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Interactions of Truncated Menaquinones in Lipid Monolayers and Bilayers

Menaquinones (MK) are hydrophobic molecules that consist of a naphthoquinone headgroup and a repeating isoprenyl side chain and are cofactors used in bacterial electron transport systems to generate cellular energy. We have previously demonstrated that the folded conformation of truncated MK homolog...

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Autores principales: Van Cleave, Cameron, Koehn, Jordan T., Pereira, Caroline Simões, Haase, Allison A., Peters, Benjamin J., Croslow, Seth W., McLaughlin, Kyle G., Werst, Katarina R., Goach, Audra L., Crick, Dean C., Arantes, Guilherme Menegon, Crans, Debbie C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8470443/
https://www.ncbi.nlm.nih.gov/pubmed/34575937
http://dx.doi.org/10.3390/ijms22189755
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author Van Cleave, Cameron
Koehn, Jordan T.
Pereira, Caroline Simões
Haase, Allison A.
Peters, Benjamin J.
Croslow, Seth W.
McLaughlin, Kyle G.
Werst, Katarina R.
Goach, Audra L.
Crick, Dean C.
Arantes, Guilherme Menegon
Crans, Debbie C.
author_facet Van Cleave, Cameron
Koehn, Jordan T.
Pereira, Caroline Simões
Haase, Allison A.
Peters, Benjamin J.
Croslow, Seth W.
McLaughlin, Kyle G.
Werst, Katarina R.
Goach, Audra L.
Crick, Dean C.
Arantes, Guilherme Menegon
Crans, Debbie C.
author_sort Van Cleave, Cameron
collection PubMed
description Menaquinones (MK) are hydrophobic molecules that consist of a naphthoquinone headgroup and a repeating isoprenyl side chain and are cofactors used in bacterial electron transport systems to generate cellular energy. We have previously demonstrated that the folded conformation of truncated MK homologues, MK-1 and MK-2, in both solution and reverse micelle microemulsions depended on environment. There is little information on how MKs associate with phospholipids in a model membrane system and how MKs affect phospholipid organization. In this manuscript, we used a combination of Langmuir monolayer studies and molecular dynamics (MD) simulations to probe these questions on truncated MK homologues, MK-1 through MK-4 within a model membrane. We observed that truncated MKs reside farther away from the interfacial water than ubiquinones are are located closer to the phospholipid tails. We also observed that phospholipid packing does not change at physiological pressure in the presence of truncated MKs, though a difference in phospholipid packing has been observed in the presence of ubiquinones. We found through MD simulations that for truncated MKs, the folded conformation varied, but MKs location and association with the bilayer remained unchanged at physiological conditions regardless of side chain length. Combined, this manuscript provides fundamental information, both experimental and computational, on the location, association, and conformation of truncated MK homologues in model membrane environments relevant to bacterial energy production.
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spelling pubmed-84704432021-09-27 Interactions of Truncated Menaquinones in Lipid Monolayers and Bilayers Van Cleave, Cameron Koehn, Jordan T. Pereira, Caroline Simões Haase, Allison A. Peters, Benjamin J. Croslow, Seth W. McLaughlin, Kyle G. Werst, Katarina R. Goach, Audra L. Crick, Dean C. Arantes, Guilherme Menegon Crans, Debbie C. Int J Mol Sci Article Menaquinones (MK) are hydrophobic molecules that consist of a naphthoquinone headgroup and a repeating isoprenyl side chain and are cofactors used in bacterial electron transport systems to generate cellular energy. We have previously demonstrated that the folded conformation of truncated MK homologues, MK-1 and MK-2, in both solution and reverse micelle microemulsions depended on environment. There is little information on how MKs associate with phospholipids in a model membrane system and how MKs affect phospholipid organization. In this manuscript, we used a combination of Langmuir monolayer studies and molecular dynamics (MD) simulations to probe these questions on truncated MK homologues, MK-1 through MK-4 within a model membrane. We observed that truncated MKs reside farther away from the interfacial water than ubiquinones are are located closer to the phospholipid tails. We also observed that phospholipid packing does not change at physiological pressure in the presence of truncated MKs, though a difference in phospholipid packing has been observed in the presence of ubiquinones. We found through MD simulations that for truncated MKs, the folded conformation varied, but MKs location and association with the bilayer remained unchanged at physiological conditions regardless of side chain length. Combined, this manuscript provides fundamental information, both experimental and computational, on the location, association, and conformation of truncated MK homologues in model membrane environments relevant to bacterial energy production. MDPI 2021-09-09 /pmc/articles/PMC8470443/ /pubmed/34575937 http://dx.doi.org/10.3390/ijms22189755 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Van Cleave, Cameron
Koehn, Jordan T.
Pereira, Caroline Simões
Haase, Allison A.
Peters, Benjamin J.
Croslow, Seth W.
McLaughlin, Kyle G.
Werst, Katarina R.
Goach, Audra L.
Crick, Dean C.
Arantes, Guilherme Menegon
Crans, Debbie C.
Interactions of Truncated Menaquinones in Lipid Monolayers and Bilayers
title Interactions of Truncated Menaquinones in Lipid Monolayers and Bilayers
title_full Interactions of Truncated Menaquinones in Lipid Monolayers and Bilayers
title_fullStr Interactions of Truncated Menaquinones in Lipid Monolayers and Bilayers
title_full_unstemmed Interactions of Truncated Menaquinones in Lipid Monolayers and Bilayers
title_short Interactions of Truncated Menaquinones in Lipid Monolayers and Bilayers
title_sort interactions of truncated menaquinones in lipid monolayers and bilayers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8470443/
https://www.ncbi.nlm.nih.gov/pubmed/34575937
http://dx.doi.org/10.3390/ijms22189755
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