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RESEARCH PRODUCT
Genetic determinants of seed protein plasticity in response to the environment in Medicago truncatula
Julia BuitinkValérie LabasJoseph Ly VuLucie Combes-soiaChristine Le SignorKévin CartelierDelphine AiméKarine GallardoJean‐marie Prosperisubject
0106 biological sciences0301 basic medicineCandidate geneGenotypelegumesMutantVitamin UGenome-wide association studyPlant ScienceBiologymethionine recycling01 natural sciences[SDV.GEN.GPL]Life Sciences [q-bio]/Genetics/Plants genetics03 medical and health scienceschemistry.chemical_compoundMethionineStress PhysiologicalMedicago truncatulaGeneticsStorage protein[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyGenome-wide association studies (GWAS)GenePlant Proteins2. Zero hungerchemistry.chemical_classificationGeneticsMethionineSeed Storage Proteinsfood and beveragesGlobulinsCell Biologybiology.organism_classificationMedicago truncatulaMetabolic pathwayPhenotype030104 developmental biologychemistrystorage proteins13. Climate actionplasticityMutationSeedsseedGenome-Wide Association Study010606 plant biology & botanydescription
As the frequency of extreme environmental events is expected to increase with climate change, identifying candidate genes for stabilizing the protein composition of legume seeds or optimizing this in a given environment is increasingly important. To elucidate the genetic determinants of seed protein plasticity, major seed proteins from 200 ecotypes of Medicago truncatula grown in four contrasting environments were quantified after one-dimensional electrophoresis. The plasticity index of these proteins was recorded for each genotype as the slope of Finlay and Wilkinson's regression and then used for genome-wide association studies (GWASs), enabling the identification of candidate genes for determining this plasticity. This list was enriched in genes related to transcription, DNA repair and signal transduction, with many of them being stress responsive. Other over-represented genes were related to sulfur and aspartate family pathways leading to the synthesis of the nutritionally essential amino acids methionine and lysine. By placing these genes in metabolic pathways, and using a M. truncatula mutant impaired in regenerating methionine from S-methylmethionine, we discovered that methionine recycling pathways are major contributors to globulin composition establishment and plasticity. These data provide a unique resource of genes that can be targeted to mitigate negative impacts of environmental stresses on seed protein composition.
year | journal | country | edition | language |
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2021-04-01 |