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1.
Theor Appl Genet ; 137(5): 103, 2024 Apr 13.
Article in English | MEDLINE | ID: mdl-38613680

ABSTRACT

KEY MESSAGE: The HaOr5 resistance gene is located in a large genomic insertion containing putative resistance genes and provides resistance to O. cumana, preventing successful connection to the sunflower root vascular system. Orobanche cumana (sunflower broomrape) is a parasitic plant that is part of the Orobanchaceae family and specifically infests sunflower crops. This weed is an obligate parasitic plant that does not carry out photosynthetic activity or develop roots and is fully dependent on its host for its development. It produces thousands of dust-like seeds per plant. It possesses a high spreading ability and has been shown to quickly overcome resistance genes successively introduced by selection in cultivated sunflower varieties. The first part of its life cycle occurs underground. The connection to the sunflower vascular system is essential for parasitic plant survival and development. The HaOr5 gene provides resistance to sunflower broomrape race E by preventing the connection of O. cumana to the root vascular system. We mapped a single position of the HaOr5 gene by quantitative trait locus mapping using two segregating populations. The same location of the HaOr5 gene was identified by genome-wide association. Using a large population of thousands of F2 plants, we restricted the location of the HaOr5 gene to a genomic region of 193 kb. By sequencing the whole genome of the resistant line harboring the major resistance gene HaOr5, we identified a large insertion of a complex genomic region containing a cluster of putative resistance genes.


Subject(s)
Helianthus , Orobanche , Helianthus/genetics , Orobanche/genetics , Genome-Wide Association Study , Chromosome Mapping , Genomics
2.
Theor Appl Genet ; 137(3): 56, 2024 Feb 22.
Article in English | MEDLINE | ID: mdl-38386181

ABSTRACT

KEY MESSAGE: A new OrAnom1 gene introgressed in cultivated sunflower from wild Helianthus anomalus confers late post-attachment resistance to Orobanche cumana race G and maps to a target interval in Chromosome 4 where two receptor-like kinases (RLKs) have been identified in the H. anomalus genome as putative candidates. Sunflower broomrape is a parasitic weed that infects sunflower (Helianthus annuus L.) roots causing severe yield losses. Breeding for resistance is the most effective and sustainable control method. In this study, we report the identification, introgression, and genetic and physiological characterization of a new sunflower source of resistance to race G of broomrape developed from the wild annual sunflower H. anomalus (accession PI 468642). Crosses between PI 468642 and the susceptible line P21 were carried out, and the genetic study was conducted in BC1F1, BC1F2, and its derived BC1F3 populations. A BC1F5 germplasm named ANOM1 was developed through selection for race G resistance and resemblance to cultivated sunflower. The resistant trait showed monogenic and dominant inheritance. The gene, named OrAnom1, was mapped to Chromosome 4 within a 1.2 cM interval and co-segregated with 7 SNP markers. This interval corresponds to a 1.32 Mb region in the sunflower reference genome, housing a cluster of receptor-like kinase and receptor-like protein (RLK-RLP) genes. Notably, the analysis of the H. anomalus genome revealed the absence of RLPs in the OrAnom1 target region but featured two RLKs as possible OrAnom1 candidates. Rhizotron and histological studies showed that OrAnom1 determines a late post-attachment resistance mechanism. Broomrape can establish a vascular connection with the host, but parasite growth is stopped before tubercle development, showing phenolic compounds accumulation and tubercle necrosis. ANOM1 will contribute to broadening the genetic basis of broomrape resistance in the cultivated sunflower pool and to a better understanding of the molecular basis of the sunflower-broomrape interaction.


Subject(s)
Helianthus , Orobanche , Helianthus/genetics , Plant Breeding , Necrosis , Phenols
4.
Front Plant Sci ; 13: 1038684, 2022.
Article in English | MEDLINE | ID: mdl-36340383

ABSTRACT

Orobanche cumana Wall., sunflower broomrape, is one of the major pests for the sunflower crop. Breeding for resistant varieties in sunflower has been the most efficient method to control this parasitic weed. However, more virulent broomrape populations continuously emerge by overcoming genetic resistance. It is thus essential to identify new broomrape resistances acting at various stages of the interaction and combine them to improve resistance durability. In this study, 71 wild sunflowers and wild relatives accessions from 16 Helianthus species were screened in pots for their resistance to broomrape at the late emergence stage. From this initial screen, 18 accessions from 9 species showing resistance, were phenotyped at early stages of the interaction: the induction of broomrape seed germination by sunflower root exudates, the attachment to the host root and the development of tubercles in rhizotron assays. We showed that wild Helianthus accessions are an important source of resistance to the most virulent broomrape races, affecting various stages of the interaction: the inability to induce broomrape seed germination, the development of incompatible attachments or necrotic tubercles, and the arrest of emerged structure growth. Cytological studies of incompatible attachments showed that several cellular mechanisms were shared among resistant Helianthus species.

5.
Nat Plants ; 5(12): 1211-1215, 2019 12.
Article in English | MEDLINE | ID: mdl-31819219

ABSTRACT

Orobanche cumana (sunflower broomrape) is an obligate parasitic plant that infects sunflower roots, causing yield losses. Here, by using a map-based cloning strategy, we identified HaOr7-a gene that confers resistance to O. cumana race F-which was found to encode a leucine-rich repeat receptor-like kinase. The complete HAOR7 protein is present in resistant lines of sunflower and prevents O. cumana from connecting to the vascular system of sunflower roots, whereas susceptible lines encode a truncated protein that lacks transmembrane and kinase domains.


Subject(s)
Helianthus/parasitology , Orobanche/enzymology , Plant Proteins/immunology , Protein Kinases/immunology , Disease Resistance , Helianthus/growth & development , Orobanche/immunology , Orobanche/metabolism , Plant Proteins/genetics , Protein Kinases/genetics
6.
PLoS One ; 14(10): e0223149, 2019.
Article in English | MEDLINE | ID: mdl-31600251

ABSTRACT

Mutualistic plant-microbe associations are widespread in natural ecosystems and have made major contributions throughout the evolutionary history of terrestrial plants. Amongst the most remarkable of these are the so-called root endosymbioses, resulting from the intracellular colonization of host tissues by either arbuscular mycorrhizal (AM) fungi or nitrogen-fixing bacteria that both provide key nutrients to the host in exchange for energy-rich photosynthates. Actinorhizal host plants, members of the Eurosid 1 clade, are able to associate with both AM fungi and nitrogen-fixing actinomycetes known as Frankia. Currently, little is known about the molecular signaling that allows these plants to recognize their fungal and bacterial partners. In this article, we describe the use of an in vivo Ca2+ reporter to identify symbiotic signaling responses to AM fungi in roots of both Casuarina glauca and Discaria trinervis, actinorhizal species with contrasting modes of Frankia colonization. This approach has revealed that, for both actinorhizal hosts, the short-chain chitin oligomer chitotetraose is able to mimic AM fungal exudates in activating the conserved symbiosis signaling pathway (CSSP) in epidermal root cells targeted by AM fungi. These results mirror findings in other AM host plants including legumes and the monocot rice. In addition, we show that chitotetraose is a more efficient elicitor of CSSP activation compared to AM fungal lipo-chitooligosaccharides. These findings reinforce the likely role of short-chain chitin oligomers during the initial stages of the AM association, and are discussed in relation to both our current knowledge about molecular signaling during Frankia recognition as well as the different microsymbiont root colonization mechanisms employed by actinorhizal hosts.


Subject(s)
Fagales/genetics , Frankia/genetics , Oligosaccharides/genetics , Symbiosis/genetics , Fabaceae/genetics , Fabaceae/growth & development , Fabaceae/microbiology , Fagales/growth & development , Fagales/microbiology , Frankia/growth & development , Frankia/metabolism , Mycorrhizae/growth & development , Mycorrhizae/metabolism , Nitrogen Fixation/genetics , Plant Root Nodulation/genetics , Plant Roots/genetics , Plant Roots/growth & development , Plant Roots/microbiology , Signal Transduction/genetics
7.
Front Plant Sci ; 10: 1628, 2019.
Article in English | MEDLINE | ID: mdl-31921269

ABSTRACT

Introduction: Arbuscular mycorrhizal (AM) symbiosis between soil fungi and the majority of plants is based on a mutualistic exchange of organic and inorganic nutrients. This takes place inside root cortical cells that harbor an arbuscule: a highly branched intracellular fungal hypha enveloped by an extension of the host cell membrane-the perifungal membrane-which outlines a specialized symbiotic interface compartment. The perifungal membrane develops around each intracellular hypha as the symbiotic fungus proceeds across the root tissues; its biogenesis is the result of an extensive exocytic process and shows a few similarities with cell plate insertion which occurs at the end of somatic cytokinesis. Materials and Methods: We here analyzed the subcellular localization of a GFP fusion with TPLATE, a subunit of the endocytic TPLATE complex (TPC), a central actor in plant clathrin-mediated endocytosis with a role in cell plate anchoring with the parental plasma membrane. Results: Our observations demonstrate that Daucus carota and Medicago truncatula root organ cultures expressing a 35S::AtTPLATE-GFP construct accumulate strong fluorescent green signal at sites of symbiotic interface construction, along recently formed perifungal membranes and at sites of cell-to-cell hyphal passage between adjacent cortical cells, where the perifungal membrane fuses with the plasmalemma. Discussion: Our results strongly suggest that TPC-mediated endocytic processes are active during perifungal membrane interface biogenesis-alongside exocytic transport. This novel conclusion, which might be correlated to the accumulation of late endosomes in the vicinity of the developing interface, hints at the involvement of TPC-dependent membrane remodeling during the intracellular accommodation of AM fungi.

8.
New Phytol ; 219(3): 1018-1030, 2018 08.
Article in English | MEDLINE | ID: mdl-29790172

ABSTRACT

Nitrogen-fixing filamentous Frankia colonize the root tissues of its actinorhizal host Discaria trinervis via an exclusively intercellular pathway. Here we present studies aimed at uncovering mechanisms associated with this little-researched mode of root entry, and in particular the extent to which the host plant is an active partner during this process. Detailed characterization of the expression patterns of infection-associated actinorhizal host genes has provided valuable tools to identify intercellular infection sites, thus allowing in vivo confocal microscopic studies of the early stages of Frankia colonization. The subtilisin-like serine protease gene Dt12, as well as its Casuarina glauca homolog Cg12, are specifically expressed at sites of Frankia intercellular colonization of D. trinervis outer root tissues. This is accompanied by nucleo-cytoplasmic reorganization in the adjacent host cells and major remodeling of the intercellular apoplastic compartment. These findings lead us to propose that the actinorhizal host plays a major role in modifying both the size and composition of the intercellular apoplast in order to accommodate the filamentous microsymbiont. The implications of these findings are discussed in the light of the analogies that can be made with the orchestrating role of host legumes during intracellular root hair colonization by nitrogen-fixing rhizobia.


Subject(s)
Frankia/growth & development , Gene Expression Regulation, Plant , Plant Cells/microbiology , Rhamnaceae/genetics , Rhamnaceae/microbiology , Subtilisins/genetics , Colony Count, Microbial , Models, Biological , Promoter Regions, Genetic/genetics , Root Nodules, Plant/cytology , Root Nodules, Plant/microbiology , Subtilisins/metabolism
9.
Front Plant Sci ; 9: 245, 2018.
Article in English | MEDLINE | ID: mdl-29535753

ABSTRACT

Spatiotemporal changes in cellular calcium (Ca2+) concentrations are essential for signal transduction in a wide range of plant cellular processes. In legumes, nuclear and perinuclear-localized Ca2+ oscillations have emerged as key signatures preceding downstream symbiotic signaling responses. Förster resonance energy transfer (FRET) yellow-based Ca2+ cameleon probes have been successfully exploited to measure the spatiotemporal dynamics of symbiotic Ca2+ signaling in legumes. Although providing cellular resolution, these sensors were restricted to measuring Ca2+ changes in single subcellular compartments. In this study, we have explored the potential of single fluorescent protein-based Ca2+ sensors, the GECOs, for multicolor and simultaneous imaging of the spatiotemporal dynamics of cytoplasmic and nuclear Ca2+ signaling in root cells. Single and dual fluorescence nuclear and cytoplasmic-localized GECOs expressed in transgenic Medicago truncatula roots and Arabidopsis thaliana were used to successfully monitor Ca2+ responses to microbial biotic and abiotic elicitors. In M. truncatula, we demonstrate that GECOs detect symbiosis-related Ca2+ spiking variations with higher sensitivity than the yellow FRET-based sensors previously used. Additionally, in both M. truncatula and A. thaliana, the dual sensor is now able to resolve in a single root cell the coordinated spatiotemporal dynamics of nuclear and cytoplasmic Ca2+ signaling in vivo. The GECO-based sensors presented here therefore represent powerful tools to monitor Ca2+ signaling dynamics in vivo in response to different stimuli in multi-subcellular compartments of plant cells.

10.
New Phytol ; 214(4): 1440-1446, 2017 Jun.
Article in English | MEDLINE | ID: mdl-28369864

ABSTRACT

The rice lysin-motif (LysM) receptor-like kinase OsCERK1 is now known to have a dual role in both pathogenic and symbiotic interactions. Following the recent discovery that the Oscerk1 mutant is unable to host arbuscular mycorrhizal (AM) fungi, we have examined whether OsCERK1 is directly involved in the perception of the short-chain chitin oligomers (Myc-COs) identified in AM fungal exudates and shown to activate nuclear calcium (Ca2+ ) spiking in the rice root epidermis. An Oscerk1 knockout mutant expressing the cameleon NLS-YC2.60 was used to monitor nuclear Ca2+ signaling following root treatment with either crude fungal exudates or purified Myc-COs. Compared with wild-type rice, Ca2+ spiking responses to AM fungal elicitation were absent in root atrichoblasts of the Oscerk1 mutant. By contrast, rice lines mutated in OsCEBiP, encoding the LysM receptor-like protein which associates with OsCERK1 to perceive chitin elicitors of the host immune defense pathway, responded positively to Myc-COs. These findings provide direct evidence that the bi-functional OsCERK1 plays a central role in perceiving short-chain Myc-CO signals and activating the downstream conserved symbiotic signal transduction pathway.


Subject(s)
Chitin/metabolism , Mycorrhizae/metabolism , Oryza/microbiology , Plant Proteins/metabolism , Protein Serine-Threonine Kinases/metabolism , Calcium/metabolism , Gene Knockout Techniques , Mutation , Mycorrhizae/physiology , Oryza/genetics , Oryza/metabolism , Plant Proteins/genetics , Plant Roots/metabolism , Plant Roots/microbiology , Protein Serine-Threonine Kinases/genetics , Signal Transduction
11.
New Phytol ; 214(2): 533-538, 2017 Apr.
Article in English | MEDLINE | ID: mdl-27918078

ABSTRACT

Contents 533 I. 533 II. 534 III. 536 IV. 536 537 References 537 SUMMARY: Root endosymbioses are beneficial associations formed between terrestrial plants and either bacterial or fungal micro-organisms. A common feature of these intracellular symbioses is the requirement for mutual recognition between the two partners before host-regulated microbial entry. As part of this molecular dialogue, symbiosis-specific microbial factors set in motion a highly conserved plant signal transduction pathway, of which a central component is the activation of sustained nuclear Ca2+ oscillations in target cells of the host epidermis. Here, we focus on recent findings concerning this crucial Ca2+ -dependent signalling step for endosymbiotic associations involving either arbuscular mycorrhizal fungi or nitrogen-fixing Frankia actinomycetes, and in particular how this knowledge is contributing to the identification of the respective microbial factors.


Subject(s)
Actinobacteria/metabolism , Calcium Signaling , Cell Nucleus/metabolism , Mycorrhizae/metabolism , Signal Transduction , Symbiosis
12.
New Phytol ; 209(1): 86-93, 2016 Jan.
Article in English | MEDLINE | ID: mdl-26484850

ABSTRACT

Although it is now well-established that decorated lipo-chitooligosaccharide Nod factors are the key rhizobial signals which initiate infection/nodulation in host legume species, the identity of the equivalent microbial signaling molecules in the Frankia/actinorhizal association remains elusive. With the objective of identifying Frankia symbiotic factors we present a novel approach based on both molecular and cellular pre-infection reporters expressed in the model actinorhizal species Casuarina glauca. By introducing the nuclear-localized cameleon Nup-YC2.1 into Casuarina glauca we show that cell-free culture supernatants of the compatible Frankia CcI3 strain are able to elicit sustained high frequency Ca(2+) spiking in host root hairs. Furthermore, an excellent correlation exists between the triggering of nuclear Ca(2+) spiking and the transcriptional activation of the ProCgNIN:GFP reporter as a function of the Frankia strain tested. These two pre-infection symbiotic responses have been used in combination to show that the signal molecules present in the Frankia CcI3 supernatant are hydrophilic, of low molecular weight and resistant to chitinase degradation. In conclusion, the biologically active symbiotic signals secreted by Frankia appear to be chemically distinct from the currently known chitin-based rhizobial/arbuscular mycorrhizal signaling molecules. Convenient bioassays in Casuarina glauca are now available for their full characterization.


Subject(s)
Bacterial Proteins/genetics , Calcium/metabolism , Frankia/physiology , Gene Expression Regulation, Plant , Magnoliopsida/microbiology , Mycorrhizae/physiology , Bacterial Proteins/metabolism , Chitinases/metabolism , Frankia/genetics , Genes, Reporter , Hydrophobic and Hydrophilic Interactions , Luminescent Proteins/genetics , Luminescent Proteins/metabolism , Magnoliopsida/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Root Nodulation , Plant Roots/genetics , Plant Roots/microbiology , Plants, Genetically Modified , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Symbiosis
13.
Proc Natl Acad Sci U S A ; 112(31): 9781-6, 2015 Aug 04.
Article in English | MEDLINE | ID: mdl-26199419

ABSTRACT

Rhizobia and arbuscular mycorrhizal fungi produce signals that are perceived by host legume receptors at the plasma membrane and trigger sustained oscillations of the nuclear and perinuclear Ca(2+) concentration (Ca(2+) spiking), which in turn leads to gene expression and downstream symbiotic responses. The activation of Ca(2+) spiking requires the plasma membrane-localized receptor-like kinase Does not Make Infections 2 (DMI2) as well as the nuclear cation channel DMI1. A key enzyme regulating the mevalonate (MVA) pathway, 3-Hydroxy-3-Methylglutaryl CoA Reductase 1 (HMGR1), interacts with DMI2 and is required for the legume-rhizobium symbiosis. Here, we show that HMGR1 is required to initiate Ca(2+) spiking and symbiotic gene expression in Medicago truncatula roots in response to rhizobial and arbuscular mycorrhizal fungal signals. Furthermore, MVA, the direct product of HMGR1 activity, is sufficient to induce nuclear-associated Ca(2+) spiking and symbiotic gene expression in both wild-type plants and dmi2 mutants, but interestingly not in dmi1 mutants. Finally, MVA induced Ca(2+) spiking in Human Embryonic Kidney 293 cells expressing DMI1. This demonstrates that the nuclear cation channel DMI1 is sufficient to support MVA-induced Ca(2+) spiking in this heterologous system.


Subject(s)
Metabolic Networks and Pathways , Mevalonic Acid/metabolism , Signal Transduction , Symbiosis , Arabidopsis/genetics , Calcium Signaling/drug effects , Calcium Signaling/genetics , Cell Nucleus/drug effects , Cell Nucleus/metabolism , Gene Expression Regulation, Plant/drug effects , Gene Silencing/drug effects , HEK293 Cells , Humans , Hydroxymethylglutaryl CoA Reductases/metabolism , Medicago truncatula/drug effects , Medicago truncatula/genetics , Medicago truncatula/microbiology , Metabolic Networks and Pathways/drug effects , Mevalonic Acid/pharmacology , Mutation/genetics , Mycorrhizae/drug effects , Mycorrhizae/physiology , Plant Epidermis/cytology , Plant Epidermis/drug effects , Plant Proteins/metabolism , Plants, Genetically Modified , Signal Transduction/drug effects , Symbiosis/drug effects , Symbiosis/genetics
14.
Plant Physiol ; 167(4): 1233-42, 2015 Apr.
Article in English | MEDLINE | ID: mdl-25659382

ABSTRACT

In many legumes, root entry of symbiotic nitrogen-fixing rhizobia occurs via host-constructed tubular tip-growing structures known as infection threads (ITs). Here, we have used a confocal microscopy live-tissue imaging approach to investigate early stages of IT formation in Medicago truncatula root hairs (RHs) expressing fluorescent protein fusion reporters. This has revealed that ITs only initiate 10 to 20 h after the completion of RH curling, by which time major modifications have occurred within the so-called infection chamber, the site of bacterial entrapment. These include the accumulation of exocytosis (M. truncatula Vesicle-Associated Membrane Protein721e)- and cell wall (M. truncatula EARLY NODULIN11)-associated markers, concomitant with radial expansion of the chamber. Significantly, the infection-defective M. truncatula nodule inception-1 mutant is unable to create a functional infection chamber. This underlines the importance of the NIN-dependent phase of host cell wall remodeling that accompanies bacterial proliferation and precedes IT formation, and leads us to propose a two-step model for rhizobial infection initiation in legume RHs.


Subject(s)
Medicago truncatula/microbiology , Plant Proteins/metabolism , Plant Roots/microbiology , Sinorhizobium meliloti/physiology , Biomarkers , Cell Wall/metabolism , Genes, Reporter , Medicago truncatula/cytology , Medicago truncatula/genetics , Medicago truncatula/physiology , Models, Biological , Mutation , Plant Proteins/genetics , Plant Roots/cytology , Plant Roots/genetics , Plant Roots/physiology , Symbiosis
15.
Front Plant Sci ; 4: 426, 2013.
Article in English | MEDLINE | ID: mdl-24194742

ABSTRACT

The arbuscular mycorrhizal symbiosis associates soil fungi with the roots of the majority of plants species and represents a major source of soil phosphorus acquisition. Mycorrhizal interactions begin with an exchange of molecular signals between the two partners. A root signaling pathway is recruited, for which the perception of fungal signals triggers oscillations of intracellular calcium concentration. High phosphate availability is known to inhibit the establishment and/or persistence of this symbiosis, thereby favoring the direct, non-symbiotic uptake of phosphorus by the root system. In this study, Medicago truncatula plants were used to investigate the effects of phosphate supply on the early stages of the interaction. When plants were supplied with high phosphate fungal attachment to the roots was drastically reduced. An experimental system was designed to individually study the effects of phosphate supply on the fungus, on the roots, and on root exudates. These experiments revealed that the most important effects of high phosphate supply were on the roots themselves, which became unable to host mycorrhizal fungi even when these had been appropriately stimulated. The ability of the roots to perceive their fungal partner was then investigated by monitoring nuclear calcium spiking in response to fungal signals. This response did not appear to be affected by high phosphate supply. In conclusion, high levels of phosphate predominantly impact the plant host, but apparently not in its ability to perceive the fungal partner.

16.
PLoS One ; 8(9): e75039, 2013.
Article in English | MEDLINE | ID: mdl-24086432

ABSTRACT

N-acetylglucosamine-based saccharides (chitosaccharides) are components of microbial cell walls and act as molecular signals during host-microbe interactions. In the legume plant Medicago truncatula, the perception of lipochitooligosaccharide signals produced by symbiotic rhizobia and arbuscular mycorrhizal fungi involves the Nod Factor Perception (NFP) lysin motif receptor-like protein and leads to the activation of the so-called common symbiotic pathway. In rice and Arabidopsis, lysin motif receptors are involved in the perception of chitooligosaccharides released by pathogenic fungi, resulting in the activation of plant immunity. Here we report the structural characterization of atypical chitosaccharides from the oomycete pathogen Aphanomyces euteiches, and their biological activity on the host Medicago truncatula. Using a combination of biochemical and biophysical approaches, we show that these chitosaccharides are linked to ß-1,6-glucans, and contain a ß-(1,3;1,4)-glucan backbone whose ß-1,3-linked glucose units are substituted on their C-6 carbon by either glucose or N-acetylglucosamine residues. This is the first description of this type of structural motif in eukaryotic cell walls. Glucan-chitosaccharide fractions of A. euteiches induced the expression of defense marker genes in Medicago truncatula seedlings independently from the presence of a functional Nod Factor Perception protein. Furthermore, one of the glucan-chitosaccharide fractions elicited calcium oscillations in the nucleus of root cells. In contrast to the asymmetric oscillatory calcium spiking induced by symbiotic lipochitooligosaccharides, this response depends neither on the Nod Factor Perception protein nor on the common symbiotic pathway. These findings open new perspectives in oomycete cell wall biology and elicitor recognition and signaling in legumes.


Subject(s)
Aphanomyces/cytology , Calcium Signaling/drug effects , Cell Wall/chemistry , Chitin/pharmacology , Glucans/pharmacology , Medicago truncatula/genetics , Medicago truncatula/immunology , Acetylglucosamine/metabolism , Calcium Signaling/genetics , Cell Nucleus/drug effects , Cell Nucleus/metabolism , Chitin/chemistry , Chromatography, Gel , Gene Expression Regulation, Plant/drug effects , Genes, Plant , Glucans/chemistry , Host-Pathogen Interactions/genetics , Host-Pathogen Interactions/immunology , Magnetic Resonance Spectroscopy , Mass Spectrometry , Medicago truncatula/microbiology , Models, Molecular , Plant Epidermis/cytology , Plant Epidermis/drug effects , Plant Roots/cytology , Plant Roots/drug effects
17.
New Phytol ; 198(1): 190-202, 2013 Apr.
Article in English | MEDLINE | ID: mdl-23384011

ABSTRACT

The primary objective of this study was to identify the molecular signals present in arbuscular mycorrhizal (AM) germinated spore exudates (GSEs) responsible for activating nuclear Ca(2+) spiking in the Medicago truncatula root epidermis. Medicago truncatula root organ cultures (ROCs) expressing a nuclear-localized cameleon reporter were used as a bioassay to detect AM-associated Ca(2+) spiking responses and LC-MS to characterize targeted molecules in GSEs. This approach has revealed that short-chain chitin oligomers (COs) can mimic AM GSE-elicited Ca(2+) spiking, with maximum activity observed for CO4 and CO5. This spiking response is dependent on genes of the common SYM signalling pathway (DMI1/DMI2) but not on NFP, the putative Sinorhizobium meliloti Nod factor receptor. A major increase in the CO4/5 concentration in fungal exudates is observed when Rhizophagus irregularis spores are germinated in the presence of the synthetic strigolactone analogue GR24. By comparison with COs, both sulphated and nonsulphated Myc lipochito-oligosaccharides (LCOs) are less efficient elicitors of Ca(2+) spiking in M. truncatula ROCs. We propose that short-chain COs secreted by AM fungi are part of a molecular exchange with the host plant and that their perception in the epidermis leads to the activation of a SYM-dependent signalling pathway involved in the initial stages of fungal root colonization.


Subject(s)
Calcium Signaling/drug effects , Cell Nucleus/metabolism , Chitin/pharmacology , Lactones/pharmacology , Medicago truncatula/microbiology , Mycorrhizae/metabolism , Plant Roots/microbiology , Bacterial Proteins/metabolism , Cell Nucleus/drug effects , Host-Pathogen Interactions/drug effects , Medicago truncatula/drug effects , Medicago truncatula/metabolism , Mutation/genetics , Mycorrhizae/drug effects , Oligosaccharides/pharmacology , Plant Epidermis/drug effects , Plant Epidermis/microbiology , Plant Roots/drug effects , Spores, Fungal/drug effects , Spores, Fungal/physiology
18.
Plant Cell ; 24(9): 3838-52, 2012 Sep.
Article in English | MEDLINE | ID: mdl-23023168

ABSTRACT

Cytokinin regulates many aspects of plant development, and in legume crops, this phytohormone is necessary and sufficient for symbiotic nodule organogenesis, allowing them to fix atmospheric nitrogen. To identify direct links between cytokinins and nodule organogenesis, we determined a consensus sequence bound in vitro by a transcription factor (TF) acting in cytokinin signaling, the nodule-enhanced Medicago truncatula Mt RR1 response regulator (RR). Among genes rapidly regulated by cytokinins and containing this so-called RR binding site (RRBS) in their promoters, we found the nodulation-related Type-A RR Mt RR4 and the Nodulation Signaling Pathway 2 (NSP2) TF. Site-directed mutagenesis revealed that RRBS cis-elements in the RR4 and NSP2 promoters are essential for expression during nodule development and for cytokinin induction. Furthermore, a microRNA targeting NSP2 (miR171 h) is also rapidly induced by cytokinins and then shows an expression pattern anticorrelated with NSP2. Other primary targets regulated by cytokinins depending on the Cytokinin Response1 (CRE1) receptor were a cytokinin oxidase/dehydrogenase (CKX1) and a basic Helix-Loop-Helix TF (bHLH476). RNA interference constructs as well as insertion of a Tnt1 retrotransposon in the bHLH gene led to reduced nodulation. Hence, we identified two TFs, NSP2 and bHLH476, as direct cytokinin targets acting at the convergence of phytohormonal and symbiotic cues.


Subject(s)
Cytokinins/pharmacology , Medicago truncatula/physiology , Plant Growth Regulators/pharmacology , Plant Root Nodulation/genetics , Sinorhizobium meliloti/physiology , Transcription Factors/metabolism , Amino Acid Sequence , Consensus Sequence , Gene Expression Profiling , Gene Expression Regulation, Plant , Medicago truncatula/drug effects , Medicago truncatula/genetics , Medicago truncatula/microbiology , MicroRNAs/genetics , Molecular Sequence Data , Mutagenesis, Insertional , Mutagenesis, Site-Directed , Nitrogen Fixation , Oligonucleotide Array Sequence Analysis , Phylogeny , Plant Proteins/genetics , Plant Proteins/metabolism , Promoter Regions, Genetic/genetics , Root Nodules, Plant/drug effects , Root Nodules, Plant/genetics , Root Nodules, Plant/microbiology , Root Nodules, Plant/physiology , Seedlings/drug effects , Seedlings/genetics , Seedlings/microbiology , Seedlings/physiology , Sequence Alignment , Signal Transduction , Symbiosis , Transcription Factors/genetics , Transcriptome
19.
Plant J ; 69(5): 822-30, 2012 Mar.
Article in English | MEDLINE | ID: mdl-22035171

ABSTRACT

Ca(2+) spiking is a central component of a common signaling pathway that is activated in the host epidermis during initial recognition of endosymbiotic microbes. However, it is not known to what extent Ca(2+) signaling also plays a role during subsequent root colonization involving apoplastic transcellular infection. Live-tissue imaging using calcium cameleon reporters expressed in Medicago truncatula roots has revealed that distinct Ca(2+) oscillatory profiles correlate with specific stages of transcellular cortical infection by both rhizobia and arbuscular mycorrhizal fungi. Outer cortical cells exhibit low-frequency Ca(2+) spiking during the extensive intracellular remodeling that precedes infection. This appears to be a prerequisite for the formation of either pre-infection threads or the pre-penetration apparatus, both of which are fully reversible processes. A transition from low- to high-frequency spiking is concomitant with the initial stages of apoplastic cell entry by both microbes. This high-frequency spiking is of limited duration in the case of rhizobial infection and is completely switched off by the time transcellular infection by both microsymbionts is completed. The Ca(2+) spiking profiles associated with both rhizobial and arbuscular mycorrhizal cell entry are remarkably similar in terms of periodicity, suggesting that microbe specificity is unlikely to be encoded by the Ca(2+) signature during this particular stage of host infection in the outer cortex. Together, these findings lead to the proposal that tightly regulated Ca(2+) -mediated signal transduction is a key player in reprogramming root cell development at the critical stage of commitment to endosymbiotic infection.


Subject(s)
Calcium Signaling , Calcium/metabolism , Medicago truncatula/microbiology , Plant Roots/physiology , Symbiosis/physiology , Medicago truncatula/physiology , Mycorrhizae/physiology , Plant Roots/cytology , Plant Roots/microbiology , Sinorhizobium meliloti/physiology
20.
Mol Plant Microbe Interact ; 24(11): 1333-44, 2011 Nov.
Article in English | MEDLINE | ID: mdl-21787150

ABSTRACT

A successful nitrogen-fixing symbiosis requires the accommodation of rhizobial bacteria as new organelle-like structures, called symbiosomes, inside the cells of their legume hosts. Two legume mutants that are most strongly impaired in their ability to form symbiosomes are sym1/TE7 in Medicago truncatula and sym33 in Pisum sativum. We have cloned both MtSYM1 and PsSYM33 and show that both encode the recently identified interacting protein of DMI3 (IPD3), an ortholog of Lotus japonicus (Lotus) CYCLOPS. IPD3 and CYCLOPS were shown to interact with DMI3/CCaMK, which encodes a calcium- and calmodulin-dependent kinase that is an essential component of the common symbiotic signaling pathway for both rhizobial and mycorrhizal symbioses. Our data reveal a novel, key role for IPD3 in symbiosome formation and development. We show that MtIPD3 participates in but is not essential for infection thread formation and that MtIPD3 also affects DMI3-induced spontaneous nodule formation upstream of cytokinin signaling. Further, MtIPD3 appears to be required for the expression of a nodule-specific remorin, which controls proper infection thread growth and is essential for symbiosome formation.


Subject(s)
Medicago/microbiology , Nitrogen Fixation , Pisum sativum/microbiology , Symbiosis , Base Sequence , Cell Nucleus/metabolism , Cloning, Molecular , DNA Primers , Genes, Plant , Medicago/genetics , Medicago/physiology , Microscopy, Confocal , Mycorrhizae/physiology , Pisum sativum/genetics , Pisum sativum/physiology , Plants, Genetically Modified , Polymerase Chain Reaction
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