Search results for "Vegetal Biology"

showing 10 items of 1601 documents

Differential toxicity of simazine and diuron to Torilis arvensis and Lolium rigidum

1990

Summary: In a soil application, Torilis arvensis was nearly as susceptible as Lolium rigidum to simazine but was 18-fold more tolerant to diuron. Treat ment with diuron inhibited photosynthesis in L. rigidum but had only a limited effect in T. arvensis although chloroplasts isolated from both species displayed similar susceptibility. 14C-diuron degradation in plants was limited, with the formation of conjugates of mono-methyl-diuron in T. arvensis and N-dealkylated derivatives of diuron in L. rigidum. 14C-diuron entered the roots and was translocated throughout the leaves of L. rigidum but was restricted to stems, leaf petioles and leaf veins of T. arvensis. This difference in transport pat…

0106 biological sciencesbiologyved/biologyLolium rigidumved/biology.organism_classification_rank.speciesSimazine04 agricultural and veterinary sciencesPlant Sciencebiology.organism_classification01 natural sciencesDifferential toxicityLoliumchemistry.chemical_compoundchemistryBotany040103 agronomy & agricultureTorilis arvensis0401 agriculture forestry and fisheries[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal BiologyAgronomy and Crop ScienceEcology Evolution Behavior and SystematicsComputingMilieux_MISCELLANEOUS010606 plant biology & botany
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Nitric Oxide Signalling in Plants: Cross-Talk With Ca2+, Protein Kinases and Reactive Oxygen Species

2010

International audience; Nitric oxide (NO) is a gaseous free radical recognized as a ubiquitous signal transducer that contributes to various biological processes in animals. It exerts most of its effects by regulating the activities of various proteins including Ca2+ channels, protein kinases and transcription factors. In plants, studies conducted over the past ten years revealed that NO also functions as an endogenous mediator in diverse physiological processes ranging from root development to stomatal closure. Its biological role as an intracellular plant messenger molecule, however, remains poorly understood. Here, we review the molecular basis of NO signaling in animals and discuss curr…

0106 biological scienceschemistry.chemical_classification[ SDV.BV ] Life Sciences [q-bio]/Vegetal Biology0303 health sciencesProgrammed cell deathReactive oxygen speciesKinaseEndogenous mediator01 natural sciencesNitric oxideCell biology03 medical and health scienceschemistry.chemical_compoundchemistry[SDV.BV]Life Sciences [q-bio]/Vegetal BiologySignal transductionTranscription factorIntracellular030304 developmental biology010606 plant biology & botany
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Biological evidence for a 1:1 Ca2+:glyphosate association in deposit residuals on the leaf surface of barley

2001

It has long been known that calcium ion antagonizes glyphosate, but it was not clear whether the stoichiometry of their interaction is 1:1 or 1:2. Two independent methods were used to determine which stoichiometry was the most probable. First, dose-response curves of barley (Hordeum vulgare L.) plants treated with glyphosate were determined in the presence of 0, 1.25, 2.5, 5 and 10 mM CaCl 2 . The doses of 'free' glyphosate (=not inactivated by calcium ion) were computed using the assumptions of 1:1 and 1:2 stoechiometries. The response curves were redrawn as a function of 'free' glyphosate. Analysis showed that the 1:2 hypothesis could be rejected, whereas the 1:1 hypothesis was highly pro…

0106 biological scienceschemistry.chemical_element04 agricultural and veterinary sciencesPlant SciencePenetration (firestop)PesticideCalciumPhytopharmacology01 natural scienceschemistry.chemical_compoundAnimal sciencechemistryGlyphosateBotany040103 agronomy & agriculture[SDV.BV]Life Sciences [q-bio]/Vegetal Biology0401 agriculture forestry and fisheriesBioassay[SDV.BV] Life Sciences [q-bio]/Vegetal BiologyPoaceaeHordeum vulgareAgronomy and Crop ScienceComputingMilieux_MISCELLANEOUSEcology Evolution Behavior and Systematics010606 plant biology & botanyWeed Research
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The fungal elicitor cryptogein induces cell wall modifications on tobacco cell suspension

2000

Upon addition of the fungal elicitor cryptogein, suspension cells of tobacco (Nicotiana tabacum cv. Xanthi) aggregated in clusters. Cytochemical experiments indicated that elicited cells displayed fibrillar expansions of pectin along the primary cell wall. Immunocytochemical detection of pectin epitopes indicated that the fibrillar material surrounding the treated cells was mostly composed of low methylated galacturonan sequences, but the use of the cationic probe did not reveal the presence of negatively charged carboxyl groups: the presence of important amounts of calcium ions in these pectic fibrillar expansions accounts for these observations. These data indicate that tobacco cells trea…

0106 biological sciencesfood.ingredientPectinPhysiologyNicotiana tabacumchemistry.chemical_elementPlant ScienceCalcium01 natural sciences[SDV.BV.BOT] Life Sciences [q-bio]/Vegetal Biology/BotanicsCell wallFungal Proteins03 medical and health sciencesfoodCell WallTobaccoCells CulturedComputingMilieux_MISCELLANEOUS030304 developmental biology0303 health sciencesbiologyAlgal Proteins[SDV.BV.BOT]Life Sciences [q-bio]/Vegetal Biology/Botanicsbiology.organism_classificationImmunohistochemistryElicitorRespiratory burstMicroscopy ElectronPlants ToxicBiochemistrychemistryCell cultureBiophysicsCalciumSignal transduction010606 plant biology & botany
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Interaction between diclofop-methyl and 2,4-D in wild oat (Avena fatua L.) and cultivated oat (Avena sativa L.), and fate of diclofop-methyl in culti…

1989

Summary Influence of 2,4-D on toxicity of diclofop-methyl to Avena sativa (cv. Selma) and Arena fatua at 2·5 leaf stage has been evaluated under controlled conditions. Effects of 2,4-D on the fate of diclofop-methyl in cultivated oat have also been studied. Mixture with 2,4-D reduced the toxicity of diclofop-methyl to both species. When applied immediately after diclofop-methyl treatment, 2,4-D still reduced herbicide toxicity to wild oat. This reduction was smaller in cultivated oat. and was only observed at higher phytotoxicity. No interaction was observed when a 10-day period separated the two applications. In mixture, 2,4-D enhanced diclofop-methyl penetration and diclofop acid conjugat…

0106 biological sciencesfood.ingredientPlant Science01 natural sciencesACTIVITE HERBICIDEfoodBotany[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal BiologyAvena fatuaCultivated OatDiclofop-methylComputingMilieux_MISCELLANEOUSEcology Evolution Behavior and Systematics2. Zero hungerbiologyChemistry04 agricultural and veterinary sciencesAVOINEbiology.organism_classificationMolecular biologyAvena040103 agronomy & agriculture0401 agriculture forestry and fisheriesAgronomy and Crop Science2 4 D010606 plant biology & botanyWeed Research
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GeneSys-Beet: A model of the effects of cropping systems on gene flow between sugar beet and weed beet

2008

A weedy form of the genus Beta, i.e. Beta vulgaris ssp. vulgaris (hence ''weed beet'') frequently found in sugar beet is impossible to eliminate with herbicides because of its genetic proximity to the crop. It is presumed to be the progeny of accidental hybrids between sugar beet (ssp. vulgaris) and wild beet (ssp. maritima), or of sugar beet varieties sensitive to vernalization and sown early in years with late cold spells. In this context, genetically modified (GM) sugar beet varieties tolerant to non-selective herbicides would be interesting to manage weed beet. However, because of the proximity of the weed to the crop, it is highly probable that the herbicide-tolerance transgene would b…

0106 biological scienceshttp://aims.fao.org/aos/agrovoc/c_890PopulationSoil ScienceContext (language use)H60 - Mauvaises herbes et désherbageFlux de gènesGenetically modified01 natural sciencesF30 - Génétique et amélioration des planteshttp://aims.fao.org/aos/agrovoc/c_9000024Crophttp://aims.fao.org/aos/agrovoc/c_37331http://aims.fao.org/aos/agrovoc/c_34285[SDV.BV]Life Sciences [q-bio]/Vegetal Biologyhttp://aims.fao.org/aos/agrovoc/c_2018Cropping systemeducation2. Zero hungereducation.field_of_studybiologyU10 - Informatique mathématiques et statistiquesModélisation des culturesfungifood and beverages04 agricultural and veterinary sciences15. Life on landbiology.organism_classificationWeed controlGene flowTillagePratique culturalehttp://aims.fao.org/aos/agrovoc/c_8347AgronomyOrganisme génétiquement modifié040103 agronomy & agriculture0401 agriculture forestry and fisheriesSugar beetBeta vulgarisWeedAgronomy and Crop ScienceMauvaise herbeModelCropping system010606 plant biology & botanyField Crops Research
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Update in unified terroir zoning methodologies

2018

International audience; The concept of terroir is based on the assumption that the quality and the typicity of an agricultural product are linked to its origin. The precise definition of an origin requires zoning. Because terroir expression in viticulture is largely driven by interactions between the vine and its natural environment, soil and climate play a key role in terroir zoning. For clarity, soil-based and climate-based zoning are presented separately in this paper. They are, however, ideally carried out simultaneously, because of the existence of multiple interactions between these terroir factors. Prior to the implementation of zoning, the objectives need to be carefully defined. Th…

0106 biological scienceslcsh:GE1-350010504 meteorology & atmospheric sciencesbusiness.industryComputer scienceScale (chemistry)media_common.quotation_subjectGeomaticsEnvironmental resource management15. Life on land01 natural scienceslaw.inventionlawCLARITY[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyProduction (economics)Quality (business)Product (category theory)businessZoninglcsh:Environmental sciences010606 plant biology & botany0105 earth and related environmental sciencesTerroirmedia_commonE3S Web of Conferences
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Assessment of genetically modified maize 1507 × 59122 × MON810 × NK603 and subcombinations, for food and feed uses, under Regulation (EC) No 1829/200…

2017

In this opinion, the GMO Panelassessed the four-event stack maize 1507 x 59122 x MON810 x NK603 and its ten subcombinations, independently of their origin. The GMO Panelpreviously assessed the four single events combined in this four-event stack maize and five of their combinations and did not identify safety concerns. No new data on the single events or their previously assessed combinations leading to modification of the original conclusions were identified. Based on the molecular, agronomic, phenotypic and compositional characteristics, the combination of the single maize events and of the newly expressed proteins in the four-event stack maize did not give rise to food and feed safety or…

0106 biological sciencesmaïs[SDV]Life Sciences [q-bio]Veterinary (miscellaneous)ogmPlant Science010501 environmental sciencesBiology01 natural sciencesMicrobiologyProtein expression1507 x 59122 x MON810 x NK603Environmental safety[SDV.IDA]Life Sciences [q-bio]/Food engineering[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process Engineeringinsect resistant and herbicide tolerantmaize (Zea mays)0105 earth and related environmental sciences2. Zero hungerGenetically modified maizeGMO;maize (Zea mays);1507 x 59122 x MON810 x NK603;insect resistant and herbicide tolerant;Regulation (EC) No 1829/2003GMObusiness.industryRegulation (EC) No 1829/2003BiotechnologyScientific OpinionAgronomyRegulation (EC) No1829/2003Animal Science and ZoologyParasitology1507 × 59122 ×  MON810 ×  NK603businessRegulation (EC) No 1829/2003010606 plant biology & botanyFood ScienceEFSA Journal
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Crop and density effects on weed beet growth and reproduction

2004

Summary Weed beet populations growing in each crop of the arable rotation could be a relay for the gene flow from adjacent transgenic herbicide-resistant sugarbeet. In this study, weed beet growth and reproduction were assessed under several conditions which could be found in the rotation: various weed beet densities (ranging from 1 to 120 plants m−2) and various crops (winter wheat, spring barley, spring pea, sugarbeet, maize, ryegrass). Measurements were carried out both on life-cycle dynamics (bolting time, time to flowering onset, dynamics of flower opening) and on other quantitative data (survival rate, bolting rate and pollen, flower and seed production). Increasing weed beet density …

0106 biological sciencesmedia_common.quotation_subjectPlant ScienceBiologymedicine.disease_cause01 natural sciencesCompetition (biology)CropPollenmedicine[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal BiologyCropping systemComputingMilieux_MISCELLANEOUSEcology Evolution Behavior and Systematicsmedia_common2. Zero hungerBolting04 agricultural and veterinary sciences15. Life on landAgronomy040103 agronomy & agriculture0401 agriculture forestry and fisheriesReproductionArable landWeedAgronomy and Crop Science010606 plant biology & botanyWeed Research
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S-34 and N-15 labelling to model S and N flux in plants and determine the different components of N and S use efficiency

2013

International audience; In order to highlight our understanding on ecosystems functioning and resource sharing/competition, either in artificial environment or agrosystems, according to changes in the climatic conditions, it is necessary to measure accurately element fluxes within plants. Stable isotopes allow tracking safely and accurately on a short time frame the behavior of elements in plants. After a short review devoted to isotopic studies of elemental flux within plants, we explain how a direct multiple labelling study might be conducted in a plant, so as to measure over short time nitrogen and sulfur acquisition, and assimilates arising from a labelled source.

0106 biological sciencesmedia_common.quotation_subject[SDV]Life Sciences [q-bio]Allocation01 natural sciencesMeasure (mathematics)Competition (biology)RemobilizationArtificial environment03 medical and health sciencesFlux (metallurgy)Time frameLabellingNutrient use efficiency[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyEcosystem030304 developmental biologymedia_common0303 health sciencesFluxStable isotope ratioIsotope13. Climate action[SDE]Environmental SciencesEnvironmental scienceBiological system010606 plant biology & botany
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