Cargando…

Fully Symmetric Cyclodextrin Polycarboxylates: How to Determine Reliable Protonation Constants from NMR Titration Data

Acid-base properties of cyclodextrins (CDs), persubstituted at C-6 by 3-mercaptopropionic acid, sualphadex (Suα-CD), subetadex (Suβ-CD) and sugammadex (Suγ-CD, the antidote of neuromuscular blocking steroids) were studied by (1)H NMR-pH titrations. For each CD, the severe overlap in protonation step...

Descripción completa

Detalles Bibliográficos
Autores principales: Kalydi, Eszter, Malanga, Milo, Ujj, Dóra, Benkovics, Gábor, Szakács, Zoltán, Béni, Szabolcs
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9696085/
https://www.ncbi.nlm.nih.gov/pubmed/36430926
http://dx.doi.org/10.3390/ijms232214448
_version_ 1784838229142274048
author Kalydi, Eszter
Malanga, Milo
Ujj, Dóra
Benkovics, Gábor
Szakács, Zoltán
Béni, Szabolcs
author_facet Kalydi, Eszter
Malanga, Milo
Ujj, Dóra
Benkovics, Gábor
Szakács, Zoltán
Béni, Szabolcs
author_sort Kalydi, Eszter
collection PubMed
description Acid-base properties of cyclodextrins (CDs), persubstituted at C-6 by 3-mercaptopropionic acid, sualphadex (Suα-CD), subetadex (Suβ-CD) and sugammadex (Suγ-CD, the antidote of neuromuscular blocking steroids) were studied by (1)H NMR-pH titrations. For each CD, the severe overlap in protonation steps prevented the calculation of macroscopic pK(a) values using the standard data fitting model. Considering the full symmetry of polycarboxylate structures, we reduced the number of unknown NMR parameters in the “Q-fitting” or the novel “equidistant macroscopic” evaluation approaches. These models already provided pK(a) values, but some of them proved to be physically unrealistic, deceptively suggesting cooperativity in carboxylate protonations. The latter problem could be circumvented by adapting the microscopic site-binding (cluster expansion) model by Borkovec, which applies pairwise interactivity parameters to quantify the mutual basicity-decreasing effect of carboxylate protonations. Surprisingly, only a single averaged interactivity parameter could be calculated reliably besides the carboxylate ‘core’ microconstant for each CD derivative. The speciation of protonation isomers hence could not be resolved, but the optimized microscopic basicity parameters could be converted to the following sets of macroscopic pK(a) values: 3.84, 4.35, 4.81, 5.31, 5.78, 6.28 for Suα-CD; 3.82, 4.31, 4.73, 5.18, 5.64, 6.06, 6.54 for Suβ-CD and 3.83, 4.28, 4.65, 5.03, 5.43, 5.81, 6.18, 6.64 for Suγ-CD. The pH-dependent charge of these compounds can now be accurately calculated, in support of designing new analytical methods to exploit their charge-dependent molecular recognition such as in cyclodextrin-aided chiral capillary electrophoresis.
format Online
Article
Text
id pubmed-9696085
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96960852022-11-26 Fully Symmetric Cyclodextrin Polycarboxylates: How to Determine Reliable Protonation Constants from NMR Titration Data Kalydi, Eszter Malanga, Milo Ujj, Dóra Benkovics, Gábor Szakács, Zoltán Béni, Szabolcs Int J Mol Sci Article Acid-base properties of cyclodextrins (CDs), persubstituted at C-6 by 3-mercaptopropionic acid, sualphadex (Suα-CD), subetadex (Suβ-CD) and sugammadex (Suγ-CD, the antidote of neuromuscular blocking steroids) were studied by (1)H NMR-pH titrations. For each CD, the severe overlap in protonation steps prevented the calculation of macroscopic pK(a) values using the standard data fitting model. Considering the full symmetry of polycarboxylate structures, we reduced the number of unknown NMR parameters in the “Q-fitting” or the novel “equidistant macroscopic” evaluation approaches. These models already provided pK(a) values, but some of them proved to be physically unrealistic, deceptively suggesting cooperativity in carboxylate protonations. The latter problem could be circumvented by adapting the microscopic site-binding (cluster expansion) model by Borkovec, which applies pairwise interactivity parameters to quantify the mutual basicity-decreasing effect of carboxylate protonations. Surprisingly, only a single averaged interactivity parameter could be calculated reliably besides the carboxylate ‘core’ microconstant for each CD derivative. The speciation of protonation isomers hence could not be resolved, but the optimized microscopic basicity parameters could be converted to the following sets of macroscopic pK(a) values: 3.84, 4.35, 4.81, 5.31, 5.78, 6.28 for Suα-CD; 3.82, 4.31, 4.73, 5.18, 5.64, 6.06, 6.54 for Suβ-CD and 3.83, 4.28, 4.65, 5.03, 5.43, 5.81, 6.18, 6.64 for Suγ-CD. The pH-dependent charge of these compounds can now be accurately calculated, in support of designing new analytical methods to exploit their charge-dependent molecular recognition such as in cyclodextrin-aided chiral capillary electrophoresis. MDPI 2022-11-21 /pmc/articles/PMC9696085/ /pubmed/36430926 http://dx.doi.org/10.3390/ijms232214448 Text en © 2022 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
Kalydi, Eszter
Malanga, Milo
Ujj, Dóra
Benkovics, Gábor
Szakács, Zoltán
Béni, Szabolcs
Fully Symmetric Cyclodextrin Polycarboxylates: How to Determine Reliable Protonation Constants from NMR Titration Data
title Fully Symmetric Cyclodextrin Polycarboxylates: How to Determine Reliable Protonation Constants from NMR Titration Data
title_full Fully Symmetric Cyclodextrin Polycarboxylates: How to Determine Reliable Protonation Constants from NMR Titration Data
title_fullStr Fully Symmetric Cyclodextrin Polycarboxylates: How to Determine Reliable Protonation Constants from NMR Titration Data
title_full_unstemmed Fully Symmetric Cyclodextrin Polycarboxylates: How to Determine Reliable Protonation Constants from NMR Titration Data
title_short Fully Symmetric Cyclodextrin Polycarboxylates: How to Determine Reliable Protonation Constants from NMR Titration Data
title_sort fully symmetric cyclodextrin polycarboxylates: how to determine reliable protonation constants from nmr titration data
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9696085/
https://www.ncbi.nlm.nih.gov/pubmed/36430926
http://dx.doi.org/10.3390/ijms232214448
work_keys_str_mv AT kalydieszter fullysymmetriccyclodextrinpolycarboxylateshowtodeterminereliableprotonationconstantsfromnmrtitrationdata
AT malangamilo fullysymmetriccyclodextrinpolycarboxylateshowtodeterminereliableprotonationconstantsfromnmrtitrationdata
AT ujjdora fullysymmetriccyclodextrinpolycarboxylateshowtodeterminereliableprotonationconstantsfromnmrtitrationdata
AT benkovicsgabor fullysymmetriccyclodextrinpolycarboxylateshowtodeterminereliableprotonationconstantsfromnmrtitrationdata
AT szakacszoltan fullysymmetriccyclodextrinpolycarboxylateshowtodeterminereliableprotonationconstantsfromnmrtitrationdata
AT beniszabolcs fullysymmetriccyclodextrinpolycarboxylateshowtodeterminereliableprotonationconstantsfromnmrtitrationdata