Effects of Selective Substitution of Cysteine Residues on the Conformational Properties of Chlorotoxin Explored by Molecular Dynamics Simulations

Chlorotoxin (CTX) is a 36–amino acid peptide with eight Cys residues that forms four disulfide bonds. It has high affinity for the glioma-specific chloride channel and matrix metalloprotease-2. Structural and binding properties of CTX analogs with various Cys residue substitutions with l-&...

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Main Authors: Andrew J. Gregory, Leah Voit-Ostricki, Sándor Lovas, Charles R. Watts
Format: Article
Language:English
Published: MDPI AG 2019-03-01
Series:International Journal of Molecular Sciences
Subjects:
Abu
Cys
Ser
Online Access:http://www.mdpi.com/1422-0067/20/6/1261
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spelling doaj-8f317c792abe4dd28aecb5fc021333272020-11-24T21:16:17ZengMDPI AGInternational Journal of Molecular Sciences1422-00672019-03-01206126110.3390/ijms20061261ijms20061261Effects of Selective Substitution of Cysteine Residues on the Conformational Properties of Chlorotoxin Explored by Molecular Dynamics SimulationsAndrew J. Gregory0Leah Voit-Ostricki1Sándor Lovas2Charles R. Watts3Department of Neurosurgery, Mayo Clinic Health System-Franciscan Healthcare in La Crosse, La Crosse, WI 54601, USADepartment of Neurosurgery, Mayo Clinic Health System-Franciscan Healthcare in La Crosse, La Crosse, WI 54601, USADepartment of Biomedical Sciences, Creighton University, Omaha, NE 68178, USADepartment of Neurosurgery, Mayo Clinic Health System-Franciscan Healthcare in La Crosse, La Crosse, WI 54601, USAChlorotoxin (CTX) is a 36–amino acid peptide with eight Cys residues that forms four disulfide bonds. It has high affinity for the glioma-specific chloride channel and matrix metalloprotease-2. Structural and binding properties of CTX analogs with various Cys residue substitutions with l-α-aminobutyric acid (Abu) have been previously reported. Using 4.2 µs molecular dynamics, we compared the conformational and essential space sampling of CTX and analogs with selective substitution of the Cys residues and associated disulfide bonds with either Abu or Ser. The native and substituted peptides maintained a high degree of α-helix propensity from residues 8 through 21, with the exception of substitution of the Cys5–Cys28 residues with Ser and the Cys16–Cys33 residues with Abu. In agreement with previous circular dichroism spectropolarimetry results, the C-terminal β-sheet content varied less from residues 25 through 29 and 32 through 36 and was well conserved in most analogs. The Cys16–Cys33 and Cys20–Cys35 disulfide-bonded residues appear to be required to maintain the αβ motif of CTX. Selective substitution with the hydrophilic Ser, may mitigate the destabilizing effect of Cys16–Cys33 substitution through the formation of an inter residue H-bond from Ser16:OγH to Ser33:OγH bridged by a water molecule. All peptides shared considerable sampled conformational space, which explains the retained receptor binding of the non-native analogs.http://www.mdpi.com/1422-0067/20/6/1261αβ motifAbuchlorotoxinCysdisulfide bondinsectotoxinisosteric substitutionl-α-aminobutyric acidmolecular dynamicsSer
collection DOAJ
language English
format Article
sources DOAJ
author Andrew J. Gregory
Leah Voit-Ostricki
Sándor Lovas
Charles R. Watts
spellingShingle Andrew J. Gregory
Leah Voit-Ostricki
Sándor Lovas
Charles R. Watts
Effects of Selective Substitution of Cysteine Residues on the Conformational Properties of Chlorotoxin Explored by Molecular Dynamics Simulations
International Journal of Molecular Sciences
αβ motif
Abu
chlorotoxin
Cys
disulfide bond
insectotoxin
isosteric substitution
l-α-aminobutyric acid
molecular dynamics
Ser
author_facet Andrew J. Gregory
Leah Voit-Ostricki
Sándor Lovas
Charles R. Watts
author_sort Andrew J. Gregory
title Effects of Selective Substitution of Cysteine Residues on the Conformational Properties of Chlorotoxin Explored by Molecular Dynamics Simulations
title_short Effects of Selective Substitution of Cysteine Residues on the Conformational Properties of Chlorotoxin Explored by Molecular Dynamics Simulations
title_full Effects of Selective Substitution of Cysteine Residues on the Conformational Properties of Chlorotoxin Explored by Molecular Dynamics Simulations
title_fullStr Effects of Selective Substitution of Cysteine Residues on the Conformational Properties of Chlorotoxin Explored by Molecular Dynamics Simulations
title_full_unstemmed Effects of Selective Substitution of Cysteine Residues on the Conformational Properties of Chlorotoxin Explored by Molecular Dynamics Simulations
title_sort effects of selective substitution of cysteine residues on the conformational properties of chlorotoxin explored by molecular dynamics simulations
publisher MDPI AG
series International Journal of Molecular Sciences
issn 1422-0067
publishDate 2019-03-01
description Chlorotoxin (CTX) is a 36–amino acid peptide with eight Cys residues that forms four disulfide bonds. It has high affinity for the glioma-specific chloride channel and matrix metalloprotease-2. Structural and binding properties of CTX analogs with various Cys residue substitutions with l-α-aminobutyric acid (Abu) have been previously reported. Using 4.2 µs molecular dynamics, we compared the conformational and essential space sampling of CTX and analogs with selective substitution of the Cys residues and associated disulfide bonds with either Abu or Ser. The native and substituted peptides maintained a high degree of α-helix propensity from residues 8 through 21, with the exception of substitution of the Cys5–Cys28 residues with Ser and the Cys16–Cys33 residues with Abu. In agreement with previous circular dichroism spectropolarimetry results, the C-terminal β-sheet content varied less from residues 25 through 29 and 32 through 36 and was well conserved in most analogs. The Cys16–Cys33 and Cys20–Cys35 disulfide-bonded residues appear to be required to maintain the αβ motif of CTX. Selective substitution with the hydrophilic Ser, may mitigate the destabilizing effect of Cys16–Cys33 substitution through the formation of an inter residue H-bond from Ser16:OγH to Ser33:OγH bridged by a water molecule. All peptides shared considerable sampled conformational space, which explains the retained receptor binding of the non-native analogs.
topic αβ motif
Abu
chlorotoxin
Cys
disulfide bond
insectotoxin
isosteric substitution
l-α-aminobutyric acid
molecular dynamics
Ser
url http://www.mdpi.com/1422-0067/20/6/1261
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