Cargando…

Insights into the Binding Mode of Lipid A to the Anti-lipopolysaccharide Factor ALFPm3 from Penaeus monodon: An In Silico Study through MD Simulations

[Image: see text] The globally expanding threat of antibiotic resistance calls for the development of new strategies for abating Gram-negative bacterial infections. The use of extracorporeal blood cleansing devices with affinity sorbents to selectively capture bacterial lipopolysaccharide (LPS), whi...

Descripción completa

Detalles Bibliográficos
Autores principales: González-Fernández, Cristina, Öhlknecht, Christoph, Diem, Matthias, Escalona, Yerko, Bringas, Eugenio, Moncalián, Gabriel, Oostenbrink, Chris, Ortiz, Inmaculada
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10131219/
https://www.ncbi.nlm.nih.gov/pubmed/37026789
http://dx.doi.org/10.1021/acs.jcim.3c00173
_version_ 1785031130693500928
author González-Fernández, Cristina
Öhlknecht, Christoph
Diem, Matthias
Escalona, Yerko
Bringas, Eugenio
Moncalián, Gabriel
Oostenbrink, Chris
Ortiz, Inmaculada
author_facet González-Fernández, Cristina
Öhlknecht, Christoph
Diem, Matthias
Escalona, Yerko
Bringas, Eugenio
Moncalián, Gabriel
Oostenbrink, Chris
Ortiz, Inmaculada
author_sort González-Fernández, Cristina
collection PubMed
description [Image: see text] The globally expanding threat of antibiotic resistance calls for the development of new strategies for abating Gram-negative bacterial infections. The use of extracorporeal blood cleansing devices with affinity sorbents to selectively capture bacterial lipopolysaccharide (LPS), which is the major constituent of Gram-negative bacterial outer membranes and the responsible agent for eliciting an exacerbated innate immune response in the host during infection, has received outstanding interest. For that purpose, molecules that bind tightly to LPS are required to functionalize the affinity sorbents. Particularly, anti-LPS factors (ALFs) are promising LPS-sequestrating molecules. Hence, in this work, molecular dynamics (MD) simulations are used to investigate the interaction mechanism and binding pose of the ALF isoform 3 from Penaeus monodon (ALFPm3), which is referred to as “AL3” for the sake of simplicity, and lipid A (LA, the component of LPS that represents its endotoxic principle). We concluded that hydrophobic interactions are responsible for AL3–LA binding and that LA binds to AL3 within the protein cavity, where it buries its aliphatic tails, whereas the negatively charged phosphate groups are exposed to the medium. AL3 residues that are key for its interaction with LA were identified, and their conservation in other ALFs (specifically Lys39 and Tyr49) was also analyzed. Additionally, based on the MD-derived results, we provide a picture of the possible AL3–LA interaction mechanism. Finally, an in vitro validation of the in silico predictions was performed. Overall, the insights gained from this work can guide the design of novel therapeutics for treating sepsis, since they may be significantly valuable for designing LPS-sequestrating molecules that could functionalize affinity sorbents to be used for extracorporeal blood detoxification.
format Online
Article
Text
id pubmed-10131219
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-101312192023-04-27 Insights into the Binding Mode of Lipid A to the Anti-lipopolysaccharide Factor ALFPm3 from Penaeus monodon: An In Silico Study through MD Simulations González-Fernández, Cristina Öhlknecht, Christoph Diem, Matthias Escalona, Yerko Bringas, Eugenio Moncalián, Gabriel Oostenbrink, Chris Ortiz, Inmaculada J Chem Inf Model [Image: see text] The globally expanding threat of antibiotic resistance calls for the development of new strategies for abating Gram-negative bacterial infections. The use of extracorporeal blood cleansing devices with affinity sorbents to selectively capture bacterial lipopolysaccharide (LPS), which is the major constituent of Gram-negative bacterial outer membranes and the responsible agent for eliciting an exacerbated innate immune response in the host during infection, has received outstanding interest. For that purpose, molecules that bind tightly to LPS are required to functionalize the affinity sorbents. Particularly, anti-LPS factors (ALFs) are promising LPS-sequestrating molecules. Hence, in this work, molecular dynamics (MD) simulations are used to investigate the interaction mechanism and binding pose of the ALF isoform 3 from Penaeus monodon (ALFPm3), which is referred to as “AL3” for the sake of simplicity, and lipid A (LA, the component of LPS that represents its endotoxic principle). We concluded that hydrophobic interactions are responsible for AL3–LA binding and that LA binds to AL3 within the protein cavity, where it buries its aliphatic tails, whereas the negatively charged phosphate groups are exposed to the medium. AL3 residues that are key for its interaction with LA were identified, and their conservation in other ALFs (specifically Lys39 and Tyr49) was also analyzed. Additionally, based on the MD-derived results, we provide a picture of the possible AL3–LA interaction mechanism. Finally, an in vitro validation of the in silico predictions was performed. Overall, the insights gained from this work can guide the design of novel therapeutics for treating sepsis, since they may be significantly valuable for designing LPS-sequestrating molecules that could functionalize affinity sorbents to be used for extracorporeal blood detoxification. American Chemical Society 2023-04-07 /pmc/articles/PMC10131219/ /pubmed/37026789 http://dx.doi.org/10.1021/acs.jcim.3c00173 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle González-Fernández, Cristina
Öhlknecht, Christoph
Diem, Matthias
Escalona, Yerko
Bringas, Eugenio
Moncalián, Gabriel
Oostenbrink, Chris
Ortiz, Inmaculada
Insights into the Binding Mode of Lipid A to the Anti-lipopolysaccharide Factor ALFPm3 from Penaeus monodon: An In Silico Study through MD Simulations
title Insights into the Binding Mode of Lipid A to the Anti-lipopolysaccharide Factor ALFPm3 from Penaeus monodon: An In Silico Study through MD Simulations
title_full Insights into the Binding Mode of Lipid A to the Anti-lipopolysaccharide Factor ALFPm3 from Penaeus monodon: An In Silico Study through MD Simulations
title_fullStr Insights into the Binding Mode of Lipid A to the Anti-lipopolysaccharide Factor ALFPm3 from Penaeus monodon: An In Silico Study through MD Simulations
title_full_unstemmed Insights into the Binding Mode of Lipid A to the Anti-lipopolysaccharide Factor ALFPm3 from Penaeus monodon: An In Silico Study through MD Simulations
title_short Insights into the Binding Mode of Lipid A to the Anti-lipopolysaccharide Factor ALFPm3 from Penaeus monodon: An In Silico Study through MD Simulations
title_sort insights into the binding mode of lipid a to the anti-lipopolysaccharide factor alfpm3 from penaeus monodon: an in silico study through md simulations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10131219/
https://www.ncbi.nlm.nih.gov/pubmed/37026789
http://dx.doi.org/10.1021/acs.jcim.3c00173
work_keys_str_mv AT gonzalezfernandezcristina insightsintothebindingmodeoflipidatotheantilipopolysaccharidefactoralfpm3frompenaeusmonodonaninsilicostudythroughmdsimulations
AT ohlknechtchristoph insightsintothebindingmodeoflipidatotheantilipopolysaccharidefactoralfpm3frompenaeusmonodonaninsilicostudythroughmdsimulations
AT diemmatthias insightsintothebindingmodeoflipidatotheantilipopolysaccharidefactoralfpm3frompenaeusmonodonaninsilicostudythroughmdsimulations
AT escalonayerko insightsintothebindingmodeoflipidatotheantilipopolysaccharidefactoralfpm3frompenaeusmonodonaninsilicostudythroughmdsimulations
AT bringaseugenio insightsintothebindingmodeoflipidatotheantilipopolysaccharidefactoralfpm3frompenaeusmonodonaninsilicostudythroughmdsimulations
AT moncaliangabriel insightsintothebindingmodeoflipidatotheantilipopolysaccharidefactoralfpm3frompenaeusmonodonaninsilicostudythroughmdsimulations
AT oostenbrinkchris insightsintothebindingmodeoflipidatotheantilipopolysaccharidefactoralfpm3frompenaeusmonodonaninsilicostudythroughmdsimulations
AT ortizinmaculada insightsintothebindingmodeoflipidatotheantilipopolysaccharidefactoralfpm3frompenaeusmonodonaninsilicostudythroughmdsimulations