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The Structural Dynamics of the Flavivirus Fusion Peptide–Membrane Interaction

Membrane fusion is a crucial step in flavivirus infections and a potential target for antiviral strategies. Lipids and proteins play cooperative roles in the fusion process, which is triggered by the acidic pH inside the endosome. This acidic environment induces many changes in glycoprotein conforma...

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Autores principales: Mendes, Ygara S., Alves, Nathalia S., Souza, Theo L. F., Sousa, Ivanildo P., Bianconi, M. Lucia, Bernardi, Rafael C., Pascutti, Pedro G., Silva, Jerson L., Gomes, Andre M. O., Oliveira, Andréa C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3477123/
https://www.ncbi.nlm.nih.gov/pubmed/23094066
http://dx.doi.org/10.1371/journal.pone.0047596
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author Mendes, Ygara S.
Alves, Nathalia S.
Souza, Theo L. F.
Sousa, Ivanildo P.
Bianconi, M. Lucia
Bernardi, Rafael C.
Pascutti, Pedro G.
Silva, Jerson L.
Gomes, Andre M. O.
Oliveira, Andréa C.
author_facet Mendes, Ygara S.
Alves, Nathalia S.
Souza, Theo L. F.
Sousa, Ivanildo P.
Bianconi, M. Lucia
Bernardi, Rafael C.
Pascutti, Pedro G.
Silva, Jerson L.
Gomes, Andre M. O.
Oliveira, Andréa C.
author_sort Mendes, Ygara S.
collection PubMed
description Membrane fusion is a crucial step in flavivirus infections and a potential target for antiviral strategies. Lipids and proteins play cooperative roles in the fusion process, which is triggered by the acidic pH inside the endosome. This acidic environment induces many changes in glycoprotein conformation and allows the action of a highly conserved hydrophobic sequence, the fusion peptide (FP). Despite the large volume of information available on the virus-triggered fusion process, little is known regarding the mechanisms behind flavivirus–cell membrane fusion. Here, we evaluated the contribution of a natural single amino acid difference on two flavivirus FPs, FLA(G) ((98)DRGWGNGCGLFGK(110)) and FLA(H) ((98)DRGWGNHCGLFGK(110)), and investigated the role of the charge of the target membrane on the fusion process. We used an in silico approach to simulate the interaction of the FPs with a lipid bilayer in a complementary way and used spectroscopic approaches to collect conformation information. We found that both peptides interact with neutral and anionic micelles, and molecular dynamics (MD) simulations showed the interaction of the FPs with the lipid bilayer. The participation of the indole ring of Trp appeared to be important for the anchoring of both peptides in the membrane model, as indicated by MD simulations and spectroscopic analyses. Mild differences between FLA(G) and FLA(H) were observed according to the pH and the charge of the target membrane model. The MD simulations of the membrane showed that both peptides adopted a bend structure, and an interaction between the aromatic residues was strongly suggested, which was also observed by circular dichroism in the presence of micelles. As the FPs of viral fusion proteins play a key role in the mechanism of viral fusion, understanding the interactions between peptides and membranes is crucial for medical science and biology and may contribute to the design of new antiviral drugs.
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spelling pubmed-34771232012-10-23 The Structural Dynamics of the Flavivirus Fusion Peptide–Membrane Interaction Mendes, Ygara S. Alves, Nathalia S. Souza, Theo L. F. Sousa, Ivanildo P. Bianconi, M. Lucia Bernardi, Rafael C. Pascutti, Pedro G. Silva, Jerson L. Gomes, Andre M. O. Oliveira, Andréa C. PLoS One Research Article Membrane fusion is a crucial step in flavivirus infections and a potential target for antiviral strategies. Lipids and proteins play cooperative roles in the fusion process, which is triggered by the acidic pH inside the endosome. This acidic environment induces many changes in glycoprotein conformation and allows the action of a highly conserved hydrophobic sequence, the fusion peptide (FP). Despite the large volume of information available on the virus-triggered fusion process, little is known regarding the mechanisms behind flavivirus–cell membrane fusion. Here, we evaluated the contribution of a natural single amino acid difference on two flavivirus FPs, FLA(G) ((98)DRGWGNGCGLFGK(110)) and FLA(H) ((98)DRGWGNHCGLFGK(110)), and investigated the role of the charge of the target membrane on the fusion process. We used an in silico approach to simulate the interaction of the FPs with a lipid bilayer in a complementary way and used spectroscopic approaches to collect conformation information. We found that both peptides interact with neutral and anionic micelles, and molecular dynamics (MD) simulations showed the interaction of the FPs with the lipid bilayer. The participation of the indole ring of Trp appeared to be important for the anchoring of both peptides in the membrane model, as indicated by MD simulations and spectroscopic analyses. Mild differences between FLA(G) and FLA(H) were observed according to the pH and the charge of the target membrane model. The MD simulations of the membrane showed that both peptides adopted a bend structure, and an interaction between the aromatic residues was strongly suggested, which was also observed by circular dichroism in the presence of micelles. As the FPs of viral fusion proteins play a key role in the mechanism of viral fusion, understanding the interactions between peptides and membranes is crucial for medical science and biology and may contribute to the design of new antiviral drugs. Public Library of Science 2012-10-19 /pmc/articles/PMC3477123/ /pubmed/23094066 http://dx.doi.org/10.1371/journal.pone.0047596 Text en © 2012 Mendes et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Mendes, Ygara S.
Alves, Nathalia S.
Souza, Theo L. F.
Sousa, Ivanildo P.
Bianconi, M. Lucia
Bernardi, Rafael C.
Pascutti, Pedro G.
Silva, Jerson L.
Gomes, Andre M. O.
Oliveira, Andréa C.
The Structural Dynamics of the Flavivirus Fusion Peptide–Membrane Interaction
title The Structural Dynamics of the Flavivirus Fusion Peptide–Membrane Interaction
title_full The Structural Dynamics of the Flavivirus Fusion Peptide–Membrane Interaction
title_fullStr The Structural Dynamics of the Flavivirus Fusion Peptide–Membrane Interaction
title_full_unstemmed The Structural Dynamics of the Flavivirus Fusion Peptide–Membrane Interaction
title_short The Structural Dynamics of the Flavivirus Fusion Peptide–Membrane Interaction
title_sort structural dynamics of the flavivirus fusion peptide–membrane interaction
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3477123/
https://www.ncbi.nlm.nih.gov/pubmed/23094066
http://dx.doi.org/10.1371/journal.pone.0047596
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