Back to Search
Start Over
Damage to photosystem II due to heat stress without light-driven electron flow: involvement of enhanced introduction of reducing power into thylakoid membranes
- Source :
- Planta. 236:753-761
- Publication Year :
- 2012
- Publisher :
- Springer Science and Business Media LLC, 2012.
-
Abstract
- Under a moderately heat-stressed condition, the photosystems of higher plants are damaged in the dark more easily than they are in the presence of light. To obtain a better understanding of this heat-derived damage mechanism that occurs in the dark, we focused on the involvement of the light-independent electron flow that occurs at 40 °C during the damage. In various plant species, the maximal photochemical quantum yield of photosystem (PS) II (Fv/Fm) decreased as a result of heat treatment in the dark. In the case of wheat, the most sensitive plant species tested, both Fv/Fm and oxygen evolution rapidly decreased by heat treatment at 40 °C for 30 min in the dark. In the damage, specific degradation of D1 protein was involved, as shown by immunochemical analysis of major proteins in the photosystem. Because light canceled the damage to PSII, the light-driven electron flow may play a protective role against PSII damage without light. Light-independent incorporation of reducing power from stroma was enhanced at 40 °C but not below 35 °C. Arabidopsis mutants that have a deficit of enzymes which mediate the incorporation of stromal reducing power into thylakoid membranes were tolerant against heat treatment at 40 °C in the dark, suggesting that the reduction of the plastoquinone pool may be involved in the damage. In conclusion, the enhanced introduction of reducing power from stroma into thylakoid membranes that occurs around 40 °C causes over-reduction of plastoquinone, resulting in the damage to D1 protein under heat stress without linear electron flow.
- Subjects :
- Chlorophyll
Hot Temperature
Photosystem II
Plastoquinone
Arabidopsis
Quantum yield
Plant Science
Biology
Photochemistry
Thylakoids
Electron Transport
chemistry.chemical_compound
Genetics
Triticum
Photosystem
Sensitive-plant
Oxygen evolution
Photosystem II Protein Complex
food and beverages
Darkness
Plants
Photochemical Processes
biology.organism_classification
Electron transport chain
Oxygen
Plant Leaves
chemistry
Thylakoid
Mutation
Plant Stomata
Oxidation-Reduction
Subjects
Details
- ISSN :
- 14322048 and 00320935
- Volume :
- 236
- Database :
- OpenAIRE
- Journal :
- Planta
- Accession number :
- edsair.doi.dedup.....eae14047910b3708db37b1eb608718cc
- Full Text :
- https://doi.org/10.1007/s00425-012-1647-5