0000000000458380

AUTHOR

François Delmotte

showing 11 related works from this author

Gene expression levels influence amino acid usage and evolutionary rates in endosymbiotic bacteria

2005

International audience; Most endosymbiotic bacteria have extremely reduced genomes, accelerated evolutionary rates, and strong AT base compositional bias thought to reflect reduced efficacy of selection and increased mutational pressure. Here, we present a comparative study of evolutionary forces shaping five fully sequenced bacterial endosymbionts of insects. The results of this study were three-fold: (i) Stronger conservation of high expression genes at not just nonsynonymous, but also synonymous, sites. (ii) Variation in amino acid usage strongly correlates with GC content and expression level of genes. This pattern is largely explained by greater conservation of high expression genes, l…

0106 biological sciencesNonsynonymous substitutionInsectafood.ingredientBlochmanniaBiology010603 evolutionary biology01 natural sciencesGenomeEvolution Molecular03 medical and health sciencesfoodBacterial ProteinsBuchneraSpecies SpecificityGeneticsAnimalsAmino AcidsCodonSymbiosisWigglesworthiaGene030304 developmental biology2. Zero hungerGeneticschemistry.chemical_classification0303 health sciences[SDV.GEN]Life Sciences [q-bio]/GeneticsBacteriaGene Expression Regulation BacterialGeneral Medicinebiology.organism_classificationAT Rich SequenceGC Rich SequenceAmino acidINSECTEAmino Acid SubstitutionchemistryCodon usage biasMutationDatabases Nucleic AcidBuchneraGC-content
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The genome sequence of Blochmannia floridanus: Comparative analysis of reduced genomes

2003

Bacterial symbioses are widespread among insects, probably being one of the key factors of their evolutionary success. We present the complete genome sequence of Blochmannia floridanus , the primary endosymbiont of carpenter ants. Although these ants feed on a complex diet, this symbiosis very likely has a nutritional basis: Blochmannia is able to supply nitrogen and sulfur compounds to the host while it takes advantage of the host metabolic machinery. Remarkably, these bacteria lack all known genes involved in replication initiation ( dna A, pri A, and rec A). The phylogenetic analysis of a set of conserved protein-coding genes shows that Bl. floridanus is phylogenetically related to Buch…

replicationInsectafood.ingredientMolecular Sequence DataBlochmanniaselectionWigglesworthia glossinidiaModels BiologicalGenomeescherichia-coli k-12Open Reading FramesfoodPhylogeneticsevolutionAnimalsGenebuchneraPhylogenyGeneticsMultidisciplinaryPhylogenetic treebiologyphylogenetic analysisSequence Analysis DNABiological Sciencesbiology.organism_classificationDnaAproteinsgene-clusterPRI Bioscienceaphidsendosymbiotic bacteriaBuchneraGammaproteobacteriaGenome Bacterial
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2006

Understanding evolutionary processes that drive genome reduction requires determining the tempo (rate) and the mode (size and types of deletions) of gene losses. In this study, we analysed five endosymbiotic genome sequences of the gamma-proteobacteria (three different Buchnera aphidicola strains, Wigglesworthia glossinidia, Blochmannia floridanus) to test if gene loss could be driven by the selective importance of genes. We used a parsimony method to reconstruct a minimal ancestral genome of insect endosymbionts and quantified gene loss along the branches of the phylogenetic tree. To evaluate the selective or functional importance of genes, we used a parameter that measures the level of ad…

Genetics0303 health sciencesPhylogenetic treeBiologyWigglesworthia glossinidiabiology.organism_classificationGenome03 medical and health sciencesNegative selection0302 clinical medicineEvolutionary biologyPhylogeneticsCodon usage biasBuchneraGene030217 neurology & neurosurgeryEcology Evolution Behavior and Systematics030304 developmental biologyBMC Evolutionary Biology
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Phylogenetic evidence for hybrid origins of asexual lineages in an aphid species

2003

International audience; Understanding the mode of origin of asexuality is central to ongoing debates concerning the evolution and maintenance of sexual reproduction in eukaryotes. This is because it has profound consequences for patterns of genetic diversity and ecological adaptability of asexual lineages, hence on the outcome of competition with sexual relatives both in short and longer terms. Among the possible routes to asexuality, hybridization is a very common mechanism in animals and plants. Aphids present frequent transitions from their ancestral reproductive mode (cyclical parthenogenesis) to permanent asexuality, but the mode of origin of asexual lineages is generally not known bec…

0106 biological sciencesMitochondrial DNAHeterozygoteEvolution of sexual reproduction[SDV]Life Sciences [q-bio]Parthenogenesis010603 evolutionary biology01 natural sciencesAsexualityRhopalosiphum padiEvolution Molecular03 medical and health sciencesReproduction AsexualGeneticsAnimalsCluster AnalysisAllele sequence divergenceHybridizationPhylogenyPolymorphism Single-Stranded ConformationalEcology Evolution Behavior and Systematics030304 developmental biologyGeneticsAphidLikelihood Functions0303 health sciencesbiologyPhylogenetic treeModels GeneticParthenogenesisSequence Analysis DNAbiology.organism_classificationNuclear DNASexual reproductionEvolution of sexAphids[SDE]Environmental SciencesHybridization GeneticGeneral Agricultural and Biological SciencesMicrosatellite Repeats
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Gestion des résistances. L’importance des modalités de déploiement des substances

2013

National audience

[SDV] Life Sciences [q-bio][SDE] Environmental Sciences[SDV]Life Sciences [q-bio][SDE]Environmental Sciences[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal BiologyComputingMilieux_MISCELLANEOUS
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Les fléaux des cultures

2009

Encart dans l'article: "dans la jungle des milieux cultivés", Chauvel Bruno, Fried Guillaume PROD 20097067fe15; National audience

PHYLLLOXERAAGENTS PATHOGENESINSECTES RAVAGEURSPHYTOPHTORA INFESTANS[SDV.BC]Life Sciences [q-bio]/Cellular Biology[SDV.BC] Life Sciences [q-bio]/Cellular Biology
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The genome sequence of the grape phylloxera provides insights into the evolution, adaptation, and invasion routes of an iconic pest

2020

Background: Although native to North America, the invasion of the aphid-like grape phylloxera Daktulosphaira vitifoliae across the globe altered the course of grape cultivation. For the past 150 years, viticulture relied on grafting-resistant North American Vitis species as rootstocks, thereby limiting genetic stocks tolerant to other stressors such as pathogens and climate change. Limited understanding of the insect genetics resulted in successive outbreaks across the globe when rootstocks failed. Here we report the 294-Mb genome of D. vitifoliae as a basic tool to understand host plant manipulation, nutritional endosymbiosis, and enhance global viticulture. Results: Using a combination of…

0106 biological sciencesFil·loxeraPhysiology[SDV]Life Sciences [q-bio]Introduced speciesPlant Science01 natural sciencesGenomeGene duplicationsStructural BiologyVitislcsh:QH301-705.5ComputingMilieux_MISCELLANEOUS2. Zero hunger0303 health scienceseducation.field_of_studyHost plant interactionsGenomeEndosymbiosisbiologyfood and beveragesBiological SciencesBiological EvolutionGeneral Agricultural and Biological SciencesRootstockInfectionDaktulosphaira vitifoliaeBiotechnologyResearch ArticlePopulation010603 evolutionary biologyGeneral Biochemistry Genetics and Molecular BiologyHemiptera03 medical and health sciencesGeneticsInsect pestsAnimalsPlagues d'insectesAdaptationBiological invasionsGenomeseducationPhylloxeraEcology Evolution Behavior and Systematics030304 developmental biologyObligateHuman GenomeViticulturaCell Biology15. Life on landbiology.organism_classificationBiologicalEffectorsClimate Actionlcsh:Biology (General)13. Climate actionEvolutionary biologyArthropod genomesPhylloxeraAdaptationIntroduced SpeciesInsectAnimal DistributionDevelopmental Biology
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Analyse de risque phytosanitaire [i]Plasmopara halstedii[/i] agent responsable de la maladie du mildiou du tournesol

2014

[SDV] Life Sciences [q-bio]plasmopara halstedii[ SDV ] Life Sciences [q-bio][SDV]Life Sciences [q-bio]helianthus annuusanalyse de risque phytosanitairedirective 2000/29/CEmildiou du tournesoltournesol
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PODCAST PPR Vitae

2021

In this podcast, François Delmotte, Marielle Adrian and Hervé Hannin, the coordinators of the VITAE research project, present the strategies developed by VITAE to grow and protect vines differently. Vincent Pétré, the podcast's creator, lends his voice to the discussion to find out how to support the transition to agroecological winegrowing socio-ecosystems.

[SDE] Environmental SciencesViticultureCultiver et protéger autrementSortie des pesticides[SHS] Humanities and Social Sciencesprotection du vignoble
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Additional file 1 of The genome sequence of the grape phylloxera provides insights into the evolution, adaptation, and invasion routes of an iconic p…

2020

Additional file 1: Figures. S1-S22, Table S1-S20, Methods and Results. Figure S1. Mitochondrial genome view of grape phylloxera. Figure S2. Proportion of transposable elements (TE) in the genome. Figure S3. GO terms of phylloxera-specific genes. Figure S4. Enriched GO terms in the phylloxera genome with and without TEs. Figure S5. Gene gain/loss at different nodes or branches. Figure S6. Species phylogenetic tree based on insect genomes and the transcriptomes of Planoccoccus citri and Adelges tsugae. Figure S7. Diagram of the gap-filling and annotation process. Figure S8. Urea cycle in D. vitifoliae and A. pisum. Figure S9. IMD immune pathway in D. vitifoliae.Figure S10. Phylogenetic tree o…

2. Zero hunger
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Additional file 1 of The genome sequence of the grape phylloxera provides insights into the evolution, adaptation, and invasion routes of an iconic p…

2020

Additional file 1: Figures. S1-S22, Table S1-S20, Methods and Results. Figure S1. Mitochondrial genome view of grape phylloxera. Figure S2. Proportion of transposable elements (TE) in the genome. Figure S3. GO terms of phylloxera-specific genes. Figure S4. Enriched GO terms in the phylloxera genome with and without TEs. Figure S5. Gene gain/loss at different nodes or branches. Figure S6. Species phylogenetic tree based on insect genomes and the transcriptomes of Planoccoccus citri and Adelges tsugae. Figure S7. Diagram of the gap-filling and annotation process. Figure S8. Urea cycle in D. vitifoliae and A. pisum. Figure S9. IMD immune pathway in D. vitifoliae.Figure S10. Phylogenetic tree o…

2. Zero hunger
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