Search results for "lcsh:SB1-1110"

showing 10 items of 127 documents

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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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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Trophic relationships between the parasitic plant species phelipanche ramosa (L.) and different hosts depending on host phenological stage and host g…

2016

Prod 2018-285c INRA AGROSUP GESTAD SPE CT3 SPE CT1 EJ2 EA; International audience; Phelipanche ramosa (L.) Pomel (branched broomrape) is a holoparasitic plant that reproduces on crops and also on weeds, which contributes to increase the parasite seed bank in fields. This parasite extracts all its nutrients at the host’s expense so that host–parasite trophic relationships are crucial to determine host and parasite growth. This study quantified the intensity with which P. ramosa draws assimilates from its host and analyzed whether it varied with host species, host phenological stage and host growth rate. A greenhouse experiment was conducted on three host species: the crop species Brassica na…

[SDE] Environmental Sciences0106 biological sciencesParasitic plant[SDV]Life Sciences [q-bio]ParasitismPlant Sciencelcsh:Plant culture01 natural sciencesbrassica napusPathosystemBotany[SDV.BV]Life Sciences [q-bio]/Vegetal Biology[SDV.BV] Life Sciences [q-bio]/Vegetal Biologylcsh:SB1-1110Original ResearchTrophic level2. Zero hungerbiologygeranium dissectumbiomassHost (biology)food and beveragesCapsella bursa-pastoris04 agricultural and veterinary sciences15. Life on landphelipanche ramosabiology.organism_classification[SDV] Life Sciences [q-bio]Phelipanche ramosa;Brassica napus;Geranium dissectum;Capsella bursa-pastoris;weed;biomass;host;parasiteAgronomyhostShootparasite[SDE]Environmental Sciences040103 agronomy & agriculturecapsella bursa-pastoris0401 agriculture forestry and fisheriesWeed010606 plant biology & botanyweed
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Indicators of agricultural intensity and intensification: a review of the literature

2015

Since the 1960s, research has dealt with agricultural intensification (AI) as a solution to ensure global food security. Recently, sustainable intensification (SI) has increasingly been used to describe those agricultural and farming systems that ensure adequate ecosystem service provision. Studies differ in terms of the application scales and methodologies, thus we aim to summarize the main findings from the literature on how AI and SI are assessed, from the farm to global levels. Our literature review is based on 7865 papers selected from the Web of Science database and analysed using CorText software. A further selection of 105 relevant papers was used for an in-depth full-text analysis …

[SDV.SA]Life Sciences [q-bio]/Agricultural sciences010504 meteorology & atmospheric sciencesagriculture intensiveAgronomia[SDV.SA.AGRO]Life Sciences [q-bio]/Agricultural sciences/Agronomy01 natural sciencesEcosystem servicesmedia_common2. Zero hungerFood securityIntensive farmingAgriculturaEnvironmental resource managementspatial scales[SHS.GEO]Humanities and Social Sciences/Geography04 agricultural and veterinary sciencesAgroécologiesustainabilityAgricultural sciencesindicateur de rechercheéchelle spatialeGeographyLand use intensity;ecosystem services;farming systems;indicators;spatial scales;sustainabilitymedia_common.quotation_subjectlcsh:Plant cultureEconomiaécosystèmelcsh:AgricultureLand use intensitysustainability.[SDV.EE.ECO]Life Sciences [q-bio]/Ecology environment/Ecosystemssystème agricolelcsh:SB1-1110farming systemsAgricultural productivity0105 earth and related environmental sciencesétat de l'artbusiness.industrylcsh:S[SDV.SA.AEP]Life Sciences [q-bio]/Agricultural sciences/Agriculture economy and politics15. Life on land[SDE.ES]Environmental Sciences/Environmental and SocietyindicatorsAgricultureSustainability040103 agronomy & agriculturedéveloppement agricole durable0401 agriculture forestry and fisherieslittératureMonocultureecosystem servicesbusinessAgronomy and Crop ScienceSciences agricolesDiversity (politics)Italian Journal of Agronomy
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Sulfate transporters in the plant’s response to drought and salinity: regulation and possible functions

2014

International audience; Drought and salinity are two frequently combined abiotic stresses that affect plant growth, development, and crop productivity. Sulfate, and molecules derived from this anion such as glutathione, play important roles in the intrinsic responses of plants to such abiotic stresses. Therefore, understanding how plants facing environmental constraints re-equilibrate the flux of sulfate between and within different tissues might uncover perspectives for improving tolerance against abiotic stresses. In this review, we took advantage of genomics and post-genomics resources available in Arabidopsis thaliana and in the model legume species Medicago truncatula to highlight and …

[SDV]Life Sciences [q-bio]ArabidopsisPlant Sciencetransporterssulfatelcsh:Plant cultureSULFUR STARVATIONVESICULAR-ARBUSCULAR MYCORRHIZAEchemistry.chemical_compoundMini Review ArticleArabidopsisBotanyArabidopsis thalianaLOTUS-JAPONICUS[SDV.BV]Life Sciences [q-bio]/Vegetal Biologylcsh:SB1-1110SulfateROOT-NODULESGENE-EXPRESSION2. Zero hungerAbiotic componentbiologyIDENTIFICATIONEcologyfungisulfate;transporters;abiotic stresses;M. truncatula;Arabidopsis;VESICULAR-ARBUSCULAR MYCORRHIZAE;ARABIDOPSIS-THALIANA;MEDICAGO-TRUNCATULA;SALT STRESS;GENE-EXPRESSION;SULFUR STARVATION;LOTUS-JAPONICUS;ROOT-NODULES;MAIZE ROOTS;IDENTIFICATIONfood and beverages15. Life on landbiology.organism_classificationMEDICAGO-TRUNCATULAMAIZE ROOTSSulfate transportMedicago truncatulaabiotic stressesSalinitySALT STRESSchemistry[SDE]Environmental SciencesARABIDOPSIS-THALIANAAdaptationM. truncatulaFrontiers in Plant Science
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Sesquiterpene volatile organic compounds (VOCs) are markers of elicitation by sulfated laminarine in grapevine

2015

SPE IPM UB CT1; International audience; Inducing resistance in plants by the application of elicitors of defense reactions is an attractive plant protection strategy, particularly for grapevine (Vitis vinifera), which is susceptible to severe fungal diseases. Although induced resistance (IR) can be successful under controlled conditions, in most cases, IR is not sufficiently effective for practical disease control under outdoor conditions. Progress in the application of IR requires a better understanding of grapevine defense mechanisms and the ability to monitor defense markers to identify factors, such as physiological and environmental factors, that can impact IR in the vineyard. Volatile…

[SDV]Life Sciences [q-bio]Defence mechanismsPlant Sciencelcsh:Plant cultureSesquiterpeneTerpenechemistry.chemical_compoundLaminarinPTR-QMS;SPME-GC-MS;downy mildew;methylsalicylate;plant defenses;terpenesBotany[SDV.IDA]Life Sciences [q-bio]/Food engineeringPlant defense against herbivory[SDV.BV]Life Sciences [q-bio]/Vegetal Biologylcsh:SB1-1110[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process EngineeringmethylsalicylateOriginal ResearchSPME-GC-MSPtr-qms ; Spme-gc-ms ; Downy Mildew ; Methylsalicylate ; Plant Defenses ; Terpenesdowny mildewfood and beveragesElicitorHorticulturechemistry[SDE]Environmental Sciencesplant defensesDowny mildewPTR-QMSMethyl salicylateterpenes
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Post-translational Modifications in Plant Nuclear Signaling: Novel Insights Into Responses to Environmental Changes

2019

Just imagine a Plant Science professor in front of a classroom full of interested and attentive students. Imagine what their answers to this intriguing question would be: “What are, according to you, the functions ensured by the plant cell nucleus?” It would be very surprising if some of them would answer cell signaling in response to biotic and abiotic stresses or developmental processes. Most of them would probably answer according to a classical point of view: DNA replication or gene expression. Hence it is still admitted in recent publications (see for instance Fedorenko et al., 2010) that molecules smaller than 40 kDa can diffuse freely across the nuclear envelope pores. However, Pauly…

[SDV]Life Sciences [q-bio]SUMO proteinPlant Sciencelcsh:Plant culture03 medical and health sciences0404 agricultural biotechnologynucleus;post-translation modification (PTM);phosphorylation;acetylation;SUMOylationpost-translation modification (PTM)medicine[SDV.BV]Life Sciences [q-bio]/Vegetal Biologylcsh:SB1-1110030304 developmental biologyacetylation0303 health sciencesChemistryphosphorylationnucleus04 agricultural and veterinary sciences040401 food scienceSUMOylationCell biologymedicine.anatomical_structureEditorialAcetylation[SDE]Environmental SciencesPosttranslational modificationPhosphorylationAcetylation ; Nucleus ; Phosphorylation ; Post-translation Modification (ptm) ; SumoylationNucleusFrontiers in Plant Science
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Biostimulant Potential of Humic Acids Extracted From an Amendment Obtained via Combination of Olive Mill Wastewaters (OMW) and a Pre-treated Organic …

2018

Olive mill wastewaters (OMW) detain contain significant levels of phenolic compounds with antimicrobial/phytotoxic activity and high amounts of undecomposed organic matter that may a high pollutant load that exerts negative effects on soil biology because of significant levels in phenolic compounds with antimicrobial/phytotoxic activity and limited biodegradability, and high amounts of undecomposed organic matter. Among OMW detoxification techniques, those focusing on oxidative degradation of phenolic compounds are relevant those focusing on oxidative degradation of phenolic compounds to reduce their toxicity. The composting (bio-oxidation) process in particular, exploits exothermic oxidati…

amendmentsNitrogen assimilationAmendmentPlant Science010501 environmental scienceslcsh:Plant cultureNitrate reductase01 natural sciencesHumic acidOrganic matterlcsh:SB1-1110Original Research0105 earth and related environmental scienceschemistry.chemical_classificationnitrogen assimilation04 agricultural and veterinary sciencesglycolysisBiodegradationbio-oxidationZea Mays L.humic acidsFT-IRbiostimulantsAmendments; Bio-oxidation; Biostimulants; FT-IR; Glycolysis; Humic acids; Nitrogen assimilation; Zea mays L; Plant SciencechemistryEnvironmental chemistry040103 agronomy & agriculture0401 agriculture forestry and fisheriesPhytotoxicityZea mays LPlant nutritionFrontiers in Plant Science
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Soil, pasture and animal products quality

2013

The management of pasture, through the use of appropriate stocking rates and grazing systems, influences the feeding behaviour of the animals. The impact of animal behaviour on vegetation can be of great importance for the sustainability of pastures and mantaining their biodiversity. Indeed, a different response in terms of quality of animal products is mediated by the ability of animals to concentrate or transform grass components, according to the characteristics of the soil. The herbage ingested by animals provides them with compounds with aromatic characteristics, such as terpenes, and with functional properties beneficial for human health, such as carotenoids, vitamins, polyphenols and…

animal productsSettore AGR/19 - Zootecnica SpecialeBiodiversitypasture biodiversitylcsh:Plant culturePasturelcsh:AgricultureGrazinglcsh:SB1-1110pasture management animal products qualitygrazing managementpasture managementgrazing management pasture biodiversity product quality soil conservation.geographygeography.geographical_feature_categoryAgroforestryAnimal productsoil conservation.lcsh:SVegetationproduct qualityAgronomyqualitySoil waterSustainabilityEnvironmental scienceSoil conservationAgronomy and Crop Science
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Nuevos fármacos inspirados en Annonáceas

2014

Los metabolitos secundarios activos (MSA) juegan un papel importante en el descubrimiento de nuevos medicamentos. Moléculas naturales con esqueletos complejos, tales como las estatinas aisladas de Aspergillus terreus, o las acetogeninas específicas de la familia Annonaceae, no hubieran podido ser inventadas en ningún laboratorio. Los MSA aislados en Annonaceae, especialmente las acetogeninas y los alcaloides isoquinoleínicos, pueden ser considerados como fuente constante de inspiración para químicos, farmacólogos y para todos los investigadores interesados en el descubrimiento de una nueva familia de medicamentos. Active secondary metabolites (ASM) play a highly significant role in the drug…

antimicrobiansStereochemistryAnnonaceaePlant Sciencelcsh:Plant cultureBiologyantimicrobianoschemistry.chemical_compoundacetogeninslcsh:SB1-1110Aspergillus terreusIsoquinolineacetogeninasantitumordopaminérgicosDrug discoverybiology.organism_classificationinsecticidaschemistryAnnonaceaeantitumoralesalcaloides isoquinoleínicosisoquinoline alkaloidsAgronomy and Crop ScienceinsecticidesdopaminergicsFood ScienceRevista Brasileira de Fruticultura
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