Search results for "MEDICAGO TRUNCATULA"

showing 10 items of 90 documents

Microdiversity of Burkholderiales associated with mycorrhizal and nonmycorrhizal roots of Medicago truncatula

2008

The genetic diversity of bacterial communities associated with mycorrhizal and nonmycorrhizal roots of Medicago truncatula was characterized by two approaches. Firstly, phylogenetic analysis was performed on 164 partial 16S rRNA gene-intergenic spacer (IGS) sequences from operational taxonomic units previously shown to be preferentially associated with mycorrhizal roots. These sequences were distributed into three branches corresponding to Comamonadaceae, Oxalobacteraceae and Rubrivivax subgroups. Most sequences were obtained from mycorrhizal roots, indicating the preferential association of the corresponding families with mycorrhizal roots. A second phylogenetic analysis was performed on t…

2. Zero hunger0303 health sciencesRhizosphereMedicagoEcologybiology030306 microbiologyContext (language use)15. Life on landbiology.organism_classificationApplied Microbiology and BiotechnologyMicrobiologyMedicago truncatulaComamonadaceae03 medical and health sciencesBurkholderialesBotanyMycorrhiza030304 developmental biologyOxalobacteraceaeFEMS Microbiology Ecology
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TheMedicago truncatulahypermycorrhizal B9 mutant displays an altered response to phosphate and is more susceptible toAphanomyces euteiches

2014

Inorganic phosphate (Pi) plays a key role in the development of arbuscular mycorrhizal (AM) symbiosis, which is favoured when Pi is limiting in the environment. We have characterized the Medicago truncatula hypermycorrhizal B9 mutant for its response to limiting (P/10) and replete (P2) Pi. On P2, mycorrhization was significantly higher in B9 plants than in wild-type (WT). The B9 mutant displayed hallmarks of Pi-limited plants, including higher levels of anthocyanins and lower concentrations of Pi in shoots than WT plants. Transcriptome analyses of roots of WT and B9 plants cultivated on P2 or on P/10 confirmed the Pi-limited profile of the mutant on P2 and highlighted its altered response t…

2. Zero hungerOomycetebiologyPhysiologyfungiMutantfood and beveragesPlant Sciencebiology.organism_classificationMedicago truncatulaMicrobiologyTranscriptomeArbuscular mycorrhizaSymbiosisBotanyShootAphanomyces euteichesPlant, Cell & Environment
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Effets de la nutrition et du génotype de la plante sur la résistance de Medicago truncatula à Aphanomyces euteiches

2016

SPEIPMUBAGROSUPINRA; Dans la nature, les plantes ont la capacité de mettre en oeuvre des réponses immunitaires pour faire face aux microorganismes pathogènes. Cependant, ces réponses de défense sont coûteuses en énergie et conduisent la plante à détourner une partie de ces ressources destinées à d’autres traits de vie comme la croissance. Ce compromis défense/croissance est largement conditionné par la disponibilité extérieure en nutriments. Afin de mieux décrire et comprendre les liens entre la nutrition et la défense, nous avons analysé l’impact de la nutrition azotée et l’effet de la variabilité génétique végétale sur la capacité de la légumineuse Medicago truncatula à résister à un agen…

Aphanomyces euteichesAzoteMedicago truncatula[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal BiologyRéponses de défense des plantesMedicago truncatula;Aphanomyces euteiches;génotype;nutrition;azote;réponses de défense des plantesGénotypeNutrition
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Effects of plant nutrition and genotype on Medicago truncatula defense responses against Aphanomyces euteiches

2014

SPEIPM; International audience

Aphanomyces euteichesMedicago truncatula[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal Biologyplant immunity
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Identification of bacterial groups preferentially associated with mycorrhizal roots of Medicago truncatula

2007

ABSTRACT The genetic structures of bacterial communities associated with Medicago truncatula Gaertn. cv. Jemalong line J5 (Myc + Nod + ) and its symbiosis-defective mutants TRV48 (Myc + Nod − ) and TRV25 (Myc − Nod − ) were compared. Plants were cultivated in a fertile soil (Châteaurenard, France) and in soil from the Mediterranean basin showing a low fertility (Mas d'Imbert, France). Plant growth, root architecture, and the efficiency of root symbiosis of the three plant genotypes were characterized in the two soils. Structures of the bacterial communities were assessed by automated-ribosomal intergenic spacer analysis (A-RISA) fingerprinting from DNA extracted from the rhizosphere soil an…

DNA BacterialMolecular Sequence DataApplied Microbiology and BiotechnologyPlant RootsMicrobial Ecology03 medical and health scienceschemistry.chemical_compoundSymbiosisMolecular markerMycorrhizaeBotanyDNA Ribosomal SpacerMedicago truncatulaMycorrhizaRELATION PLANTE-MICROORGANISMESymbiosisSoil Microbiology030304 developmental biologyOxalobacteraceae2. Zero hunger[SDV.EE]Life Sciences [q-bio]/Ecology environment0303 health sciencesRhizosphereEcologybiology030306 microbiologyBetaproteobacteriaSequence Analysis DNA15. Life on landbiology.organism_classificationDNA FingerprintingMedicago truncatulachemistrySoil fertilitySoil microbiologyFood ScienceBiotechnology
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Fungal genes related to calcium homeostasis and signalling are upregulated in symbiotic arbuscular mycorrhiza interactions

2012

Fluctuations in intracellular calcium levels generate signalling events and regulate different cellular processes. Whilst the implication of Ca2+ in plant responses during arbuscular mycorrhiza (AM) interactions is well documented, nothing is known about the regulation or role of this secondary messenger in the fungal symbiont. The spatio-temporal expression pattern of putatively Ca2+-related genes of Glomus intraradices BEG141 encoding five proteins involved in membrane transport and one nuclear protein kinase, was investigated during the AM symbiosis. Expression profiles related to successful colonization of host roots were observed in interactions of G. intraradices with roots of wild-ty…

EXPRESSION[SDV]Life Sciences [q-bio]STRIGOLACTONESBiologySymbiosis-related plant mutantsPlant RootsCalcium in biologyFungal ProteinsRNA ACCUMULATIONCA2+Gene Expression Regulation FungalMycorrhizaeGene expressionBotanyMedicago truncatulaMedicagoGeneticsHomeostasis[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyPLANTSGLOMUS-INTRARADICESGIGASPORA-ROSEAGlomeromycotaSymbiosisGeneEcology Evolution Behavior and SystematicsRegulation of gene expressionGene Expression ProfilingLasersMAGNAPORTHE-ORYZAEfungiMembrane transportbiology.organism_classificationMEDICAGO-TRUNCATULAMedicago truncatulaUp-RegulationCell biologyArbuscular mycorrhizaInfectious DiseasesMUTANTS[SDE]Environmental SciencesCalciumGlomus intraradicesGene expressionSignal transductionLaser microdissectionMicrodissectionSignal Transduction
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Dissecting the factors controlling seed development in the model legume Medicago truncatula

2012

Legumes are not only indispensible for sustainable agriculture but are also a rich source of protein in food and feed for humans and animals, respectively. However, major proteins stored in legume seeds are poor in sulfur-containing amino acids, and may be accompanied by anti-nutritional factors causing low protein digestibility problems. In this regard, Medicago truncatula serves as a model legume to study legume seed development especially the phase of seed storage protein accumulation. As developing legume seeds are complex structures, a thorough knowledge of the morphogenesis of the seed and the characterization of regulatory mechanisms underlying the embryo development and seed filling…

In silicoCytométrie en fluxTransformation génétiqueEndoreduplicationLegumesAuxineFacteur de TranscriptionRemplissage de la graineGenetic transformationIn vitroDOFMedicago truncatulaDéveloppement de la graineAuxin[SDV.BV] Life Sciences [q-bio]/Vegetal BiologyFlow cytometrySeed developmentTranscription factor
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Effect of nitrogen nutrition on Medicago truncatula resistance against Aphanomyces euteiches

2016

Nitrogen (N) is a major limiting factor for plant growth. N availability can also impact plant resistance to pathogens by regulating plant immunity. To better understand the links between N nutrition and plant defense, we analyzed the impact of N availability of plant on Medicago truncatula resistance to the root pathogen, Aphanomyces euteiches, taking into account plant genetic variability. This oomycete is considered as the most limiting factor for legume production. Two conditions of N nutrition, non-limiting or deprived in N, and ten plant genotypes were tested in vitro. The results showed that the resistance is modulated by nutritional conditions, depending on plant genotype. Analysis …

Nutrition azotée[SDV.SA] Life Sciences [q-bio]/Agricultural sciencesAphanomyces euteichesBiotic stressVariabilité génétiqueMonoxyde d’azoteMedicago truncatulaNitrogen nutritionStress biotiquesGenetic variabilityNitric oxide
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Proteomics of different tissues

2006

Livre publié sous forme électronique; International audience

PROTOCOLS[SDV] Life Sciences [q-bio][SDE] Environmental Sciences[SDV]Life Sciences [q-bio][SDE]Environmental SciencesMEDICAGO PROTEOMICSMEDICAGO TRUNCATULA
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Dynamic of the genetic structure of bacterial and fungal communities at different developmental stages of Medicago truncatula Gaertn. cv. Jemalong li…

2006

International audience; The genetic structure of bacterial and fungal communities was characterized in the rhizosphere of Medicago truncatula Gaertn. cv. Jemalong line J5 at five developmental stages (three vegetative and two reproductive stages), and in three compartments (bulk soil, rhizosphere soil and root tissues). The genetic structure of microbial communities was determined by cultivation-independent methods using directly extracted DNA that was characterized by automated ribosomal intergenic spacer analysis (ARISA). Principal component analyses (PCA) indicate that, for all developmental stages, the genetic structure of microbial communities differed significantly by compartment, wit…

PhysiologyRibosomal Intergenic Spacer analysisBulk soilPopulation geneticsPlant ScienceBiologyPlant RootsRhizobiaSoil03 medical and health sciencesSymbiosisMycorrhizaeMedicago truncatulaBotanyMICROBIAL COMMUNITIESEcosystem030304 developmental biology2. Zero hunger0303 health sciencesRhizosphereGENETIC STRUCTUREBacteriaSYMBIOTIC ASSOCIATIONSMEDICAGO TRUNCULATAPLANT DEVELOPMENTFungiANALYSE COMPOSANTE PRINCIPALE04 agricultural and veterinary sciences15. Life on landbiology.organism_classificationMedicago truncatula[SDV.BV.PEP]Life Sciences [q-bio]/Vegetal Biology/Phytopathology and phytopharmacySTADE DEVELOPPEMENTGenetic structure040103 agronomy & agriculture0401 agriculture forestry and fisheriesRhizome
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