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The light spectrum differentially influences morphology, physiology and metabolism of Chrysanthemum × morifolium without affecting biomass accumulation.
Sommer, Søren Gjedde; Castro-Alves, Victor; Hyötyläinen, Tuulia; Strid, Åke; Rosenqvist, Eva.
Afiliação
  • Sommer SG; Department of Plant and Environmental Sciences, Crop Sciences, University of Copenhagen, Taastrup, Denmark.
  • Castro-Alves V; School of Science and Technology, MTM Research Center, Örebro University, Örebro, Sweden.
  • Hyötyläinen T; School of Science and Technology, MTM Research Center, Örebro University, Örebro, Sweden.
  • Strid Å; School of Science and Technology, Örebro Life Science Centre, Örebro University, Örebro, Sweden.
  • Rosenqvist E; Department of Plant and Environmental Sciences, Crop Sciences, University of Copenhagen, Taastrup, Denmark.
Physiol Plant ; 175(6): e14080, 2023.
Article em En | MEDLINE | ID: mdl-38148199
ABSTRACT
The development of light emitting diodes (LED) gives new possibilities to use the light spectrum to manipulate plant morphology and physiology in plant production and research. Here, vegetative Chrysanthemum × morifolium were grown at a photosynthetic photon flux density of 230 µmol m-2 s-1 under monochromatic blue, cyan, green, and red, and polychromatic redblue or white light with the objective to investigate the effect on plant morphology, gas exchange and metabolic profile. After 33 days of growth, branching and leaf number increased from blue to red light, while area per leaf, leaf weight fraction, flavonol index, and stomatal density and conductance decreased, while dry matter production was mostly unaffected. Plants grown under red light had decreased photosynthesis performance compared with blue or white light-grown plants. The primary and secondary metabolites, such as organic acids, amino acids and phenylpropanoids (measured by non-targeted metabolomics of polar metabolites), were regulated differently under the different light qualities. Specifically, the levels of reduced ascorbic acid and its oxidation products, and the total ascorbate pool, were significantly different between blue light-grown plants and plants grown under white or redblue light, which imply photosynthesis-driven alterations in oxidative pressure under different light regimens. The overall differences in plant phenotype, inflicted by blue, redblue or red light, are probably due to a shift in balance between regulatory pathways controlled by blue light receptors and/or phytochrome. Although morphology, physiology, and metabolism differed substantially between plants grown under different qualities of light, these changes had limited effects on biomass accumulation.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Chrysanthemum Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Chrysanthemum Idioma: En Ano de publicação: 2023 Tipo de documento: Article