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Residual Interactions of LL-37 with POPC and POPE:POPG Bilayer Model Studied by All-Atom Molecular Dynamics Simulation

LL-37 is a membrane-active antimicrobial peptide (AMP) that could disrupt the integrity of bacterial membranes due to its inherent cationic and amphipathic nature. Developing a shorter derivative of a long peptide such as LL-37 is of great interest, as it can reduce production costs and cytotoxicity...

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Autores principales: Yusuf, Muhammad, Destiarani, Wanda, Firdaus, Ade Rizqi Ridwan, Rohmatulloh, Fauzian Giansyah, Novianti, Mia Tria, Pradini, Gita Widya, Dwiyana, Reiva Farah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9654553/
https://www.ncbi.nlm.nih.gov/pubmed/36362195
http://dx.doi.org/10.3390/ijms232113413
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author Yusuf, Muhammad
Destiarani, Wanda
Firdaus, Ade Rizqi Ridwan
Rohmatulloh, Fauzian Giansyah
Novianti, Mia Tria
Pradini, Gita Widya
Dwiyana, Reiva Farah
author_facet Yusuf, Muhammad
Destiarani, Wanda
Firdaus, Ade Rizqi Ridwan
Rohmatulloh, Fauzian Giansyah
Novianti, Mia Tria
Pradini, Gita Widya
Dwiyana, Reiva Farah
author_sort Yusuf, Muhammad
collection PubMed
description LL-37 is a membrane-active antimicrobial peptide (AMP) that could disrupt the integrity of bacterial membranes due to its inherent cationic and amphipathic nature. Developing a shorter derivative of a long peptide such as LL-37 is of great interest, as it can reduce production costs and cytotoxicity. However, more detailed information about the residual interaction between LL-37 and the membrane is required for further optimization. Previously, molecular dynamics simulation using mixed all-atom and united-atom force fields showed that LL-37 could penetrate the bilayer membrane. This study aimed to perform all-atom molecular dynamics simulations, highlighting the residual interaction of LL-37 with the simplest model of the bacterial membrane, POPE:POPG (2:1), and compare its interaction with the POPC, which represents the eukaryotic membrane. The result showed leucine–leucine as the leading residues of LL-37 that first contact the membrane surface. Then, the cationic peptide of LL-37 started to penetrate the membrane by developing salt bridges between positively charged amino acids, Lys–Arg, and the exposed phosphate group of POPE:POPG, which is shielded in POPC. Residues 18 to 29 are suggested as the core region of LL-37, as they actively interact with the POPE:POPG membrane, not POPC. These results could provide a basis for modifying the amino acid sequence of LL-37 and developing a more efficient design for LL-37 derivatives.
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spelling pubmed-96545532022-11-15 Residual Interactions of LL-37 with POPC and POPE:POPG Bilayer Model Studied by All-Atom Molecular Dynamics Simulation Yusuf, Muhammad Destiarani, Wanda Firdaus, Ade Rizqi Ridwan Rohmatulloh, Fauzian Giansyah Novianti, Mia Tria Pradini, Gita Widya Dwiyana, Reiva Farah Int J Mol Sci Article LL-37 is a membrane-active antimicrobial peptide (AMP) that could disrupt the integrity of bacterial membranes due to its inherent cationic and amphipathic nature. Developing a shorter derivative of a long peptide such as LL-37 is of great interest, as it can reduce production costs and cytotoxicity. However, more detailed information about the residual interaction between LL-37 and the membrane is required for further optimization. Previously, molecular dynamics simulation using mixed all-atom and united-atom force fields showed that LL-37 could penetrate the bilayer membrane. This study aimed to perform all-atom molecular dynamics simulations, highlighting the residual interaction of LL-37 with the simplest model of the bacterial membrane, POPE:POPG (2:1), and compare its interaction with the POPC, which represents the eukaryotic membrane. The result showed leucine–leucine as the leading residues of LL-37 that first contact the membrane surface. Then, the cationic peptide of LL-37 started to penetrate the membrane by developing salt bridges between positively charged amino acids, Lys–Arg, and the exposed phosphate group of POPE:POPG, which is shielded in POPC. Residues 18 to 29 are suggested as the core region of LL-37, as they actively interact with the POPE:POPG membrane, not POPC. These results could provide a basis for modifying the amino acid sequence of LL-37 and developing a more efficient design for LL-37 derivatives. MDPI 2022-11-02 /pmc/articles/PMC9654553/ /pubmed/36362195 http://dx.doi.org/10.3390/ijms232113413 Text en © 2022 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
Yusuf, Muhammad
Destiarani, Wanda
Firdaus, Ade Rizqi Ridwan
Rohmatulloh, Fauzian Giansyah
Novianti, Mia Tria
Pradini, Gita Widya
Dwiyana, Reiva Farah
Residual Interactions of LL-37 with POPC and POPE:POPG Bilayer Model Studied by All-Atom Molecular Dynamics Simulation
title Residual Interactions of LL-37 with POPC and POPE:POPG Bilayer Model Studied by All-Atom Molecular Dynamics Simulation
title_full Residual Interactions of LL-37 with POPC and POPE:POPG Bilayer Model Studied by All-Atom Molecular Dynamics Simulation
title_fullStr Residual Interactions of LL-37 with POPC and POPE:POPG Bilayer Model Studied by All-Atom Molecular Dynamics Simulation
title_full_unstemmed Residual Interactions of LL-37 with POPC and POPE:POPG Bilayer Model Studied by All-Atom Molecular Dynamics Simulation
title_short Residual Interactions of LL-37 with POPC and POPE:POPG Bilayer Model Studied by All-Atom Molecular Dynamics Simulation
title_sort residual interactions of ll-37 with popc and pope:popg bilayer model studied by all-atom molecular dynamics simulation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9654553/
https://www.ncbi.nlm.nih.gov/pubmed/36362195
http://dx.doi.org/10.3390/ijms232113413
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