Search results for "Germination"

showing 10 items of 251 documents

Prediction of conidial germination of Penicillium chrysogenum as influenced by temperature, water activity and pH.

2001

M. SAUTOUR, A. ROUGET, P. DANTIGNY, C. DIVIES AND M. BENSOUSSAN. 2001 Aims: Conidial germination of Penicillium chrysogenum was carried out under operating conditions compatible with a pastries manufacturing process. Methods and Results: A range, limited by two experimental values, was defined for each environmental factor tested: temperature (15 or 25°C), water activity (0·75 or 0·85) and pH (3·5 or 5·5). A closed device was made, which maintained an equilibrium between water activity of the culture medium and atmospheric relative humidity during 25 days, to follow spore germination. The combined effects of temperature, water activity and pH on spore germination were studied by applying fa…

Water activityTemperatureWaterFactorial experimentBiologyHydrogen-Ion ConcentrationPenicillium chrysogenumSpores FungalPenicillium chrysogenumbiology.organism_classificationApplied Microbiology and BiotechnologySporeConidiumHorticultureGerminationBotanySpore germinationRelative humidityLetters in applied microbiology
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Impact of water activity of diverse media on spore germination of Aspergillus and Penicillium species

2010

International audience; The effects of water activity (aw) of diverse media i/ culture medium for sporogenesis, aw sp ii/ liquid spore suspension medium, aw su and iii/ medium for germination, aw ge, on the germination time tG of Aspergillus carbonarius, Aspergillus flavus, Penicillium chrysogenum and Penicillium expansum were assessed according to a screening matrix at 0.95 and 0.99 aw. It was shown that i/ reduced tGs were obtained at 0.95 aw sp except for P. expansum ii/ a significant effect of aw su on tG was demonstrated for A. carbonarius, P. chrysogenum and P. expansum iii/ the most important factor for controlling the germination time was the medium for germination except for A. car…

Water activity[SDV]Life Sciences [q-bio]GerminationAspergillus flavusAspergillus carbonariusPenicillium chrysogenumMicrobiologyBotanySpore germinationFood sciencePenicillium expansumbiologyPenicilliumWaterfood and beveragesGeneral MedicineSpores Fungalbiology.organism_classificationPenicillium chrysogenumSporeAspergillusGerminationPenicilliumPenicillium expansumWater activityAspergillus flavusFood ScienceInternational Journal of Food Microbiology
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Biological Flora of the British Isles: Ambrosia artemisiifolia

2015

This account presents information on all aspects of the biology of Ambrosia artemisiifolia L. (Common ragweed) that are relevant to understanding its ecology. The main topics are presented within the standard framework of the Biological Flora of the British Isles: distribution, habitat, communities, responses to biotic factors, responses to environment, structure and physiology, phenology, floral and seed characters, herbivores and disease, and history, conservation, impacts and management. Ambrosia artemisiifolia is a monoecious, wind-pollinated, annual herb native to North America whose height varies from 10 cm to 2.5 m, according to environmental conditions. It has erect, branched stems …

[ SDV.BV ] Life Sciences [q-bio]/Vegetal BiologyecophysiologyGrowing seasonPlant Sciencemedicine.disease_causemodellingPollenmedicineTemperate climateRuderal species[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyEcology Evolution Behavior and SystematicsAmbrosia artemisiifoliabiogeographyagricultureHerbivoreEcologybiologyparasites and diseasesPhenologyEcologyreproductive biologygeographical and altitudinal distributionhealth15. Life on landbiology.organism_classificationclimate changegerminationWeed
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Expression Patterns of Key Hormones Related to Pea (Pisum sativum L.) Embryo Physiological Maturity Shift in Response to Accelerated Growth Conditions

2019

Protocols have been proposed for rapid generation turnover of temperate legumes under conditions optimized for day-length, temperature, and light spectra. These conditions act to compress time to flowering and seed development across genotypes. In pea, we have previously demonstrated that embryos do not efficiently germinate without exogenous hormones until physiological maturity is reached at 18 days after pollination (DAP). Sugar metabolism and moisture content have been implicated in the modulation of embryo maturity. However, the role of hormones in regulating seed development is poorly described in legumes. To address this gap, we characterized hormonal profiles (IAA, chlorinated auxin…

[SDE] Environmental Sciences0106 biological sciences0301 basic medicinegibberellinslegumes[SDV]Life Sciences [q-bio]abscisic acid;auxins;embryo physiological maturity;generation turnover;gibberellins;hormone regulation;legumes;precocious seed germinationprecocious seed germinationPlant Sciencelcsh:Plant cultureBiology01 natural sciencesPisumabscisic acid03 medical and health scienceschemistry.chemical_compoundSativumAuxin[SDV.BV]Life Sciences [q-bio]/Vegetal Biologylcsh:SB1-1110[SDV.BV] Life Sciences [q-bio]/Vegetal BiologyAbscisic acid2. Zero hungerchemistry.chemical_classificationgeneration turnoverhormone regulationfood and beveragesEmbryobiology.organism_classification[SDV] Life Sciences [q-bio]Horticulture030104 developmental biologychemistryGerminationauxins[SDE]Environmental SciencesGibberellinDesiccationembryo physiological maturity010606 plant biology & botanyFrontiers in Plant Science
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Dissection of Genetic Cell Programmes Driving Early Arbuscular Mycorrhiza Interactions

2008

The persistence through evolution of the arbuscular mycorrhiza (AM) symbiosis between Glomeromycota and plants is probably due to a widespread molecular dialogue between the two partners. Most studies have focussed on established mycorrhizal systems whilst evidence for cellular commitment of the symbiotic partners during early developmental phases is recent. Whereas spore germination by AM fungi can occur spontaneously, subsequent hyphal branching, appressoria differentiation, root penetration and intraradical development leading to symbiosis establishment are under the control of molecular interactions between the two partners. In this chapter, recent work on AM fungus–plant interactions i…

[SDE] Environmental Sciences0106 biological sciences0303 health sciencesMolecular interactionsAppressoriumHyphabiologyEcology[SDV]Life Sciences [q-bio]fungibiology.organism_classification01 natural sciences[SDV] Life Sciences [q-bio]Arbuscular mycorrhizaGlomeromycota03 medical and health sciencesSymbiosisEvolutionary biology[SDE]Environmental SciencesSpore germination030304 developmental biology010606 plant biology & botany
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Broomrape weeds. Underground mechanisms of parasitism and associated strategies for their control: a review

2016

prod 2018-285d SPE GESTAD Agrosup INRA CT?; International audience; Broomrapes are plant-parasitic weeds which constitute one of the most difficult-to-control of all biotic constraints that affect crops in Mediterranean, central and eastern Europe, and Asia. Due to their physical and metabolic overlap with the crop, their underground parasitism, their achlorophyllous nature, and hardly destructible seed bank, broomrape weeds are usually not controlled by management strategies designed for non-parasitic weeds. Instead, broomrape are in a current state of intensification and spread due to lack of broomrape-specific control programs, unconscious introduction to new areas and may be decline of …

[SDE] Environmental Sciences0106 biological sciencesIntegrated pest management[SDV]Life Sciences [q-bio]parasitismParasitismintegrated pest management; orobanche ;phelipanche;parasitism;germination;haustorium;plant recognition;seed bankGerminationReviewPlant Sciencelcsh:Plant culture01 natural sciencesIntegrated Pest ManagementCropseed bankplant recognitionRadicle[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal Biologylcsh:SB1-1110Phelipanche2. Zero hungerAbiotic componentbiologyOrobanchefungifood and beverages04 agricultural and veterinary sciences15. Life on landbiology.organism_classification[SDV] Life Sciences [q-bio]OrobancheAgronomyhaustoriumSeedlingGermination[SDE]Environmental Sciences040103 agronomy & agriculture0401 agriculture forestry and fisheries010606 plant biology & botany
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Indicateurs pour l'évaluation de l'impact de produits phytosanitaires sur la composante microbienne de la qualité biologique des sols

2011

National audience

[SDE] Environmental SciencesCYCLE DU SOUFRECYCLE DE L'AZOTENOMBRE DE COPIE DE GENES FONCTIONNELS[SPI.GPROC] Engineering Sciences [physics]/Chemical and Process Engineering[SDV]Life Sciences [q-bio]DEGRADATION DES PESTICIDESBIOINDICATEURSACTIVITES ENZYMATIQUES[SDV.IDA] Life Sciences [q-bio]/Food engineeringSTRUCTURE DE COMMUNAUTES MICROBIENNESABONDANCE DE COMMUNAUTES MICROBIENNES[SDV] Life Sciences [q-bio]POUVOIR DE COLONISATION DE CHAMPIGNONS MA[SDV.IDA]Life Sciences [q-bio]/Food engineering[SDE]Environmental SciencesDIVERSITE BIOCHIMIQUE[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process EngineeringTEST DE GERMINATION DE SPORESComputingMilieux_MISCELLANEOUS
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Mutant ACCase alleles endowing herbicide resistance have a direct effect on seed germination

2013

Germination and emergence dynamics and herbicide resistance are adaptive traits crucial for weed persistence in arable fields. Herbicide resistance alleles can have pleiotropic effects on other traits. We investigated the pleiotropic effects of acetyl-coenzyme A carboxylase (ACCase) alleles L1781, N2041 or G2078 on seed germination and seedling emergence in the grass weed Alopecurus myosuroides (black-grass). We used black-grass populations with homogenised genetic backgrounds that segregated for L1781, N2041 or G2078 ACCase alleles. In two series of experiments, germination dynamics and seedling growth were compared among seeds containing embryos carrying no, one or two copies of a given m…

[SDE] Environmental Sciencesdormancygrass[SDV]Life Sciences [q-bio]fitness costfood and beveragesgermination dynamics[SDV] Life Sciences [q-bio]resistancepleiotropic effectherbicidelipid[SDE]Environmental Sciences[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal Biologyseed
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Weed seeds ability to emerge on the soil surface

2015

International audience; Annual weeds have to produce seeds each year to maintain their populations. These seeds fallon the soil surface. Seeds exposed to light during their moistening (i.e. caused by rain) bettergerminate than seeds in the darkness (i.e. buried). However, rare studies quantified the unique andcombined effects of light, moisture and burial depth on the germination process. We investigated,in a greenhouse experiment in 2014, the impact of seed moisture (Moistened vs. Dried), lightduring moistening (Darkness vs. Light) and burial depth (Buried vs. Surface) on germination of 12annual weed species contrasted on their seed traits and germination periods (Alopecurusmyosuroides Hud…

[SDV.SA.AGRO] Life Sciences [q-bio]/Agricultural sciences/AgronomyLightConservation agriculture[SDV]Life Sciences [q-bio][SDV.SA.AGRO]Life Sciences [q-bio]/Agricultural sciences/AgronomyBurial depthGerminationEmergenceNo-till[SDV.SA.SDS]Life Sciences [q-bio]/Agricultural sciences/Soil study[SDV] Life Sciences [q-bio]Seed traits[SDV.SA.SDS] Life Sciences [q-bio]/Agricultural sciences/Soil studyMoisture
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Drought affects weed emergence in cover crops of no-till systems

2014

Session 7 - Crop science in changing environmentsEAEcolDur; International audience

[SDV.SA.AGRO] Life Sciences [q-bio]/Agricultural sciences/Agronomy[SDE] Environmental Sciences[SDV]Life Sciences [q-bio][SDV.SA.AGRO]Life Sciences [q-bio]/Agricultural sciences/AgronomyGermination[SDV.SA.SDS]Life Sciences [q-bio]/Agricultural sciences/Soil studyWeed[SDV] Life Sciences [q-bio][SDE]Environmental Sciencestill[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyClimate changeCover crop[SDV.BV] Life Sciences [q-bio]/Vegetal Biology[SDV.SA.SDS] Life Sciences [q-bio]/Agricultural sciences/Soil study
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