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Using light scattering to assess how phospholipid–protein interactions affect complex I functionality in liposomes

Complex I is an essential membrane protein in respiration, oxidising NADH and reducing ubiquinone to contribute to the proton-motive force that powers ATP synthesis. Liposomes provide an attractive platform to investigate complex I in a phospholipid membrane with the native hydrophobic ubiquinone su...

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Autores principales: Eisermann, Jana, Wright, John J., Wilton-Ely, James D. E. T., Hirst, Judy, Roessler, Maxie M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10246558/
https://www.ncbi.nlm.nih.gov/pubmed/37292059
http://dx.doi.org/10.1039/d2cb00158f
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author Eisermann, Jana
Wright, John J.
Wilton-Ely, James D. E. T.
Hirst, Judy
Roessler, Maxie M.
author_facet Eisermann, Jana
Wright, John J.
Wilton-Ely, James D. E. T.
Hirst, Judy
Roessler, Maxie M.
author_sort Eisermann, Jana
collection PubMed
description Complex I is an essential membrane protein in respiration, oxidising NADH and reducing ubiquinone to contribute to the proton-motive force that powers ATP synthesis. Liposomes provide an attractive platform to investigate complex I in a phospholipid membrane with the native hydrophobic ubiquinone substrate and proton transport across the membrane, but without convoluting contributions from other proteins present in the native mitochondrial inner membrane. Here, we use dynamic and electrophoretic light scattering techniques (DLS and ELS) to show how physical parameters, in particular the zeta potential (ζ-potential), correlate strongly with the biochemical functionality of complex I-containing proteoliposomes. We find that cardiolipin plays a crucial role in the reconstitution and functioning of complex I and that, as a highly charged lipid, it acts as a sensitive reporter on the biochemical competence of proteoliposomes in ELS measurements. We show that the change in ζ-potential between liposomes and proteoliposomes correlates linearly with protein retention and catalytic oxidoreduction activity of complex I. These correlations are dependent on the presence of cardiolipin, but are otherwise independent of the liposome lipid composition. Moreover, changes in the ζ-potential are sensitive to the proton motive force established upon proton pumping by complex I, thereby constituting a complementary technique to established biochemical assays. ELS measurements may thus serve as a more widely useful tool to investigate membrane proteins in lipid systems, especially those that contain charged lipids.
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spelling pubmed-102465582023-06-08 Using light scattering to assess how phospholipid–protein interactions affect complex I functionality in liposomes Eisermann, Jana Wright, John J. Wilton-Ely, James D. E. T. Hirst, Judy Roessler, Maxie M. RSC Chem Biol Chemistry Complex I is an essential membrane protein in respiration, oxidising NADH and reducing ubiquinone to contribute to the proton-motive force that powers ATP synthesis. Liposomes provide an attractive platform to investigate complex I in a phospholipid membrane with the native hydrophobic ubiquinone substrate and proton transport across the membrane, but without convoluting contributions from other proteins present in the native mitochondrial inner membrane. Here, we use dynamic and electrophoretic light scattering techniques (DLS and ELS) to show how physical parameters, in particular the zeta potential (ζ-potential), correlate strongly with the biochemical functionality of complex I-containing proteoliposomes. We find that cardiolipin plays a crucial role in the reconstitution and functioning of complex I and that, as a highly charged lipid, it acts as a sensitive reporter on the biochemical competence of proteoliposomes in ELS measurements. We show that the change in ζ-potential between liposomes and proteoliposomes correlates linearly with protein retention and catalytic oxidoreduction activity of complex I. These correlations are dependent on the presence of cardiolipin, but are otherwise independent of the liposome lipid composition. Moreover, changes in the ζ-potential are sensitive to the proton motive force established upon proton pumping by complex I, thereby constituting a complementary technique to established biochemical assays. ELS measurements may thus serve as a more widely useful tool to investigate membrane proteins in lipid systems, especially those that contain charged lipids. RSC 2023-03-20 /pmc/articles/PMC10246558/ /pubmed/37292059 http://dx.doi.org/10.1039/d2cb00158f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Eisermann, Jana
Wright, John J.
Wilton-Ely, James D. E. T.
Hirst, Judy
Roessler, Maxie M.
Using light scattering to assess how phospholipid–protein interactions affect complex I functionality in liposomes
title Using light scattering to assess how phospholipid–protein interactions affect complex I functionality in liposomes
title_full Using light scattering to assess how phospholipid–protein interactions affect complex I functionality in liposomes
title_fullStr Using light scattering to assess how phospholipid–protein interactions affect complex I functionality in liposomes
title_full_unstemmed Using light scattering to assess how phospholipid–protein interactions affect complex I functionality in liposomes
title_short Using light scattering to assess how phospholipid–protein interactions affect complex I functionality in liposomes
title_sort using light scattering to assess how phospholipid–protein interactions affect complex i functionality in liposomes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10246558/
https://www.ncbi.nlm.nih.gov/pubmed/37292059
http://dx.doi.org/10.1039/d2cb00158f
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