Analysis of mutations of defensin protein using accelerated molecular dynamics simulations.

Plant defensins possess diverse biological functions that include antifungal and antibacterial activities and α-amylase and trypsin inhibitory properties. Two mutations, G9R and V39R, were confirmed to increase the antifungal activity of Raphanus sativus antifungal protein 2 (RsAFP2). Accelerated Mo...

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Main Authors: Bharati Pandey, Chetna Tyagi, Gopal Kumar Prajapati, Awdhesh Kumar Mishra, Abeer Hashem, Abdulaziz A Alqarawi, Elsayed Fathi Abd Allah, Tapan Kumar Mohanta
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0241679
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spelling doaj-730f02deb5544dbe82b91d6fa514947d2021-03-04T12:50:38ZengPublic Library of Science (PLoS)PLoS ONE1932-62032020-01-011511e024167910.1371/journal.pone.0241679Analysis of mutations of defensin protein using accelerated molecular dynamics simulations.Bharati PandeyChetna TyagiGopal Kumar PrajapatiAwdhesh Kumar MishraAbeer HashemAbdulaziz A AlqarawiElsayed Fathi Abd AllahTapan Kumar MohantaPlant defensins possess diverse biological functions that include antifungal and antibacterial activities and α-amylase and trypsin inhibitory properties. Two mutations, G9R and V39R, were confirmed to increase the antifungal activity of Raphanus sativus antifungal protein 2 (RsAFP2). Accelerated Molecular Dynamics (aMD) were carried out to examine the conformational changes present in these RsAFP2 mutants, and its two closest homologs compared to the wild-type protein. Specifically, the root mean square fluctuation values for the eight cysteine amino acids involved in the four disulfide bonds were low in the V39R mutant compared to the wild-type. Additionally, analysis of the free energy change revealed that G9R and V39R mutations exert a neutral and stabilizing effect on RsAFP2 conformation, and this is supported by the observed lower total energy of mutants compared to the wild-type, suggesting that enhanced stability of the mutants. However, MD simulations to a longer time scale would aid in capturing more conformational state of the wild-type and mutants defensin protein. Furthermore, the aMD simulations on fungal mimic membranes with RsAFP2 and its mutants and homologs showed that the mutant proteins caused higher deformation and water diffusion than the native RsAFP2, especially the V39R mutant. The mutant variants seem to interact by specifically targeting the POPC and POPI lipids amongst others. This work highlights the stabilizing effect of mutations at the 9th and 39th positions of RsAFP2 and their increased membrane deformation activity.https://doi.org/10.1371/journal.pone.0241679
collection DOAJ
language English
format Article
sources DOAJ
author Bharati Pandey
Chetna Tyagi
Gopal Kumar Prajapati
Awdhesh Kumar Mishra
Abeer Hashem
Abdulaziz A Alqarawi
Elsayed Fathi Abd Allah
Tapan Kumar Mohanta
spellingShingle Bharati Pandey
Chetna Tyagi
Gopal Kumar Prajapati
Awdhesh Kumar Mishra
Abeer Hashem
Abdulaziz A Alqarawi
Elsayed Fathi Abd Allah
Tapan Kumar Mohanta
Analysis of mutations of defensin protein using accelerated molecular dynamics simulations.
PLoS ONE
author_facet Bharati Pandey
Chetna Tyagi
Gopal Kumar Prajapati
Awdhesh Kumar Mishra
Abeer Hashem
Abdulaziz A Alqarawi
Elsayed Fathi Abd Allah
Tapan Kumar Mohanta
author_sort Bharati Pandey
title Analysis of mutations of defensin protein using accelerated molecular dynamics simulations.
title_short Analysis of mutations of defensin protein using accelerated molecular dynamics simulations.
title_full Analysis of mutations of defensin protein using accelerated molecular dynamics simulations.
title_fullStr Analysis of mutations of defensin protein using accelerated molecular dynamics simulations.
title_full_unstemmed Analysis of mutations of defensin protein using accelerated molecular dynamics simulations.
title_sort analysis of mutations of defensin protein using accelerated molecular dynamics simulations.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2020-01-01
description Plant defensins possess diverse biological functions that include antifungal and antibacterial activities and α-amylase and trypsin inhibitory properties. Two mutations, G9R and V39R, were confirmed to increase the antifungal activity of Raphanus sativus antifungal protein 2 (RsAFP2). Accelerated Molecular Dynamics (aMD) were carried out to examine the conformational changes present in these RsAFP2 mutants, and its two closest homologs compared to the wild-type protein. Specifically, the root mean square fluctuation values for the eight cysteine amino acids involved in the four disulfide bonds were low in the V39R mutant compared to the wild-type. Additionally, analysis of the free energy change revealed that G9R and V39R mutations exert a neutral and stabilizing effect on RsAFP2 conformation, and this is supported by the observed lower total energy of mutants compared to the wild-type, suggesting that enhanced stability of the mutants. However, MD simulations to a longer time scale would aid in capturing more conformational state of the wild-type and mutants defensin protein. Furthermore, the aMD simulations on fungal mimic membranes with RsAFP2 and its mutants and homologs showed that the mutant proteins caused higher deformation and water diffusion than the native RsAFP2, especially the V39R mutant. The mutant variants seem to interact by specifically targeting the POPC and POPI lipids amongst others. This work highlights the stabilizing effect of mutations at the 9th and 39th positions of RsAFP2 and their increased membrane deformation activity.
url https://doi.org/10.1371/journal.pone.0241679
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