Architectures of photosynthetic RC-LH1 supercomplexes from <i>Rhodobacter blasticus</i>.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 39383221.
- Also identified by DOI 10.1126/sciadv.adp6678 and PMC identifier 11463270.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
The reaction center-light-harvesting complex 1 (RC-LH1) plays an essential role in the primary reactions of bacterial photosynthesis. Here, we present high-resolution structures of native monomeric and dimeric RC-LH1 supercomplexes from <i>Rhodobacter</i> (<i>Rba.</i>) <i>blasticus</i> using cryo-electron microscopy. The RC-LH1 monomer is composed of an RC encircled by an open LH1 ring comprising 15 αβ heterodimers and a PufX transmembrane polypeptide. In the RC-LH1 dimer, two crossing PufX polypeptides mediate dimerization. Unlike <i>Rhodabacter sphaeroides</i> counterpart, <i>Rba. blasticus</i> RC-LH1 dimer has a less bent conformation, lacks the PufY subunit near the LH1 opening, and includes two extra LH1 αβ subunits, forming a more enclosed S-shaped LH1 ring. Spectroscopic assays reveal that these unique structural features are accompanied by changes in the kinetics of quinone/quinol trafficking between RC-LH1 and cytochrome <i>bc</i><sub>1</sub>. Our findings reveal the assembly principles and structural variability of photosynthetic RC-LH1 supercomplexes, highlighting diverse strategies used by phototrophic bacteria to optimize light-harvesting and electron transfer in competitive environments.
Medical subject headings
- Light-Harvesting Protein Complexes
- Photosynthesis
- Rhodobacter