Cargando…

Enantioseparation of 5,5′-Dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on Polysaccharide-Based Chiral Stationary Phases: Exploring Chalcogen Bonds in Liquid-Phase Chromatography

The chalcogen bond (ChB) is a noncovalent interaction based on electrophilic features of regions of electron charge density depletion (σ-holes) located on bound atoms of group VI. The σ-holes of sulfur and heavy chalcogen atoms (Se, Te) (donors) can interact through their positive electrostatic pote...

Descripción completa

Detalles Bibliográficos
Autores principales: Peluso, Paola, Dessì, Alessandro, Dallocchio, Roberto, Sechi, Barbara, Gatti, Carlo, Chankvetadze, Bezhan, Mamane, Victor, Weiss, Robin, Pale, Patrick, Aubert, Emmanuel, Cossu, Sergio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7794968/
https://www.ncbi.nlm.nih.gov/pubmed/33406753
http://dx.doi.org/10.3390/molecules26010221
_version_ 1783634333414719488
author Peluso, Paola
Dessì, Alessandro
Dallocchio, Roberto
Sechi, Barbara
Gatti, Carlo
Chankvetadze, Bezhan
Mamane, Victor
Weiss, Robin
Pale, Patrick
Aubert, Emmanuel
Cossu, Sergio
author_facet Peluso, Paola
Dessì, Alessandro
Dallocchio, Roberto
Sechi, Barbara
Gatti, Carlo
Chankvetadze, Bezhan
Mamane, Victor
Weiss, Robin
Pale, Patrick
Aubert, Emmanuel
Cossu, Sergio
author_sort Peluso, Paola
collection PubMed
description The chalcogen bond (ChB) is a noncovalent interaction based on electrophilic features of regions of electron charge density depletion (σ-holes) located on bound atoms of group VI. The σ-holes of sulfur and heavy chalcogen atoms (Se, Te) (donors) can interact through their positive electrostatic potential (V) with nucleophilic partners such as lone pairs, π-clouds, and anions (acceptors). In the last few years, promising applications of ChBs in catalysis, crystal engineering, molecular biology, and supramolecular chemistry have been reported. Recently, we explored the high-performance liquid chromatography (HPLC) enantioseparation of fluorinated 3-arylthio-4,4′-bipyridines containing sulfur atoms as ChB donors. Following this study, herein we describe the comparative enantioseparation of three 5,5′-dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on polysaccharide-based chiral stationary phases (CSPs) aiming to understand function and potentialities of selenium σ-holes in the enantiodiscrimination process. The impact of the chalcogen substituent on enantioseparation was explored by using sulfur and non-chalcogen derivatives as reference substances for comparison. Our investigation also focused on the function of the perfluorinated aromatic ring as a π-hole donor recognition site. Thermodynamic quantities associated with the enantioseparation were derived from van’t Hoff plots and local electron charge density of specific molecular regions of the interacting partners were inspected in terms of calculated V. On this basis, by correlating theoretical data and experimental results, the participation of ChBs and π-hole bonds in the enantiodiscrimination process was reasonably confirmed.
format Online
Article
Text
id pubmed-7794968
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-77949682021-01-10 Enantioseparation of 5,5′-Dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on Polysaccharide-Based Chiral Stationary Phases: Exploring Chalcogen Bonds in Liquid-Phase Chromatography Peluso, Paola Dessì, Alessandro Dallocchio, Roberto Sechi, Barbara Gatti, Carlo Chankvetadze, Bezhan Mamane, Victor Weiss, Robin Pale, Patrick Aubert, Emmanuel Cossu, Sergio Molecules Article The chalcogen bond (ChB) is a noncovalent interaction based on electrophilic features of regions of electron charge density depletion (σ-holes) located on bound atoms of group VI. The σ-holes of sulfur and heavy chalcogen atoms (Se, Te) (donors) can interact through their positive electrostatic potential (V) with nucleophilic partners such as lone pairs, π-clouds, and anions (acceptors). In the last few years, promising applications of ChBs in catalysis, crystal engineering, molecular biology, and supramolecular chemistry have been reported. Recently, we explored the high-performance liquid chromatography (HPLC) enantioseparation of fluorinated 3-arylthio-4,4′-bipyridines containing sulfur atoms as ChB donors. Following this study, herein we describe the comparative enantioseparation of three 5,5′-dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on polysaccharide-based chiral stationary phases (CSPs) aiming to understand function and potentialities of selenium σ-holes in the enantiodiscrimination process. The impact of the chalcogen substituent on enantioseparation was explored by using sulfur and non-chalcogen derivatives as reference substances for comparison. Our investigation also focused on the function of the perfluorinated aromatic ring as a π-hole donor recognition site. Thermodynamic quantities associated with the enantioseparation were derived from van’t Hoff plots and local electron charge density of specific molecular regions of the interacting partners were inspected in terms of calculated V. On this basis, by correlating theoretical data and experimental results, the participation of ChBs and π-hole bonds in the enantiodiscrimination process was reasonably confirmed. MDPI 2021-01-04 /pmc/articles/PMC7794968/ /pubmed/33406753 http://dx.doi.org/10.3390/molecules26010221 Text en © 2021 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
Peluso, Paola
Dessì, Alessandro
Dallocchio, Roberto
Sechi, Barbara
Gatti, Carlo
Chankvetadze, Bezhan
Mamane, Victor
Weiss, Robin
Pale, Patrick
Aubert, Emmanuel
Cossu, Sergio
Enantioseparation of 5,5′-Dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on Polysaccharide-Based Chiral Stationary Phases: Exploring Chalcogen Bonds in Liquid-Phase Chromatography
title Enantioseparation of 5,5′-Dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on Polysaccharide-Based Chiral Stationary Phases: Exploring Chalcogen Bonds in Liquid-Phase Chromatography
title_full Enantioseparation of 5,5′-Dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on Polysaccharide-Based Chiral Stationary Phases: Exploring Chalcogen Bonds in Liquid-Phase Chromatography
title_fullStr Enantioseparation of 5,5′-Dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on Polysaccharide-Based Chiral Stationary Phases: Exploring Chalcogen Bonds in Liquid-Phase Chromatography
title_full_unstemmed Enantioseparation of 5,5′-Dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on Polysaccharide-Based Chiral Stationary Phases: Exploring Chalcogen Bonds in Liquid-Phase Chromatography
title_short Enantioseparation of 5,5′-Dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on Polysaccharide-Based Chiral Stationary Phases: Exploring Chalcogen Bonds in Liquid-Phase Chromatography
title_sort enantioseparation of 5,5′-dibromo-2,2′-dichloro-3-selanyl-4,4′-bipyridines on polysaccharide-based chiral stationary phases: exploring chalcogen bonds in liquid-phase chromatography
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7794968/
https://www.ncbi.nlm.nih.gov/pubmed/33406753
http://dx.doi.org/10.3390/molecules26010221
work_keys_str_mv AT pelusopaola enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography
AT dessialessandro enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography
AT dallocchioroberto enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography
AT sechibarbara enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography
AT gatticarlo enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography
AT chankvetadzebezhan enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography
AT mamanevictor enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography
AT weissrobin enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography
AT palepatrick enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography
AT aubertemmanuel enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography
AT cossusergio enantioseparationof55dibromo22dichloro3selanyl44bipyridinesonpolysaccharidebasedchiralstationaryphasesexploringchalcogenbondsinliquidphasechromatography