Atomic-level structural and functional model of a bacterial photosynthetic membrane vesicle
- 2 October 2007
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 104 (40) , 15723-15728
- https://doi.org/10.1073/pnas.0706861104
Abstract
The photosynthetic unit (PSU) of purple photosynthetic bacteria consists of a network of bacteriochlorophyll–protein complexes that absorb solar energy for eventual conversion to ATP. Because of its remarkable simplicity, the PSU can serve as a prototype for studies of cellular organelles. In the purple bacterium Rhodobacter sphaeroides the PSU forms spherical invaginations of the inner membrane, ≈70 nm in diameter, composed mostly of light-harvesting complexes, LH1 and LH2, and reaction centers (RCs). Atomic force microscopy studies of the intracytoplasmic membrane have revealed the overall spatial organization of the PSU. In the present study these atomic force microscopy data were used to construct three-dimensional models of an entire membrane vesicle at the atomic level by using the known structure of the LH2 complex and a structural model of the dimeric RC–LH1 complex. Two models depict vesicles consisting of 9 or 18 dimeric RC–LH1 complexes and 144 or 101 LH2 complexes, representing a total of 3,879 or 4,464 bacteriochlorophylls, respectively. The in silico reconstructions permit a detailed description of light absorption and electronic excitation migration, including computation of a 50-ps excitation lifetime and a 95% quantum efficiency for one of the model membranes, and demonstration of excitation sharing within the closely packed RC–LH1 dimer arrays.Keywords
This publication has 87 references indexed in Scilit:
- Reconstruction of a Kinetic Model of the Chromatophore Vesicles from Rhodobacter sphaeroidesBiophysical Journal, 2006
- The 8.5Å Projection Structure of the Core RC–LH1–PufX Dimer of Rhodobacter sphaeroidesJournal of Molecular Biology, 2005
- From proteomic inventory to architecturePublished by Wiley ,2005
- Crystal structure of spinach major light-harvesting complex at 2.72 Å resolutionNature, 2004
- The solution structure of Rhodobacter sphaeroides LH1β reveals two helical domains separated by a more flexible region: structural consequences for the LH1 complexJournal of Molecular Biology, 2000
- Excitation energy trapping by the reaction center ofRhodobacter SphaeroidesInternational Journal of Quantum Chemistry, 2000
- Projection structures of three photosynthetic complexes from Rhodobacter sphaeroides : LH2 at 6 Å, LH1 and RC-LH1 at 25 Å 1 1Edited by K. NagaiJournal of Molecular Biology, 1998
- VMD: Visual molecular dynamicsJournal of Molecular Graphics, 1996
- Characterization of excitation energy trapping in photosynthetic purple bacteria at 77 KFEBS Letters, 1989
- Trapping, loss and annihilation of excitations in a photosynthetic systemBiochimica et Biophysica Acta (BBA) - Bioenergetics, 1983