On the photosynthetic properties of marine bacterium COL2P belonging to Roseobacter clade
Language English Country Germany Media print-electronic
Document type Journal Article, Research Support, Non-U.S. Gov't
- MeSH
- Aerobiosis genetics MeSH
- Anaerobiosis genetics MeSH
- Genes, Bacterial MeSH
- Bacterial Proteins genetics MeSH
- RNA, Bacterial analysis MeSH
- Bacteriochlorophyll A genetics MeSH
- Bacteriochlorophylls genetics MeSH
- Photophosphorylation MeSH
- Photosynthetic Reaction Center Complex Proteins genetics MeSH
- Photosynthesis * genetics MeSH
- Phylogeny MeSH
- Carotenoids metabolism MeSH
- Conjugation, Genetic MeSH
- RNA, Messenger analysis MeSH
- Seawater MeSH
- Gene Expression Regulation, Bacterial MeSH
- Roseobacter genetics metabolism MeSH
- Amino Acid Sequence MeSH
- Oxygen Consumption genetics MeSH
- Light MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Names of Substances
- Bacterial Proteins MeSH
- RNA, Bacterial MeSH
- Bacteriochlorophyll A MeSH
- Bacteriochlorophylls MeSH
- Photosynthetic Reaction Center Complex Proteins MeSH
- Carotenoids MeSH
- RNA, Messenger MeSH
- spheroidenone MeSH Browser
Aerobic anoxygenic phototrophs (AAPs) are prokaryotic microorganisms capable of harvesting light using bacteriochlorophyll-based reaction centres. Marine AAP communities are generally dominated by species belonging to the Roseobacter clade. For this reason, we used marine Roseobacter-related strain COL2P as a model organism to characterize its photosynthetic apparatus, level of pigmentation and expression of photosynthetic complexes. This strain contained functional photosynthetic reaction centres with bacteriochlorophyll a and spheroidenone as the main light-harvesting pigments, but the expression of the photosynthetic apparatus was significantly reduced when compared to truly photoautotrophic species. Moreover, the absence of peripheral light-harvesting complexes largely reduced its light-harvesting capacity. The size of the photosynthetic unit was limited to 35.4 +/- 1.0 BChl a molecules supplemented by the same number of spheroidenone molecules. The contribution of oxidative phosphorylation and photophosphorylation was analysed by respiration and fluorometric measurements. Our results indicate that even with a such reduced photosynthetic apparatus, photophosphorylation provides up to three times higher electron fluxes than aerobic respiration. These results suggest that light-derived energy can provide a substantial fraction of COL2P metabolic needs.
References provided by Crossref.org
Growth and mortality of aerobic anoxygenic phototrophs in the North Pacific Subtropical Gyre
Seasonal dynamics of aerobic anoxygenic phototrophs in freshwater lake Vlkov
The variability of light-harvesting complexes in aerobic anoxygenic phototrophs
Horizontal transfers of two types of puf operons among phototrophic members of the Roseobacter clade
Influence of light on carbon utilization in aerobic anoxygenic phototrophs
Genome sequence of the marine photoheterotrophic bacterium Erythrobacter sp. strain NAP1