Search results for "YLL"

showing 10 items of 1335 documents

Conifers from the Cenomanian amber of Fouras (Charente-Maritime, western France)

2020

Fossil inclusions of arthropods and microorganisms are abundant in the Cretaceous amber from western France, but plant meso- or macroremains are scarce. Preserved remains are mostly tiny, very fragmented, and indeterminable. Only one amber locality in the Charente department has already provided conifer remains. Here, we report the first plant mesoremains ensnared in Cenomanian amber from Fouras – Bois Vert, in the Charente-Maritime department. They consist of three well-preserved leafy axes and one cone of Cheirolepidiacean conifers. Based on the helical arrangement of rhomboidal, longer than wide, and highly adpressed leaves, leafy axes are ascribed to the genus Pagiophyllum. The ovoid co…

0106 biological sciences010506 paleontologyFloraamber010603 evolutionary biology01 natural sciencesGenusBotanyfossil plants14. Life underwaterLeafy0105 earth and related environmental sciencesbiologypagiophyllumlcsh:QE1-996.5Geology15. Life on landbiology.organism_classificationCretaceousPagiophyllumlcsh:GeologyxerophyticCenomanian[SDU.STU.PG]Sciences of the Universe [physics]/Earth Sciences/PaleontologyfranceGeologycretaceous
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Étude paléobotanique d’une lentille argileuse cénomanienne de la carrière de Hucheloup, Maine-et-Loire, NO France : implications taxonomiques, strati…

2017

International audience; A Cenomanian clay lens in Hucheloup Quarry (Maine-et-Loire, north-western France) has yielded 82 foliar compressions and impressions, of which 62 were identified at several taxonomic levels. The plants are ascribed to diverse Pinales (27%), ferns (27%), Ginkgoales (26%), angiosperms (19%) and Cycadales (1%). The most abundant species in the assemblage are Frenelopsis alata (K. Feistmantel) E. Knobloch emend. J. Kvaček (Pinales) and Eretmophyllum obtusum (Velenovský) J. Kvaček (syn. E. andegavense Pons, Bourreau et Broutin) (Ginkgoales). Wood fragments, along with very well-preserved cuticles, have also been recovered and identified. The specimens are usually very fra…

0106 biological sciences010506 paleontologyMégasporesFluvial[ SDU.STU.ST ] Sciences of the Universe [physics]/Earth Sciences/StratigraphyLagune010603 evolutionary biology01 natural sciencesAnjouPaleontologyFrenelopsisEretmophyllumGenusCénomanienCenomanian0105 earth and related environmental sciences[ SDU.STU.PG ] Sciences of the Universe [physics]/Earth Sciences/PaleontologyPalynologybiologyCuticlesPaleontologyBrackish lagoonPlant community15. Life on landMiosporesbiology.organism_classificationTaxon[SDU.STU.ST]Sciences of the Universe [physics]/Earth Sciences/StratigraphyCuticulesCompressions foliairesLeaf compressionsCenomanianMegaspore[SDU.STU.PG]Sciences of the Universe [physics]/Earth Sciences/PaleontologyPinalesGeology
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Priming maritime pine megagametophytes during somatic embryogenesis improved plant adaptation to heat stress

2021

In the context of global climate change, forest tree research should be addressed to provide genotypes with increased resilience to high temperature events. These improved plants can be obtained by heat priming during somatic embryogenesis (SE), which would produce an epigenetic-mediated transgenerational memory. Thereby, we applied 37 °C or 50 °C to maritime pine (Pinus pinaster) megagametophytes and the obtained embryogenic masses went through the subsequent SE phases to produce plants that were further subjected to heat stress conditions. A putative transcription factor WRKY11 was upregulated in priming-derived embryonal masses, and also in the regenerated P37 and P50 plants, suggesting …

0106 biological sciences0301 basic medicine<i>Pinus pinaster</i>Somatic embryogenesisContext (language use)Pinus pinasterPlant SciencePriming (agriculture)BiologyPhotosynthesis01 natural sciencesArticleheat stress03 medical and health scienceschemistry.chemical_compoundheat stress ; HSP ; hormones ; Pinus pinaster ; photosynthesis ; priming ; ROS ; somatic embryogenesis ; transgenerational memory ; WRKYHSPprimingBiologyEcology Evolution Behavior and SystematicsphotosynthesisEcologyhormonesfungiBotanyWRKYfood and beveragesROStransgenerational memorysomatic embryogenesisbiology.organism_classificationHsp70Horticulture030104 developmental biologychemistryQK1-989ChlorophyllCytokinin<i>HSP</i>Pinus pinaster<i>WRKY</i>010606 plant biology & botany
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C4-like photosynthesis and the effects of leaf senescence on C4-like physiology in Sesuvium sesuvioides (Aizoaceae).

2019

Sesuvium sesuvioides represents a young C4 lineage with C4-like metabolism: CO2 compensation points range between C4 and C3–C4 intermediate values, and Rubisco was detected in bundle sheath and mesophyll.

0106 biological sciences0301 basic medicineC4 photosynthesisPhysiologyPlant SciencePhotosynthetic efficiencyPhotosynthesis01 natural sciencesCarbon Cycle03 medical and health sciencesportulacelloid leaf anatomyBotanyC4-likePhotosynthesisC4 photosynthesisbiologyRuBisCOVascular bundlebiology.organism_classificationResearch PapersEnzyme assayCarbonPlant Leaves030104 developmental biologySesuviumAizoaceaebiology.proteinAizoaceaecarbon isotope valuesimmunolocalization of Rubisco and PEPCMesophyll Cells010606 plant biology & botanyPhotosynthesis and MetabolismJournal of experimental botany
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Ultraviolet radiation accelerates photodegradation under controlled conditions but slows the decomposition of senescent leaves from forest stands in …

2019

Depending on the environment, sunlight can positively or negatively affect litter decomposition, through the ensemble of direct and indirect processes constituting photodegradation. Which of these processes predominate depends on the ecosystem studied and on the spectral composition of sunlight received. To examine the relevance of photodegradation for litter decomposition in forest understoreys, we filtered ultraviolet radiation (UV) and blue light from leaves of Fagus sylvatica and Bettda pendula at two different stages of senescence in both a controlled-environment experiment and outdoors in four different forest stands (Picea abies, Pagus sylvatica, Acer platanoides, Betula pendula). Co…

0106 biological sciences0301 basic medicineCanopyUltraviolet RaysPhysiologyUV-B RADIATIONPlant ScienceForestsANTHOCYANINS01 natural sciencesUV radiationBOREAL FOREST03 medical and health scienceschemistry.chemical_compoundFagus sylvaticaPhotodegradationGeneticsPhotodegradationEcosystemFinlandComputingMilieux_MISCELLANEOUS11832 Microbiology and virologyFlavonoidsSunlight[SDV.EE]Life Sciences [q-bio]/Ecology environment4112 ForestryPhotolysisbiologyChemistryTEMPERATEPLANT LITTERPicea abies15. Life on landPlant litterbiology.organism_classificationPhenolic compoundsUnderstorey light environmentSODANKYLAPlant LeavesHorticultureLIGHT030104 developmental biology13. Climate actionBetula pendulaChlorophyllPATTERNS1182 Biochemistry cell and molecular biologyLEAF-LITTER DECOMPOSITION010606 plant biology & botany
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How water-soluble chlorophyll protein extracts chlorophyll from membranes.

2020

Water-soluble chlorophyll proteins (WSCPs) found in Brassicaceae are non-photosynthetic proteins that bind only a small number of chlorophylls. Their biological function remains unclear, but recent data indicate that WSCPs are involved in stress response and pathogen defense as producers of reactive oxygen species and/or Chl-regulated protease inhibitors. For those functions, WSCP apoprotein supposedly binds Chl to become physiologically active or inactive, respectively. Thus, Chl-binding seems to be a pivotal step for the biological function of WSCP. WSCP can extract Chl from the thylakoid membrane but little is known about the mechanism of how Chl is sequestered from the membrane into the…

0106 biological sciences0301 basic medicineChlorophyllCircular dichroismHot Temperaturemedicine.medical_treatmentBiophysicsmacromolecular substances01 natural sciencesBiochemistryLepidiumThylakoids03 medical and health scienceschemistry.chemical_compoundpolycyclic compoundsmedicineBinding sitePlant Proteinschemistry.chemical_classificationReactive oxygen speciesProteasefood and beveragesMembrane ProteinsWaterCell BiologyAmino acid030104 developmental biologyMembraneBiochemistrychemistrySolubilityThylakoidChlorophyll010606 plant biology & botanyBiochimica et biophysica acta. Biomembranes
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In vivo photoprotection mechanisms observed from leaf spectral absorbance changes showing VIS–NIR slow-induced conformational pigment bed changes

2019

Abstract Regulated heat dissipation under excessive light comprises a complexity of mechanisms, whereby the supramolecular light-harvesting pigment–protein complex (LHC) shifts state from light harvesting towards heat dissipation, quenching the excess of photo-induced excitation energy in a non-photochemical way. Based on whole-leaf spectroscopy measuring upward and downward spectral radiance fluxes, we studied spectrally contiguous (hyperspectral) transient time series of absorbance A(λ,t) and passively induced chlorophyll fluorescence F(λ,t) dynamics of intact leaves in the visible and near-infrared wavelengths (VIS–NIR, 400–800 nm) after sudden strong natural-like illumination exposure. …

0106 biological sciences0301 basic medicineChlorophyllMaterials sciencePassive chlorophyll a fluorescencePigment–protein dynamicsLightHyperspectral remote sensingAnalytical chemistryJuglansPlant Science01 natural sciencesBiochemistryEnergy quenchingFluorescenceAbsorbance03 medical and health sciencesTransmittanceFiber Optic TechnologySpectroscopyChlorophyll fluorescencechemistry.chemical_classificationSpectroscopy Near-InfraredAbsorbed photosynthetic active radiation (APAR)Non-photochemical quenching (NPQ)Cell BiologyGeneral MedicineEquipment DesignPigments BiologicalPhotochemical ProcessesCarotenoidsPlant LeavesWavelength030104 developmental biologychemistryXanthophyllRadianceOriginal ArticleAbsorbance shiftMorusControlled heat dissipation010606 plant biology & botanyPhotosynthesis Research
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Host-ectoparasite associations; the role of host traits, season and habitat on parasitism interactions of the rodents of northeastern Iran

2021

Abstract Background Rodents play a significant role as reservoirs of zoonotic diseases. Nevertheless, their ectoparasite assemblage and host-ectoparasite associations are poorly known. This study intended to give new insights on the relationships between ectoparasites and rodents in northeastern Iran. Methods Rodents were captured using live traps during the year of 2016–2020 and their ectoparasites were collected. Parasitological indices such as infestation rate, prevalence and mean intensity of infestation were analyzed. Results A total of 284 rodents, belonging to 17 species, were trapped which infested by 178 ectoparasites from five orders Siphonaptera, Phthiraptera, Ixodida, Mesostigma…

0106 biological sciences0301 basic medicineFleabiologyHost (biology)ParasitismZoologyTickLousebiology.organism_classificationmedicine.disease_cause01 natural sciences010602 entomology03 medical and health sciences030104 developmental biologyNosopsyllus fasciatusInsect Sciencebiology.animalparasitic diseasesInfestationmedicineMiteJournal of Asia-Pacific Entomology
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Neurosporaxanthin Overproduction by Fusarium fujikuroi and Evaluation of Its Antioxidant Properties

2020

17 Páginas.-- 5 Figuras

0106 biological sciences0301 basic medicineFusariumAntioxidantPhysiologymedicine.medical_treatmentClinical BiochemistryMutantquenchingfree radicalsFree radicalsXanthophylls01 natural sciencesBiochemistryNeurospora03 medical and health sciencesQuenching010608 biotechnologymedicineoxidative stressMolecular BiologyCarotenoidMyceliumchemistry.chemical_classificationbiologyChemistrylcsh:RM1-950carotenoidsFungifood and beveragesCell Biologybiology.organism_classificationCarotenoidslcsh:Therapeutics. Pharmacology030104 developmental biologyBiochemistryOxidative stressXanthophyllLiposomesGibberellinfungixanthophyllsAntioxidants
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2017

C4 photosynthesis is a carbon-concentrating mechanism that evolved independently more than 60 times in a wide range of angiosperm lineages. Among other alterations, the evolution of C4 from ancestral C3 photosynthesis requires changes in the expression of a vast number of genes. Differential gene expression analyses between closely related C3 and C4 species have significantly increased our understanding of C4 functioning and evolution. In Chenopodiaceae, a family that is rich in C4 origins and photosynthetic types, the anatomy, physiology and phylogeny of C4, C2, and C3 species of Salsoleae has been studied in great detail, which facilitated the choice of six samples of five representative …

0106 biological sciences0301 basic medicineGeneticsProtein familyCaryophyllalesDe novo transcriptome assemblyRNA-SeqPlant ScienceBiologybiology.organism_classification01 natural sciencesTranscriptome03 medical and health sciences030104 developmental biologyPhylogeneticsAbundance (ecology)Gene010606 plant biology & botanyFrontiers in Plant Science
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