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Thermo-optically induced reorganizations in the main light harvesting antenna of plants. I. Non-Arrhenius type of temperature dependence and linear light-intensity dependencies
- Source :
- Photosynthesis research, 86 (2005): 263–273. doi:10.1007/s11120-005-5104-1, info:cnr-pdr/source/autori:Cseh, Z; Vianelli, A; Rajagopal, S; Krumova, S; Kovacs, L; Papp, E; Barzda, V; Jennings, R; Garab, G/titolo:Thermo-optically induced reorganizations in the main light harvesting antenna of plants. I. Non-arrhenius type of temperature dependence and linear light-intensity dependencies/doi:10.1007%2Fs11120-005-5104-1/rivista:Photosynthesis research (Print)/anno:2005/pagina_da:263/pagina_a:273/intervallo_pagine:263–273/volume:86
- Publication Year :
- 2005
-
Abstract
- Thermo-optically induced structural reorganizations have earlier been identified in isolated LHCII, the main chlorophyll a/b light harvesting complexes of Photosystem II, and in granal thylakoid membranes [Cseh et al. (2000) Biochemistry 39: 15250-15257; Garab et al. (2002) Biochemistry 41: 15121-15129]. According to the thermo-optic mechanism, structural changes can be induced by fast, local thermal transients due to the dissipation of excess excitation energy. In this paper, we analyze the temperature and light-intensity dependencies of thermo-optically induced reversible and irreversible reorganizations in the chiral macrodomains of lamellar aggregates of isolated LHCII and of granal thylakoid membranes. We show that these structural changes exhibit non-Arrhenius type of temperature dependencies, which originate from the 'combination' of the ambient temperature and the local thermal transient. The experimental data can satisfactorily be simulated with the aid of a simple mathematical model based on the thermo-optic effect. The model also predicts, in good accordance with experimental data published earlier and presented in this paper, that the reorganizations depend linearly on the intensity of the excess light, a unique property that is probably important in light adaptation and photoprotection of plants.
- Subjects :
- Circular dichroism
Photoinhibition
Photosystem II
Light
Light-Harvesting Protein Complexes
chloroplast thylakoid membranes - circular dichroism - LHCII - light adaptation - light-intensity dependency - photoinhibition - photoprotection - structural changes - thermo-optic effect - temperature dependency
Plant Science
Photochemistry
Biochemistry
Light-harvesting complex
symbols.namesake
Spinacia oleracea
Settore BIO/04 - Fisiologia Vegetale
Arrhenius equation
Chloroplast thylakoid membranes
LHCII
Light adaptation
Light-intensity dependency
Photoprotection
Structural changes
Temperature dependency
Thermo-optic effect
Chemistry
Circular Dichroism
Peas
Temperature
Cell Biology
General Medicine
Dissipation
Light intensity
Chemical physics
Thylakoid
symbols
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- Photosynthesis research, 86 (2005): 263–273. doi:10.1007/s11120-005-5104-1, info:cnr-pdr/source/autori:Cseh, Z; Vianelli, A; Rajagopal, S; Krumova, S; Kovacs, L; Papp, E; Barzda, V; Jennings, R; Garab, G/titolo:Thermo-optically induced reorganizations in the main light harvesting antenna of plants. I. Non-arrhenius type of temperature dependence and linear light-intensity dependencies/doi:10.1007%2Fs11120-005-5104-1/rivista:Photosynthesis research (Print)/anno:2005/pagina_da:263/pagina_a:273/intervallo_pagine:263–273/volume:86
- Accession number :
- edsair.doi.dedup.....930a29b2101b2058840ed9ecea017ef7
- Full Text :
- https://doi.org/10.1007/s11120-005-5104-1