Abstract
Plants respond to growth under different environmental conditions by adjusting the composition of the photosynthetic apparatus. To investigate the consequences of the acclimation strategies adopted by Arabidopsis thaliana, we have assessed the functioning of the photosynthetic apparatus in plants with very different chloroplast compositions. Using chlorophyll fluorescence analysis, we have determined the efficiency of, and capacity for, electron transport, assessed the ability to undergo state transitions, and measured non-photochemical quenching over a range of actinic irradiances followed by its resolution into fast- and slow-relaxing components; parallel measurements of leaf carotenoid composition were also carried out. The data clearly show that acclimation serves to maintain the electron transport chain in an oxidised state, ensuring efficient photochemistry. Furthermore, plants grown in high light have a greater capacity for energy-dependent feedback de-excitation, but this is not correlated with xanthophyll cycle pigment levels or de-epoxidation state. Surprisingly, even plants with very low levels of light-harvesting complexes were able to undergo state transitions. We also show that apparent discrepancies between chloroplast composition and photosynthetic function can be attributed to varying degrees of light penetration through the leaf. Thus, leaf chlorophyll content is an important factor influencing acclimation within the leaf.
MeSH Terms
Acclimatization/physiology,radiation effects
Arabidopsis/physiology,radiation effects
Carotenoids/metabolism
Chlorophyll/metabolism
Chloroplasts/metabolism,radiation effects
Electron Transport/radiation effects
Photosynthesis/physiology,radiation effects
Photosynthetic Reaction Center Complex Proteins/metabolism
Plant Leaves/physiology,radiation effects
Time Factors
Chemicals
Photosynthetic Reaction Center Complex Proteins
Chlorophyll
Carotenoids
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Bailey Shaun
Department of Molecular Biology and Biotechnology, University of Sheffield, Western Bank, S10 2TN, Sheffield, UK.
Horton Peter
Walters Robin G
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