Atomic structures of respiratory complex III<sub>2</sub>, complex IV, and supercomplex III<sub>2</sub>-IV from vascular plants.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 33463523.
- Also identified by DOI 10.7554/eLife.62047 and PMC identifier 7815315.
- 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
Mitochondrial complex III (CIII<sub>2</sub>) and complex IV (CIV), which can associate into a higher-order supercomplex (SC III<sub>2</sub>+IV), play key roles in respiration. However, structures of these plant complexes remain unknown. We present atomic models of CIII<sub>2</sub>, CIV, and SC III<sub>2</sub>+IV from <i>Vigna radiata</i> determined by single-particle cryoEM. The structures reveal plant-specific differences in the MPP domain of CIII<sub>2</sub> and define the subunit composition of CIV. Conformational heterogeneity analysis of CIII<sub>2</sub> revealed long-range, coordinated movements across the complex, as well as the motion of CIII<sub>2</sub>'s iron-sulfur head domain. The CIV structure suggests that, in plants, proton translocation does not occur via the H channel. The supercomplex interface differs significantly from that in yeast and bacteria in its interacting subunits, angle of approach and limited interactions in the mitochondrial matrix. These structures challenge long-standing assumptions about the plant complexes and generate new mechanistic hypotheses.
Medical subject headings
- Electron Transport Complex III
- Electron Transport Complex IV
- Vigna