Oversized ubiquinones as molecular probes for structural dynamics of the ubiquinone reaction site in mitochondrial respiratory complex I.
Alkynes
/ metabolism
Animals
Cattle
Computer Simulation
Electron Transport
Electron Transport Complex I
/ metabolism
Membrane Potential, Mitochondrial
Mitochondria, Heart
/ metabolism
Mitochondrial Proteins
/ metabolism
Models, Molecular
Molecular Probes
/ metabolism
NAD
/ metabolism
Oxidoreductases
/ metabolism
Plant Proteins
/ metabolism
Protein Subunits
/ metabolism
Proteolipids
/ metabolism
Protons
Submitochondrial Particles
/ metabolism
Ubiquinone
/ chemistry
bioenergetics
chemical biology
complex I
mitochondria
proton pump
respiratory chain
ubiquinone
Journal
The Journal of biological chemistry
ISSN: 1083-351X
Titre abrégé: J Biol Chem
Pays: United States
ID NLM: 2985121R
Informations de publication
Date de publication:
21 02 2020
21 02 2020
Historique:
received:
19
12
2019
revised:
15
01
2020
pubmed:
19
1
2020
medline:
21
10
2020
entrez:
19
1
2020
Statut:
ppublish
Résumé
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 Å 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.
Identifiants
pubmed: 31953326
pii: S0021-9258(17)48279-2
doi: 10.1074/jbc.RA119.012347
pmc: PMC7039553
pii:
doi:
Substances chimiques
Alkynes
0
Mitochondrial Proteins
0
Molecular Probes
0
Plant Proteins
0
Protein Subunits
0
Proteolipids
0
Protons
0
proteoliposomes
0
NAD
0U46U6E8UK
Ubiquinone
1339-63-5
Oxidoreductases
EC 1.-
alternative oxidase
EC 1.-
Electron Transport Complex I
EC 7.1.1.2
Banques de données
PDB
['5LC5']
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
2449-2463Informations de copyright
© 2020 Uno et al.
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