Carotenoid charge transfer states and their role in energy transfer processes in LH1-RC complexes from aerobic anoxygenic phototrophs
Language English Country United States Media print-electronic
Document type Journal Article, Research Support, Non-U.S. Gov't, Research Support, U.S. Gov't, Non-P.H.S.
PubMed
23130956
DOI
10.1021/jp309278y
Knihovny.cz E-resources
- MeSH
- Bacterial Proteins chemistry metabolism MeSH
- Bacteriochlorophylls chemistry MeSH
- Carotenoids chemistry MeSH
- Kinetics MeSH
- Energy Transfer MeSH
- Rhodobacter sphaeroides metabolism MeSH
- Roseobacter metabolism MeSH
- Sphingomonadaceae metabolism MeSH
- Light-Harvesting Protein Complexes chemistry metabolism MeSH
- Xanthophylls chemistry MeSH
- Zeaxanthins MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Research Support, U.S. Gov't, Non-P.H.S. MeSH
- Names of Substances
- Bacterial Proteins MeSH
- Bacteriochlorophylls MeSH
- Carotenoids MeSH
- spheroidenone MeSH Browser
- Light-Harvesting Protein Complexes MeSH
- Xanthophylls MeSH
- Zeaxanthins MeSH
Light-harvesting complexes ensure necessary flow of excitation energy into photosynthetic reaction centers. In the present work, transient absorption measurements were performed on LH1-RC complexes isolated from two aerobic anoxygenic phototrophs (AAPs), Roseobacter sp. COL2P containing the carotenoid spheroidenone, and Erythrobacter sp. NAP1 which contains the carotenoids zeaxanthin and bacteriorubixanthinal. We show that the spectroscopic data from the LH1-RC complex of Roseobacter sp. COL2P are very similar to those previously reported for Rhodobacter sphaeroides, including the transient absorption spectrum originating from the intramolecular charge-transfer (ICT) state of spheroidenone. Although the ICT state is also populated in LH1-RC complexes of Erythrobacter sp. NAP1, its appearance is probably related to the polarity of the bacteriorubixanthinal environment rather than to the specific configuration of the carotenoid, which we hypothesize is responsible for populating the ICT state of spheroidenone in LH1-RC of Roseobacter sp. COL2P. The population of the ICT state enables efficient S1/ICT-to-bacteriochlorophyll (BChl) energy transfer which would otherwise be largely inhibited for spheroidenone and bacteriorubixanthinal due to their low energy S1 states. In addition, the triplet states of these carotenoids appear well-tuned for efficient quenching of singlet oxygen or BChl-a triplets, which is of vital importance for oxygen-dependent organisms such as AAPs.
Faculty of Science University of South Bohemia Branišovská 31 370 05 České Budějovice Czech Republic
References provided by Crossref.org
The variability of light-harvesting complexes in aerobic anoxygenic phototrophs