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Lewis acid mediated, mild C–H aminoalkylation of azoles via three component coupling

This manuscript reports the development of a mild, highly functional group tolerant and metal-free C–H aminoalkylation of azoles via a three-component coupling approach. This method enables the C–H functionalization of diverse azole substrates, such as oxazoles, benzoxazoles, thiazoles, benzothiazol...

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Autores principales: Emmert, Marion H., He, Cyndi Qixin, Shah, Akshay A., Felten, Stephanie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179430/
https://www.ncbi.nlm.nih.gov/pubmed/34163658
http://dx.doi.org/10.1039/d0sc06868c
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author Emmert, Marion H.
He, Cyndi Qixin
Shah, Akshay A.
Felten, Stephanie
author_facet Emmert, Marion H.
He, Cyndi Qixin
Shah, Akshay A.
Felten, Stephanie
author_sort Emmert, Marion H.
collection PubMed
description This manuscript reports the development of a mild, highly functional group tolerant and metal-free C–H aminoalkylation of azoles via a three-component coupling approach. This method enables the C–H functionalization of diverse azole substrates, such as oxazoles, benzoxazoles, thiazoles, benzothiazoles, imidazoles, and benzimidazoles. DFT calculations identify a key deprotonation equilibrium in the mechanism of the reaction. Using DFT as a predictive tool, the C–H aminoalkylation of initially unreactive substrates (imidazoles/benzimidazoles) can be enabled through an in situ protecting/activating group strategy. The DFT-supported mechanistic pathway proposes key interactions between the azole substrate and the Lewis acid/base pair TBSOTf/EtN(i)Pr(2) that lead to azole activation by deprotonation, followed by C–C bond formation between a carbene intermediate and an iminium electrophile. Two diverse approaches are demonstrated to explore the amine substrate scope: (i) a DFT-guided predictive analysis of amine components that relates reactivity to distortion of the iminium intermediates in the computed transition state structures; and (ii) a parallel medicinal chemistry workflow enabling synthesis and isolation of several diversified products at the same time. Overall, the presented work enables a metal-free approach to azole C–H functionalization via Lewis acid mediated azole C–H deprotonation, demonstrating the potential of a readily available, Si-based Lewis acid to mediate new C–C bond formations.
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spelling pubmed-81794302021-06-22 Lewis acid mediated, mild C–H aminoalkylation of azoles via three component coupling Emmert, Marion H. He, Cyndi Qixin Shah, Akshay A. Felten, Stephanie Chem Sci Chemistry This manuscript reports the development of a mild, highly functional group tolerant and metal-free C–H aminoalkylation of azoles via a three-component coupling approach. This method enables the C–H functionalization of diverse azole substrates, such as oxazoles, benzoxazoles, thiazoles, benzothiazoles, imidazoles, and benzimidazoles. DFT calculations identify a key deprotonation equilibrium in the mechanism of the reaction. Using DFT as a predictive tool, the C–H aminoalkylation of initially unreactive substrates (imidazoles/benzimidazoles) can be enabled through an in situ protecting/activating group strategy. The DFT-supported mechanistic pathway proposes key interactions between the azole substrate and the Lewis acid/base pair TBSOTf/EtN(i)Pr(2) that lead to azole activation by deprotonation, followed by C–C bond formation between a carbene intermediate and an iminium electrophile. Two diverse approaches are demonstrated to explore the amine substrate scope: (i) a DFT-guided predictive analysis of amine components that relates reactivity to distortion of the iminium intermediates in the computed transition state structures; and (ii) a parallel medicinal chemistry workflow enabling synthesis and isolation of several diversified products at the same time. Overall, the presented work enables a metal-free approach to azole C–H functionalization via Lewis acid mediated azole C–H deprotonation, demonstrating the potential of a readily available, Si-based Lewis acid to mediate new C–C bond formations. The Royal Society of Chemistry 2021-02-05 /pmc/articles/PMC8179430/ /pubmed/34163658 http://dx.doi.org/10.1039/d0sc06868c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Emmert, Marion H.
He, Cyndi Qixin
Shah, Akshay A.
Felten, Stephanie
Lewis acid mediated, mild C–H aminoalkylation of azoles via three component coupling
title Lewis acid mediated, mild C–H aminoalkylation of azoles via three component coupling
title_full Lewis acid mediated, mild C–H aminoalkylation of azoles via three component coupling
title_fullStr Lewis acid mediated, mild C–H aminoalkylation of azoles via three component coupling
title_full_unstemmed Lewis acid mediated, mild C–H aminoalkylation of azoles via three component coupling
title_short Lewis acid mediated, mild C–H aminoalkylation of azoles via three component coupling
title_sort lewis acid mediated, mild c–h aminoalkylation of azoles via three component coupling
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179430/
https://www.ncbi.nlm.nih.gov/pubmed/34163658
http://dx.doi.org/10.1039/d0sc06868c
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