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Fast Solution-Phase and Liquid-Phase Peptide Syntheses (SolPSS and LPPS) Mediated by Biomimetic Cyclic Propylphosphonic Anhydride (T3P(®))

The growing applications of peptide-based therapeutics require the development of efficient protocols from the perspective of an industrial scale-up. T3P(®) (cyclic propylphosphonic anhydride) promotes amidation in the solution-phase through a biomimetic approach, similar to the activation of carbox...

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Autores principales: Mattellone, Alexia, Corbisiero, Dario, Cantelmi, Paolo, Martelli, Giulia, Palladino, Chiara, Tolomelli, Alessandra, Cabri, Walter, Ferrazzano, Lucia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10609394/
https://www.ncbi.nlm.nih.gov/pubmed/37894662
http://dx.doi.org/10.3390/molecules28207183
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author Mattellone, Alexia
Corbisiero, Dario
Cantelmi, Paolo
Martelli, Giulia
Palladino, Chiara
Tolomelli, Alessandra
Cabri, Walter
Ferrazzano, Lucia
author_facet Mattellone, Alexia
Corbisiero, Dario
Cantelmi, Paolo
Martelli, Giulia
Palladino, Chiara
Tolomelli, Alessandra
Cabri, Walter
Ferrazzano, Lucia
author_sort Mattellone, Alexia
collection PubMed
description The growing applications of peptide-based therapeutics require the development of efficient protocols from the perspective of an industrial scale-up. T3P(®) (cyclic propylphosphonic anhydride) promotes amidation in the solution-phase through a biomimetic approach, similar to the activation of carboxylic moiety catalyzed by ATP-grasp enzymes in metabolic pathways. The T3P(®) induced coupling reaction was applied in this study to the solution-phase peptide synthesis (SolPPS). Peptide bond formation occurred in a few minutes with high efficiency and no epimerization, generating water-soluble by-products, both using N-Boc or N-Fmoc amino acids. The optimized protocol, which was successfully applied to the iterative synthesis of a pentapeptide, also allowed for a decrease in the solvent volume, thus improving process sustainability. The protocol was finally extended to the liquid-phase peptide synthesis (LPPS), where the isolation of the peptide was performed using precipitation, thus also showing the suitability of this coupling reagent to this emerging technique.
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spelling pubmed-106093942023-10-28 Fast Solution-Phase and Liquid-Phase Peptide Syntheses (SolPSS and LPPS) Mediated by Biomimetic Cyclic Propylphosphonic Anhydride (T3P(®)) Mattellone, Alexia Corbisiero, Dario Cantelmi, Paolo Martelli, Giulia Palladino, Chiara Tolomelli, Alessandra Cabri, Walter Ferrazzano, Lucia Molecules Article The growing applications of peptide-based therapeutics require the development of efficient protocols from the perspective of an industrial scale-up. T3P(®) (cyclic propylphosphonic anhydride) promotes amidation in the solution-phase through a biomimetic approach, similar to the activation of carboxylic moiety catalyzed by ATP-grasp enzymes in metabolic pathways. The T3P(®) induced coupling reaction was applied in this study to the solution-phase peptide synthesis (SolPPS). Peptide bond formation occurred in a few minutes with high efficiency and no epimerization, generating water-soluble by-products, both using N-Boc or N-Fmoc amino acids. The optimized protocol, which was successfully applied to the iterative synthesis of a pentapeptide, also allowed for a decrease in the solvent volume, thus improving process sustainability. The protocol was finally extended to the liquid-phase peptide synthesis (LPPS), where the isolation of the peptide was performed using precipitation, thus also showing the suitability of this coupling reagent to this emerging technique. MDPI 2023-10-19 /pmc/articles/PMC10609394/ /pubmed/37894662 http://dx.doi.org/10.3390/molecules28207183 Text en © 2023 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
Mattellone, Alexia
Corbisiero, Dario
Cantelmi, Paolo
Martelli, Giulia
Palladino, Chiara
Tolomelli, Alessandra
Cabri, Walter
Ferrazzano, Lucia
Fast Solution-Phase and Liquid-Phase Peptide Syntheses (SolPSS and LPPS) Mediated by Biomimetic Cyclic Propylphosphonic Anhydride (T3P(®))
title Fast Solution-Phase and Liquid-Phase Peptide Syntheses (SolPSS and LPPS) Mediated by Biomimetic Cyclic Propylphosphonic Anhydride (T3P(®))
title_full Fast Solution-Phase and Liquid-Phase Peptide Syntheses (SolPSS and LPPS) Mediated by Biomimetic Cyclic Propylphosphonic Anhydride (T3P(®))
title_fullStr Fast Solution-Phase and Liquid-Phase Peptide Syntheses (SolPSS and LPPS) Mediated by Biomimetic Cyclic Propylphosphonic Anhydride (T3P(®))
title_full_unstemmed Fast Solution-Phase and Liquid-Phase Peptide Syntheses (SolPSS and LPPS) Mediated by Biomimetic Cyclic Propylphosphonic Anhydride (T3P(®))
title_short Fast Solution-Phase and Liquid-Phase Peptide Syntheses (SolPSS and LPPS) Mediated by Biomimetic Cyclic Propylphosphonic Anhydride (T3P(®))
title_sort fast solution-phase and liquid-phase peptide syntheses (solpss and lpps) mediated by biomimetic cyclic propylphosphonic anhydride (t3p(®))
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10609394/
https://www.ncbi.nlm.nih.gov/pubmed/37894662
http://dx.doi.org/10.3390/molecules28207183
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