Search results for "bacteri"

showing 10 items of 5466 documents

The presence of conifer resin decreases the use of the immune system in wood ants.

2008

5 pages; International audience; 1. Wood ants ( Formica paralugubris ) incorporate large amounts of solidified conifer resin into their nest, which reduces the density of many bacteria and fungi and protects the ants against some detrimental micro-organisms. By inducing an environment unfavourable to pathogens, the presence of resin may allow workers to reduce the use of their immune system. 2. The present study tested the hypothesis that the presence of resin decreases the immune activity of wood ants. Specifically, three components of the humoral immune defences of workers kept in resin-rich and resin-free experimental nests (antibacterial, lytic, and prophenoloxidase activities) were com…

[ SDV.BA.ZI ] Life Sciences [q-bio]/Animal biology/Invertebrate ZoologyFormica paralugubrisBiologyFormica paralugubrisMicrobiologyImmune systemNestImmunityBotany[ SDV.IMM ] Life Sciences [q-bio]/Immunologyantibacterial activity; Formica paralugubris; immunity; lytic activity; medication; plant secondary metabolites; prophenoloxidaseEcologyprophenoloxidasetechnology industry and agriculturelytic activityProphenoloxidasebiochemical phenomena metabolism and nutritionbiology.organism_classificationimmunityplant secondary metabolitesLytic cycleInsect SciencemedicationAntibacterial activityAntibacterial activityBacteria
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Insights into genome plasticity of the wine-making bacterium Oenococcus oeni strain ATCC BAA-1163 by decryption of its whole genome.

2008

International audience; Studying genomes of O. oeni strains having opposite oenological aptitudes is important for understanding why this lactic acid bacterium involved in malolactic fermentation is so well adapted to wine. Here, the genome of a strain ATCC BAA-1163, is described and compared with the recently reported genome of the better wine-adapted strain PSU-1. The BAA-1163 genome (8X) was obtained by shotgun sequencing and Phrap assembling. Compact and 62% AT-rich, it consists of a circular 1,792,103-bp chromosome and a 3,948-bp plasmid. It was analysed through a CAAT-Box annotation platform and manually inspected. A total of 51 RNA genes were detected, including two rRNA operons (the…

[ SDV.BID.EVO ] Life Sciences [q-bio]/Biodiversity/Populations and Evolution [q-bio.PE][SDV.BIBS] Life Sciences [q-bio]/Quantitative Methods [q-bio.QM][ INFO.INFO-BI ] Computer Science [cs]/Bioinformatics [q-bio.QM][SDV.BID.EVO]Life Sciences [q-bio]/Biodiversity/Populations and Evolution [q-bio.PE][SDV.BID.EVO] Life Sciences [q-bio]/Biodiversity/Populations and Evolution [q-bio.PE][ SDV.MP.BAC ] Life Sciences [q-bio]/Microbiology and Parasitology/Bacteriology[INFO.INFO-BI]Computer Science [cs]/Bioinformatics [q-bio.QM][SDV.MP.BAC] Life Sciences [q-bio]/Microbiology and Parasitology/Bacteriology[ SDV.BIBS ] Life Sciences [q-bio]/Quantitative Methods [q-bio.QM][SDV.BIBS]Life Sciences [q-bio]/Quantitative Methods [q-bio.QM][SDV.MP.BAC]Life Sciences [q-bio]/Microbiology and Parasitology/Bacteriology[INFO.INFO-BI] Computer Science [cs]/Bioinformatics [q-bio.QM]
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Seasonal fluctuations and long-term persistence of pathogenic populations of Agrobacterium spp. in soils.

2002

ABSTRACT Short- and long-term persistence of pathogenic (i.e., tumor forming) agrobacteria in soil was investigated in six nursery plots with a history of high crown gall incidence. No pathogenic Agrobacterium strains were isolated in soil samples taken in fall and winter in any plots, but such strains were isolated from both bulk soils and weed rhizospheres (over 0.5 × 10 5 pathogenic CFU/g of bulk soil or rhizosphere) in three out of six plots in spring and summer. PCR amplifications of a vir sequence from DNA extracted from soil confirmed the presence of Ti plasmids in summer and their absence in fall and winter. The results indicate that strains that harbor a Ti plasmid had an unforesee…

[ SDV.BV ] Life Sciences [q-bio]/Vegetal BiologyBiovarApplied Microbiology and BiotechnologyPolymerase Chain ReactionTi plasmidchemistry.chemical_compoundPlant MicrobiologyMESH : EcosystemMESH : DNA BacterialMESH: EcosystemMESH : Polymerase Chain ReactionComputingMilieux_MISCELLANEOUSSoil Microbiology2. Zero hungerOctopine[SDV.EE]Life Sciences [q-bio]/Ecology environment0303 health sciencesRhizosphereeducation.field_of_studyEcologybiologyBacterialHorticulture[SDV.EE] Life Sciences [q-bio]/Ecology environmentPOUVOIR PATHOGENESeasonsSoil microbiologyBiotechnologyPlasmidsRhizobiumMESH: RhizobiumDNA BacterialAgrobacteriumPopulationMESH : Soil MicrobiologyBulk soilMESH : Rhizobium03 medical and health sciencesMESH: PlasmidsBotany[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyeducationEcosystem030304 developmental biologyMESH : Seasons030306 microbiologyMESH: Polymerase Chain ReactionDNAbiology.organism_classificationMESH: DNA BacterialchemistryMESH: Soil MicrobiologyMESH : PlasmidsMESH: SeasonsFood Science
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Acyl-homoserine lactone production is more common among plant-associated Pseudomonas spp. than among soilborne Pseudomonas spp.

2001

ABSTRACT A total of 137 soilborne and plant-associated bacterial strains belonging to different Pseudomonas species were tested for their ability to synthesize N -acyl-homoserine lactones (NAHL). Fifty-four strains synthesized NAHL. Interestingly, NAHL production appears to be more common among plant-associated than among soilborne Pseudomonas spp. Indeed, 40% of the analyzed Pseudomonas syringae strains produced NAHL which were identified most often as the short-chain NAHL, N -hexanoyl- l -homoserine lactone, N -(3-oxo-hexanoyl)-homoserine lactone, and N -(3-oxo-octanoyl)- l -homoserine lactone (no absolute correlation between genomospecies of P. syringae and their ability to produce NAHL …

[ SDV.BV ] Life Sciences [q-bio]/Vegetal BiologyMESH: Sequence Analysis DNAMESH : Molecular Sequence DataMESH: PlantsMESH: Amino Acid SequenceErwiniaMESH: Base SequenceApplied Microbiology and Biotechnologychemistry.chemical_compoundPlant MicrobiologyMESH: Plant Diseases4-ButyrolactoneChromobacteriumPseudomonas syringaeMESH : Bacterial ProteinsMESH : DNA BacterialCloning MolecularMESH: Bacterial ProteinsComputingMilieux_MISCELLANEOUSSoil Microbiology[SDV.EE]Life Sciences [q-bio]/Ecology environment0303 health sciencesMESH: Gene Expression Regulation BacterialMESH: Genetic Complementation TestEcologybiologyMESH : Amino Acid SequenceMESH : Plant DiseasesPseudomonasBacterialMESH : 4-ButyrolactonePlantsN-ACYL-HOMOSERINE LACTONE[SDV.EE] Life Sciences [q-bio]/Ecology environmentPseudomonadalesSequence AnalysisBiotechnologyPseudomonadaceaeMESH : Gene Expression Regulation BacterialDNA BacterialMESH : Cloning MolecularMESH : Soil MicrobiologyCarbon-Oxygen LyasesMolecular Sequence DataHomoserineMESH : PlantsMicrobiologyMESH: Carbon-Oxygen Lyases03 medical and health sciencesBacterial ProteinsPseudomonas[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyMESH: Cloning MolecularAmino Acid SequenceMESH : Carbon-Oxygen Lyases030304 developmental biologyPlant DiseasesMESH: Molecular Sequence DataMESH : Genetic Complementation TestBase Sequence030306 microbiologyPantoeaGenetic Complementation TestMolecularMESH: PseudomonasGene Expression Regulation BacterialSequence Analysis DNADNAbiology.organism_classificationMESH: DNA BacterialchemistryGene Expression RegulationMESH: Soil MicrobiologyMESH: 4-ButyrolactoneMESH : Base SequenceFood ScienceMESH : PseudomonasMESH : Sequence Analysis DNACloning
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Depth matters : Effects of precipitation regime on soil microbial activity upon rewetting of a plant-soil system

2018

International audience; Climate change is predicted to affect not only the amount but also the temporal distribution of rain. Changes in frequency and amplitude of rain events, i.e. precipitation patterns, result in different water conditions with soil depth, and likely affect plant growth and shape plant and soil microbial activity. Here, we used 18O stable isotope probing (SIP) to investigate bacterial and fungal communities that actively grew or not upon rewetting, at three different depths in plant-soil mesocosms previously subjected to frequent or infrequent watering for 12 weeks (equal total water input). Phylogenetic marker genes for bacteria and fungi were sequenced after rewetting,…

[SDE] Environmental Sciences0301 basic medicineBiogeochemical cycleRain[SDV]Life Sciences [q-bio]Stable-isotope probingPlant DevelopmentBiologyMicrobiologyArticleprecipitation legacyMesocosmSoil03 medical and health sciencesdry-wetMicrobial ecologyAbundance (ecology)[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal BiologyPrecipitationPhylogenySoil MicrobiologyEcology Evolution Behavior and Systematicsplant-soil interactionsTopsoilBacteriaFungi04 agricultural and veterinary sciences15. Life on land[SDV] Life Sciences [q-bio]030104 developmental biologyAgronomy13. Climate action[SDE]Environmental Sciences040103 agronomy & agriculture0401 agriculture forestry and fisheriesSoil horizonmicrobial community
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Natural soil reservoirs for human pathogenic and fecal indicator bacteria

2015

Prod ? EA UB INRA BIOME; International audience; résumé du livre : Environmental microbiology, the study of the roles that microbes play in all planetary environments, is one of the most important areas of scientific research. The The Manual of Environmental Microbiology, Fourth Edition, provides comprehensive coverage of this critical and growing field. Thoroughly updated and revised, the Manuall is the definitive reference for information on microbes in air, water, and soil and their impact on human health and welfare. Written in accessible, clear prose, the manual covers four broad areas: general methodologies, environmental public health microbiology, microbial ecology, and biodegradati…

[SDE] Environmental Sciences16 rRNA Sequencinghuman pathogenic bacteria[SDV]Life Sciences [q-bio]Indicator bacteriamultilocus sequence typingBiologySoil management03 medical and health sciences[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal BiologyFeces030304 developmental biology0303 health sciences[ SDV ] Life Sciences [q-bio]030306 microbiologybusiness.industryEcologymassive parallel sequencing15. Life on landbiology.organism_classification6. Clean waterBiotechnologyWater resources[SDV] Life Sciences [q-bio]13. Climate actionAgricultureSoil water[SDE]Environmental SciencesbusinessBacteriaSludge
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Determinants of the distribution of nitrogen-cycling microbial communities at the landscape-scale

2010

Little information is available regarding the landscape-scale distribution of microbial communities and its environmental determinants. However, a landscape perspective is needed to understand the relative importance of local and regional factors and land management for the microbial communities. In this manuscript, we investigated the distribution of functional microbial communities involved in N-cycling and of the total bacterial and crenarchaeal communities over 107 sites using a grid with a 16 km lag distance within Burgundy, a 31 500 km2 region in France. After quantifying the abundances of the total bacterial, crenarchaeal, nitrate-reducing, denitrifying and ammonia-oxidizing communit…

[SDE] Environmental SciencesBIOGEOCHEMICAL CYCLING[SDV]Life Sciences [q-bio]DENITRIFIERSNITRATE REDUCERSSoilAbundance (ecology)RNA Ribosomal 16SNITROGEN CYCLEAMMONIA OXIDIZERSMICROBIAL COMMUNITIESSoil MicrobiologyComputingMilieux_MISCELLANEOUS0303 health sciencesEcologyGEOMORPHOLOGIE04 agricultural and veterinary sciencesnitrate reducerSpatial heterogeneity[SDV] Life Sciences [q-bio][SDV.MP]Life Sciences [q-bio]/Microbiology and Parasitology[SDE]Environmental SciencesOriginal ArticleFrancelandscape;nitrogen cycle;denitrifier;ammonia oxidizer;nitrate reducer;biogeographyNitrogenBiologyQUANTITATIVE PCRSpatial distributionBacterial Physiological PhenomenaMicrobiology03 medical and health sciencesMicrobial ecologyEcosystemSpatial analysisEcology Evolution Behavior and Systematics030304 developmental biology[ SDV ] Life Sciences [q-bio]LANDSCAPEBacteriaCrenarchaeotaLANDSCAPE-SCALE15. Life on landammonia oxidizerdenitrifier13. Climate action040103 agronomy & agricultureSpatial ecology0401 agriculture forestry and fisheriesECOSYSTEMSpatial variabilityNITROGEN-CYCLINGBIOGEOGRAPHY
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Biological nitrogen fixation for the 21st century

1998

The biodiversity of nitrogen-fixing organisms is huge. Taxonomic and phylogenetic research is needed to structure this diversity, to facilitate communication among scientists, and to increase our understanding of the evolution and biology of diazotrophs. Molecular tools for taxonomic and biodiversity studies of diazotrophic rhizobia, frankiae, cyanobacteria and bacilli are presented in sections 2 to 5. Sections 6 to 9 focus on problems with genus and species assignment.

[SDE] Environmental SciencesBacilli[SDV]Life Sciences [q-bio]BiodiversityTECHNIQUE RFLPBACTERIETAXONOMIERhizobia03 medical and health sciencesPhylogeneticsTECHNIQUE PCRETUDE COMPARATIVEPHYLOGENIESYMBIOSEComputingMilieux_MISCELLANEOUS0303 health sciencesbiologyPhylogenetic tree030306 microbiologyEcologyLEGUMINEUSEFIXATION BIOLOGIQUE DE L'AZOTE04 agricultural and veterinary sciencesLoess plateauDIVERSITE GENETIQUEbiology.organism_classification[SDV] Life Sciences [q-bio][SDE]Environmental Sciences040103 agronomy & agriculture0401 agriculture forestry and fisheriesETUDE EXPERIMENTALETaxonomy (biology)Diazotroph
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Effect of cropping cycles and repeated herbicide applications on the degradation of diclofop-methyl, bentazone, diuron, isoproturon and pendimethalin…

2002

A greenhouse study was conducted to investigate the ability of four crops (wheat, corn, oilseed rape and soybean) to influence the degradation of bentazone, diclofop-methyl, diuron, isoproturon and pendimethalin in soil. The present study showed that microbial biomass-carbon was significantly higher in planted soils than in bulk soil, especially with wheat and corn, after several cropping cycles. The biomass in corn and soybean planted soils was adversely affected by bentazone but recovered after three cropping cycles. In wheat-planted soils, diclofop-methyl application resulted in persistent increase of the amount of microbial biomass. Bentazone did not show accelerated degradation even af…

[SDE] Environmental SciencesCrops Agricultural[SDV]Life Sciences [q-bio]Bulk soil010501 environmental sciencesBenzothiadiazinescomplex mixtures01 natural scienceschemistry.chemical_compoundSoilHalogenated Diphenyl EthersBiomassCarbon RadioisotopesComputingMilieux_MISCELLANEOUSSoil Microbiology0105 earth and related environmental sciences2. Zero hungerCambisolRhizosphereMethylurea CompoundsMineralsAniline CompoundsBacteriaChemistryHerbicidesPhenyl EthersPhenylurea Compoundsfungifood and beveragesAgriculture04 agricultural and veterinary sciencesGeneral MedicineMineralization (soil science)15. Life on landPesticideCarbon DioxideEnvironment Controlled[SDV] Life Sciences [q-bio]PendimethalinKineticsAgronomyInsect ScienceDiuronSoil water[SDE]Environmental Sciences040103 agronomy & agriculturePesticide degradation0401 agriculture forestry and fisheriesAgronomy and Crop SciencePest management science
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Monitoring of atrazine treatment on soil bacterial, fungal and atrazine-degrading communities by quantitative competitive PCR

2003

We report the development of quantitative competitive (QC) PCR assays for quantifying the 16S, 18S ribosomal and atzC genes in nucleic acids directly extracted from soil. QC-PCR assays were standardised, calibrated and evaluated with an experimental study aiming to evaluate the impact of atrazine application on soil microflora. Comparison of QC-PCR 16S and 18S results with those of soil microbial biomass showed that, following atrazine application, the microbial biomass was not affected and that the amount of 16S rDNA gene representing 'bacteria' increased transitorily, while the amount of 18S rDNA gene representing fungi decreased in soil. In addition, comparison of atzC QC-PCR results wit…

[SDE] Environmental SciencesDNA BacterialTime Factors[SDV]Life Sciences [q-bio]Microbial metabolismcomplex mixturesPolymerase Chain ReactionMicrobiology03 medical and health scienceschemistry.chemical_compoundRNA Ribosomal 16SRNA Ribosomal 18SAtrazineFood scienceBiomassDNA FungalSoil MicrobiologyComputingMilieux_MISCELLANEOUS0303 health sciencesbiologyBacteria030306 microbiologyHerbicidesFungi04 agricultural and veterinary sciencesGeneral MedicineBiodegradationPesticidebiology.organism_classificationSoil contamination[SDV] Life Sciences [q-bio]Microbial population biologychemistryInsect ScienceCalibration[SDE]Environmental Sciences040103 agronomy & agriculture0401 agriculture forestry and fisheriesAtrazineAgronomy and Crop ScienceSoil microbiologyBacteria
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