High-resolution in situ structures of mammalian respiratory supercomplexes.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 38811722.
- Also identified by DOI 10.1038/s41586-024-07488-9 and PMC identifier 11222160.
- 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
Mitochondria play a pivotal part in ATP energy production through oxidative phosphorylation, which occurs within the inner membrane through a series of respiratory complexes<sup>1-4</sup>. Despite extensive in vitro structural studies, determining the atomic details of their molecular mechanisms in physiological states remains a major challenge, primarily because of loss of the native environment during purification. Here we directly image porcine mitochondria using an in situ cryo-electron microscopy approach. This enables us to determine the structures of various high-order assemblies of respiratory supercomplexes in their native states. We identify four main supercomplex organizations: I<sub>1</sub>III<sub>2</sub>IV<sub>1</sub>, I<sub>1</sub>III<sub>2</sub>IV<sub>2</sub>, I<sub>2</sub>III<sub>2</sub>IV<sub>2</sub> and I<sub>2</sub>III<sub>4</sub>IV<sub>2</sub>, which potentially expand into higher-order arrays on the inner membranes. These diverse supercomplexes are largely formed by 'protein-lipids-protein' interactions, which in turn have a substantial impact on the local geometry of the surrounding membranes. Our in situ structures also capture numerous reactive intermediates within these respiratory supercomplexes, shedding light on the dynamic processes of the ubiquinone/ubiquinol exchange mechanism in complex I and the Q-cycle in complex III. Structural comparison of supercomplexes from mitochondria treated under different conditions indicates a possible correlation between conformational states of complexes I and III, probably in response to environmental changes. By preserving the native membrane environment, our approach enables structural studies of mitochondrial respiratory supercomplexes in reaction at high resolution across multiple scales, from atomic-level details to the broader subcellular context.
Medical subject headings
- Cell Respiration
- Electron Transport Complex I
- Electron Transport Complex III
- Mitochondria