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Substitution determination of Fmoc‐substituted resins at different wavelengths

In solid‐phase peptide synthesis, the nominal batch size is calculated using the starting resin substitution and the mass of the starting resin. The starting resin substitution constitutes the basis for the calculation of a whole set of important process parameters, such as the number of amino acid...

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Autores principales: Eissler, Stefan, Kley, Markus, Bächle, Dirk, Loidl, Günther, Meier, Thomas, Samson, Daniel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5599980/
https://www.ncbi.nlm.nih.gov/pubmed/28635051
http://dx.doi.org/10.1002/psc.3021
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author Eissler, Stefan
Kley, Markus
Bächle, Dirk
Loidl, Günther
Meier, Thomas
Samson, Daniel
author_facet Eissler, Stefan
Kley, Markus
Bächle, Dirk
Loidl, Günther
Meier, Thomas
Samson, Daniel
author_sort Eissler, Stefan
collection PubMed
description In solid‐phase peptide synthesis, the nominal batch size is calculated using the starting resin substitution and the mass of the starting resin. The starting resin substitution constitutes the basis for the calculation of a whole set of important process parameters, such as the number of amino acid derivative equivalents. For Fmoc‐substituted resins, substitution determination is often performed by suspending the Fmoc‐protected starting resin in 20% (v/v) piperidine in DMF to generate the dibenzofulvene–piperidine adduct that is quantified by ultraviolet–visible spectroscopy. The spectrometric measurement is performed at the maximum absorption wavelength of the dibenzofulvene–piperidine adduct, that is, at 301.0 nm. The recorded absorption value, the resin weight and the volume are entered into an equation derived from Lambert–Beer's law, together with the substance‐specific molar absorption coefficient at 301.0 nm, in order to calculate the nominal substitution. To our knowledge, molar absorption coefficients between 7100 l mol(−1) cm(−1) and 8100 l mol(−1) cm(−1) have been reported for the dibenzofulvene–piperidine adduct at 301.0 nm. Depending on the applied value, the nominal batch size may differ up to 14%. In this publication, a determination of the molar absorption coefficients at 301.0 and 289.8 nm is reported. Furthermore, proof is given that by measuring the absorption at 289.8 nm the impact of wavelength accuracy is reduced. © 2017 The Authors Journal of Peptide Science published by European Peptide Society and John Wiley & Sons Ltd.
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spelling pubmed-55999802017-10-02 Substitution determination of Fmoc‐substituted resins at different wavelengths Eissler, Stefan Kley, Markus Bächle, Dirk Loidl, Günther Meier, Thomas Samson, Daniel J Pept Sci Research Articles In solid‐phase peptide synthesis, the nominal batch size is calculated using the starting resin substitution and the mass of the starting resin. The starting resin substitution constitutes the basis for the calculation of a whole set of important process parameters, such as the number of amino acid derivative equivalents. For Fmoc‐substituted resins, substitution determination is often performed by suspending the Fmoc‐protected starting resin in 20% (v/v) piperidine in DMF to generate the dibenzofulvene–piperidine adduct that is quantified by ultraviolet–visible spectroscopy. The spectrometric measurement is performed at the maximum absorption wavelength of the dibenzofulvene–piperidine adduct, that is, at 301.0 nm. The recorded absorption value, the resin weight and the volume are entered into an equation derived from Lambert–Beer's law, together with the substance‐specific molar absorption coefficient at 301.0 nm, in order to calculate the nominal substitution. To our knowledge, molar absorption coefficients between 7100 l mol(−1) cm(−1) and 8100 l mol(−1) cm(−1) have been reported for the dibenzofulvene–piperidine adduct at 301.0 nm. Depending on the applied value, the nominal batch size may differ up to 14%. In this publication, a determination of the molar absorption coefficients at 301.0 and 289.8 nm is reported. Furthermore, proof is given that by measuring the absorption at 289.8 nm the impact of wavelength accuracy is reduced. © 2017 The Authors Journal of Peptide Science published by European Peptide Society and John Wiley & Sons Ltd. John Wiley and Sons Inc. 2017-06-21 2017-10 /pmc/articles/PMC5599980/ /pubmed/28635051 http://dx.doi.org/10.1002/psc.3021 Text en © 2017 The Authors Journal of Peptide Science published by European Peptide Society and John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution‐NoDerivs (http://creativecommons.org/licenses/by-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited and no modifications or adaptations are made.
spellingShingle Research Articles
Eissler, Stefan
Kley, Markus
Bächle, Dirk
Loidl, Günther
Meier, Thomas
Samson, Daniel
Substitution determination of Fmoc‐substituted resins at different wavelengths
title Substitution determination of Fmoc‐substituted resins at different wavelengths
title_full Substitution determination of Fmoc‐substituted resins at different wavelengths
title_fullStr Substitution determination of Fmoc‐substituted resins at different wavelengths
title_full_unstemmed Substitution determination of Fmoc‐substituted resins at different wavelengths
title_short Substitution determination of Fmoc‐substituted resins at different wavelengths
title_sort substitution determination of fmoc‐substituted resins at different wavelengths
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5599980/
https://www.ncbi.nlm.nih.gov/pubmed/28635051
http://dx.doi.org/10.1002/psc.3021
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