Lutein from deepoxidation of lutein epoxide replaces zeaxanthin to sustain an enhanced capacity for nonphotochemical chlorophyll fluorescence quenching in avocado shade leaves in the dark
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Carotenoid metabolism and regulation in horticultural cropsClimatic origins predict variation in photoprotective leaf pigments in response to drought and low temperatures in live oaks (Quercus series Virentes).Antarctic moss stress assessment based on chlorophyll content and leaf density retrieved from imaging spectroscopy data.Teaching about photosynthesis with simple equipment: analysis of light-induced changes in fluorescence and reflectance of plant leaves.From ecophysiology to phenomics: some implications of photoprotection and shade-sun acclimation in situ for dynamics of thylakoids in vitro.Effects of altered α- and β-branch carotenoid biosynthesis on photoprotection and whole-plant acclimation of Arabidopsis to photo-oxidative stressThermal energy dissipation and xanthophyll cycles beyond the Arabidopsis model.Modulation of photosynthetic energy conversion efficiency in nature: from seconds to seasons.Chlorophyll a fluorescence induction: a personal perspective of the thermal phase, the J-I-P rise.Internal and external factors affecting photosynthetic pigment composition in plants: a meta-analytical approach.Grapevine Plasticity in Response to an Altered Microclimate: Sauvignon Blanc Modulates Specific Metabolites in Response to Increased Berry Exposure.Engineering the lutein epoxide cycle into Arabidopsis thaliana.How do Mediterranean shrub species cope with shade? Ecophysiological response to different light intensities.Fast detection of leaf pigments and isoprenoids for ecophysiological studies, plant phenotyping and validating remote-sensing of vegetation.Investigating the European beech (Fagus sylvatica L.) leaf characteristics along the vertical canopy profile: leaf structure, photosynthetic capacity, light energy dissipation and photoprotection mechanisms.Dynamic interplay between photodamage and photoprotection in photosystem II.Integrating transient heterogeneity of non-photochemical quenching in shade-grown heterobaric leaves of avocado (Persea americana L.): responses to CO2 concentration, stomatal occlusion, dehydration and relative humidity.Nitrogen starvation induces distinct photosynthetic responses and recovery dynamics in diatoms and prasinophytes.Decreased photochemical efficiency of photosystem II following sunlight exposure of shade-grown leaves of avocado: because of, or in spite of, two kinetically distinct xanthophyll cycles?
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Lutein from deepoxidation of lutein epoxide replaces zeaxanthin to sustain an enhanced capacity for nonphotochemical chlorophyll fluorescence quenching in avocado shade leaves in the dark
description
im März 2011 veröffentlichter wissenschaftlicher Artikel
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scientific article published on 22 March 2011
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wetenschappelijk artikel
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наукова стаття, опублікована в травні 2011
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name
Lutein from deepoxidation of l ...... ocado shade leaves in the dark
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Lutein from deepoxidation of l ...... ocado shade leaves in the dark
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type
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Lutein from deepoxidation of l ...... ocado shade leaves in the dark
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Lutein from deepoxidation of l ...... ocado shade leaves in the dark
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prefLabel
Lutein from deepoxidation of l ...... ocado shade leaves in the dark
@en
Lutein from deepoxidation of l ...... ocado shade leaves in the dark
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Lutein from deepoxidation of l ...... ocado shade leaves in the dark
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Britta Förster
Charles Barry Osmond
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10.1104/PP.111.173369
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P577
2011-03-22T00:00:00Z