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Molecular recognition of pyrazine N,N′-dioxide using aryl extended calix[4]pyrroles

Calix[4]pyrrole (C4P)-based systems have been extensively explored as binding agents for anions and ion pairs. However, their capacity to act as molecular containers for neutral species remains underexplored. We report here the molecular recognition of pyrazine N,N′-dioxide (PZDO) using a series of...

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Autores principales: Guo, Chenxing, Wang, Hu, Lynch, Vincent M., Ji, Xiaofan, Page, Zachariah A., Sessler, Jonathan L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8159416/
https://www.ncbi.nlm.nih.gov/pubmed/34094078
http://dx.doi.org/10.1039/d0sc01496f
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author Guo, Chenxing
Wang, Hu
Lynch, Vincent M.
Ji, Xiaofan
Page, Zachariah A.
Sessler, Jonathan L.
author_facet Guo, Chenxing
Wang, Hu
Lynch, Vincent M.
Ji, Xiaofan
Page, Zachariah A.
Sessler, Jonathan L.
author_sort Guo, Chenxing
collection PubMed
description Calix[4]pyrrole (C4P)-based systems have been extensively explored as binding agents for anions and ion pairs. However, their capacity to act as molecular containers for neutral species remains underexplored. We report here the molecular recognition of pyrazine N,N′-dioxide (PZDO) using a series of aryl extended C4Ps including three α,α-diaryl substituted C4Ps (receptors 1–3), an α,β-diaryl substituted C4P (receptor 4) and an α,α,α,α-tetraaryl substituted C4P (receptor 5). Single crystal structural analyses of the 2 : 1 host–guest complexes between receptors 1–3 and PZDO revealed that the C4P subunits exist in an unusual partial cone conformation and that the PZDO guest is held within electron-rich cavities formed by the lower rims of the individual C4P macrocycle. In contrast, receptor 5 was seen to adopt the cone conformation in the solid state, allowing one PZDO molecule to be accommodated inside the upper-rim cavity. Evidence for guest-directed self-assembly is also seen in the solid state. Evidence for C4P–PZDO interactions in CD(3)CN/CD(3)OD solution came from (1)H NMR spectroscopic titrations. Electrostatic potential maps created by means of density functional theory calculations were constructed. Density functional theory calculations were also performed to analyse the energetics of various limiting binding modes. On the basis of these studies, it is inferred that interactions between the ‘two-wall’ C4P derivatives (i.e. receptors 1–4) and PZDO involve a complex binding mode that differs from what has been seen in previous host–guest complexes formed between C4Ps and N-oxides. The present study thus paves the way for the further design of C4P-based receptors with novel recognition features.
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spelling pubmed-81594162021-06-04 Molecular recognition of pyrazine N,N′-dioxide using aryl extended calix[4]pyrroles Guo, Chenxing Wang, Hu Lynch, Vincent M. Ji, Xiaofan Page, Zachariah A. Sessler, Jonathan L. Chem Sci Chemistry Calix[4]pyrrole (C4P)-based systems have been extensively explored as binding agents for anions and ion pairs. However, their capacity to act as molecular containers for neutral species remains underexplored. We report here the molecular recognition of pyrazine N,N′-dioxide (PZDO) using a series of aryl extended C4Ps including three α,α-diaryl substituted C4Ps (receptors 1–3), an α,β-diaryl substituted C4P (receptor 4) and an α,α,α,α-tetraaryl substituted C4P (receptor 5). Single crystal structural analyses of the 2 : 1 host–guest complexes between receptors 1–3 and PZDO revealed that the C4P subunits exist in an unusual partial cone conformation and that the PZDO guest is held within electron-rich cavities formed by the lower rims of the individual C4P macrocycle. In contrast, receptor 5 was seen to adopt the cone conformation in the solid state, allowing one PZDO molecule to be accommodated inside the upper-rim cavity. Evidence for guest-directed self-assembly is also seen in the solid state. Evidence for C4P–PZDO interactions in CD(3)CN/CD(3)OD solution came from (1)H NMR spectroscopic titrations. Electrostatic potential maps created by means of density functional theory calculations were constructed. Density functional theory calculations were also performed to analyse the energetics of various limiting binding modes. On the basis of these studies, it is inferred that interactions between the ‘two-wall’ C4P derivatives (i.e. receptors 1–4) and PZDO involve a complex binding mode that differs from what has been seen in previous host–guest complexes formed between C4Ps and N-oxides. The present study thus paves the way for the further design of C4P-based receptors with novel recognition features. The Royal Society of Chemistry 2020-04-20 /pmc/articles/PMC8159416/ /pubmed/34094078 http://dx.doi.org/10.1039/d0sc01496f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Guo, Chenxing
Wang, Hu
Lynch, Vincent M.
Ji, Xiaofan
Page, Zachariah A.
Sessler, Jonathan L.
Molecular recognition of pyrazine N,N′-dioxide using aryl extended calix[4]pyrroles
title Molecular recognition of pyrazine N,N′-dioxide using aryl extended calix[4]pyrroles
title_full Molecular recognition of pyrazine N,N′-dioxide using aryl extended calix[4]pyrroles
title_fullStr Molecular recognition of pyrazine N,N′-dioxide using aryl extended calix[4]pyrroles
title_full_unstemmed Molecular recognition of pyrazine N,N′-dioxide using aryl extended calix[4]pyrroles
title_short Molecular recognition of pyrazine N,N′-dioxide using aryl extended calix[4]pyrroles
title_sort molecular recognition of pyrazine n,n′-dioxide using aryl extended calix[4]pyrroles
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8159416/
https://www.ncbi.nlm.nih.gov/pubmed/34094078
http://dx.doi.org/10.1039/d0sc01496f
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