microbiology , Arabidopsis/immunology , Disease Resistance/genetics , Liberibacter/genetics , Liberibacter/physiology
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