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Succinimide Formation from an NGR-Containing Cyclic Peptide: Computational Evidence for Catalytic Roles of Phosphate Buffer and the Arginine Side Chain

The Asn-Gly-Arg (NGR) motif and its deamidation product isoAsp-Gly-Arg (isoDGR) have recently attracted considerable attention as tumor-targeting ligands. Because an NGR-containing peptide and the corresponding isoDGR-containing peptide target different receptors, the spontaneous NGR deamidation can...

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Autores principales: Kirikoshi, Ryota, Manabe, Noriyoshi, Takahashi, Ohgi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5343963/
https://www.ncbi.nlm.nih.gov/pubmed/28212316
http://dx.doi.org/10.3390/ijms18020429
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author Kirikoshi, Ryota
Manabe, Noriyoshi
Takahashi, Ohgi
author_facet Kirikoshi, Ryota
Manabe, Noriyoshi
Takahashi, Ohgi
author_sort Kirikoshi, Ryota
collection PubMed
description The Asn-Gly-Arg (NGR) motif and its deamidation product isoAsp-Gly-Arg (isoDGR) have recently attracted considerable attention as tumor-targeting ligands. Because an NGR-containing peptide and the corresponding isoDGR-containing peptide target different receptors, the spontaneous NGR deamidation can be used in dual targeting strategies. It is well known that the Asn deamidation proceeds via a succinimide derivative. In the present study, we computationally investigated the mechanism of succinimide formation from a cyclic peptide, c[CH(2)CO-NGRC]-NH(2), which has recently been shown to undergo rapid deamidation in a phosphate buffer. An H(2)PO(4)(−) ion was explicitly included in the calculations. We employed the density functional theory using the B3LYP functional. While geometry optimizations were performed in the gas phase, hydration Gibbs energies were calculated by the SM8 (solvation model 8) continuum model. We have found a pathway leading to the five-membered ring tetrahedral intermediate in which both the H(2)PO(4)(−) ion and the Arg side chain act as catalyst. This intermediate, once protonated at the NH(2) group on the five-membered ring, was shown to easily undergo NH(3) elimination leading to the succinimide formation. This study is the first to propose a possible catalytic role for the Arg side chain in the NGR deamidation.
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spelling pubmed-53439632017-03-16 Succinimide Formation from an NGR-Containing Cyclic Peptide: Computational Evidence for Catalytic Roles of Phosphate Buffer and the Arginine Side Chain Kirikoshi, Ryota Manabe, Noriyoshi Takahashi, Ohgi Int J Mol Sci Article The Asn-Gly-Arg (NGR) motif and its deamidation product isoAsp-Gly-Arg (isoDGR) have recently attracted considerable attention as tumor-targeting ligands. Because an NGR-containing peptide and the corresponding isoDGR-containing peptide target different receptors, the spontaneous NGR deamidation can be used in dual targeting strategies. It is well known that the Asn deamidation proceeds via a succinimide derivative. In the present study, we computationally investigated the mechanism of succinimide formation from a cyclic peptide, c[CH(2)CO-NGRC]-NH(2), which has recently been shown to undergo rapid deamidation in a phosphate buffer. An H(2)PO(4)(−) ion was explicitly included in the calculations. We employed the density functional theory using the B3LYP functional. While geometry optimizations were performed in the gas phase, hydration Gibbs energies were calculated by the SM8 (solvation model 8) continuum model. We have found a pathway leading to the five-membered ring tetrahedral intermediate in which both the H(2)PO(4)(−) ion and the Arg side chain act as catalyst. This intermediate, once protonated at the NH(2) group on the five-membered ring, was shown to easily undergo NH(3) elimination leading to the succinimide formation. This study is the first to propose a possible catalytic role for the Arg side chain in the NGR deamidation. MDPI 2017-02-16 /pmc/articles/PMC5343963/ /pubmed/28212316 http://dx.doi.org/10.3390/ijms18020429 Text en © 2017 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kirikoshi, Ryota
Manabe, Noriyoshi
Takahashi, Ohgi
Succinimide Formation from an NGR-Containing Cyclic Peptide: Computational Evidence for Catalytic Roles of Phosphate Buffer and the Arginine Side Chain
title Succinimide Formation from an NGR-Containing Cyclic Peptide: Computational Evidence for Catalytic Roles of Phosphate Buffer and the Arginine Side Chain
title_full Succinimide Formation from an NGR-Containing Cyclic Peptide: Computational Evidence for Catalytic Roles of Phosphate Buffer and the Arginine Side Chain
title_fullStr Succinimide Formation from an NGR-Containing Cyclic Peptide: Computational Evidence for Catalytic Roles of Phosphate Buffer and the Arginine Side Chain
title_full_unstemmed Succinimide Formation from an NGR-Containing Cyclic Peptide: Computational Evidence for Catalytic Roles of Phosphate Buffer and the Arginine Side Chain
title_short Succinimide Formation from an NGR-Containing Cyclic Peptide: Computational Evidence for Catalytic Roles of Phosphate Buffer and the Arginine Side Chain
title_sort succinimide formation from an ngr-containing cyclic peptide: computational evidence for catalytic roles of phosphate buffer and the arginine side chain
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5343963/
https://www.ncbi.nlm.nih.gov/pubmed/28212316
http://dx.doi.org/10.3390/ijms18020429
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