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Oversized ubiquinones as molecular probes for structural dynamics of the ubiquinone reaction site in mitochondrial respiratory complex I
- Source :
- J Biol Chem
- Publication Year :
- 2020
- Publisher :
- Elsevier BV, 2020.
-
Abstract
- NADH-quinone oxidoreductase (complex I) couples electron transfer from NADH to quinone with proton translocation across the membrane. Quinone reduction is a key step for energy transmission from the site of quinone reduction to the remotely located proton-pumping machinery of the enzyme. Although structural biology studies have proposed the existence of a long and narrow quinone-access channel, the physiological relevance of this channel remains debatable. We investigated here whether complex I in bovine heart submitochondrial particles (SMPs) can catalytically reduce a series of oversized ubiquinones (OS-UQs), which are highly unlikely to transit the narrow channel because their side chain includes a bulky ?block? that is ?13 ? across. We found that some OS-UQs function as efficient electron acceptors from complex I, accepting electrons with an efficiency comparable with ubiquinone-2. The catalytic reduction and proton translocation coupled with this reduction were completely inhibited by different quinone-site inhibitors, indicating that the reduction of OS-UQs takes place at the physiological reaction site for ubiquinone. Notably, the proton-translocating efficiencies of OS-UQs significantly varied depending on their side-chain structures, suggesting that the reaction characteristics of OS-UQs affect the predicted structural changes of the quinone reaction site required for triggering proton translocation. These results are difficult to reconcile with the current channel model; rather, the access path for ubiquinone may be open to allow OS-UQs to access the reaction site. Nevertheless, contrary to the observations in SMPs, OS-UQs were not catalytically reduced by isolated complex I reconstituted into liposomes. We discuss possible reasons for these contradictory results.
- Subjects :
- Models, Molecular
MECHANISM
0301 basic medicine
Respiratory chain
bioenergetics
Biochemistry
Mitochondria, Heart
BINDING
CRYSTAL-STRUCTURE
OXIDOREDUCTASE
Plant Proteins
Membrane Potential, Mitochondrial
chemistry.chemical_classification
complex I
Chemistry
Electron acceptor
Quinone
mitochondria
Alkynes
Protons
Oxidoreductases
Proteolipids
Submitochondrial Particles
respiratory chain
chemical biology
INNER MEMBRANE
114 Physical sciences
Electron Transport
Mitochondrial Proteins
03 medical and health sciences
Electron transfer
Oxidoreductase
ubiquinone
Animals
Inner membrane
Computer Simulation
Submitochondrial particle
Molecular Biology
Electron Transport Complex I
030102 biochemistry & molecular biology
PINPOINT CHEMICAL-MODIFICATION
Cell Biology
NAD
49 KDA
Protein Subunits
REDUCTION
030104 developmental biology
Structural biology
proton pump
Molecular Probes
NADH
Biophysics
1182 Biochemistry, cell and molecular biology
Cattle
Subjects
Details
- ISSN :
- 00219258
- Volume :
- 295
- Database :
- OpenAIRE
- Journal :
- Journal of Biological Chemistry
- Accession number :
- edsair.doi.dedup.....ef7f4cd6b1302631ad5ca73710102396