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Acid catalysis through N-protonation in undistorted carboxamides : improvement of amide proton sponge acylating ability. / Mikshiev, Vladimir Y.; Tolstoy, Peter M.; Tupikina, Elena Yu; Puzyk, Aleksandra M.; Vovk, Mikhail A.

In: New Journal of Chemistry, Vol. 46, 2022, p. 16471-16484.

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@article{74d6e0a1c36849e897d9d3d9a51e353e,
title = "Acid catalysis through N-protonation in undistorted carboxamides: improvement of amide proton sponge acylating ability",
abstract = "Acid catalysis of weakly distorted or undistorted carboxamides in acyl-migration reactions proceeding through N-protonation is a process with low probability, in contrast to O-protonation. This circumstance makes the experimental study of the selective N-protonation path difficult or even impossible. However, such a problem can be solved by means of N-acyl-N,N,N-threemethylnaphtalenediamine (amide proton sponge, AmPS), which was synthesized back in 1999; after protonation, the relatively mobile NH proton of the dimethylamino group and amide nitrogen are in close proximity in this compound that significantly increases the probability of the N-protonation pathway. As was already shown, the noted structural peculiarity leads to remarkably high mobility of the acyl group in AmPS, but the details of this phenomenon were not explored previously. In this regard, a contribution of the N-protonation pathway to the reactivity of AmPS is of particular interest. In this study, for the first time, by means of quantum-chemical calculations, the energetic profiles for the reaction of AmPS with charged and uncharged nucleophiles have been established. A range of the similar AmPSs has been studied and the structural motifs promoting the decay of the amide bond and decreasing the Gibbs activation energy (ΔG‡) for nucleophilic attack have been determined. The most effective ways to achieve the desired effects are the additional withdrawal of the electron density from the amide nitrogen by means of substituents with negative mesomeric effect and a decrease in the steric constraints through aromatic core modification. The strengthening of the intramolecular hydrogen bond by the use of the buttressing effect shows a lesser extent of reduction in ΔG‡. The proposed structural modification of the classic AmPS can facilitate the design of a new acylation agent for practical use.",
author = "Mikshiev, {Vladimir Y.} and Tolstoy, {Peter M.} and Tupikina, {Elena Yu} and Puzyk, {Aleksandra M.} and Vovk, {Mikhail A.}",
note = "Publisher Copyright: {\textcopyright} 2022 The Royal Society of Chemistry.",
year = "2022",
doi = "10.1039/d2nj02975h",
language = "English",
volume = "46",
pages = "16471--16484",
journal = "New Journal of Chemistry",
issn = "1144-0546",
publisher = "Royal Society of Chemistry",

}

RIS

TY - JOUR

T1 - Acid catalysis through N-protonation in undistorted carboxamides

T2 - improvement of amide proton sponge acylating ability

AU - Mikshiev, Vladimir Y.

AU - Tolstoy, Peter M.

AU - Tupikina, Elena Yu

AU - Puzyk, Aleksandra M.

AU - Vovk, Mikhail A.

N1 - Publisher Copyright: © 2022 The Royal Society of Chemistry.

PY - 2022

Y1 - 2022

N2 - Acid catalysis of weakly distorted or undistorted carboxamides in acyl-migration reactions proceeding through N-protonation is a process with low probability, in contrast to O-protonation. This circumstance makes the experimental study of the selective N-protonation path difficult or even impossible. However, such a problem can be solved by means of N-acyl-N,N,N-threemethylnaphtalenediamine (amide proton sponge, AmPS), which was synthesized back in 1999; after protonation, the relatively mobile NH proton of the dimethylamino group and amide nitrogen are in close proximity in this compound that significantly increases the probability of the N-protonation pathway. As was already shown, the noted structural peculiarity leads to remarkably high mobility of the acyl group in AmPS, but the details of this phenomenon were not explored previously. In this regard, a contribution of the N-protonation pathway to the reactivity of AmPS is of particular interest. In this study, for the first time, by means of quantum-chemical calculations, the energetic profiles for the reaction of AmPS with charged and uncharged nucleophiles have been established. A range of the similar AmPSs has been studied and the structural motifs promoting the decay of the amide bond and decreasing the Gibbs activation energy (ΔG‡) for nucleophilic attack have been determined. The most effective ways to achieve the desired effects are the additional withdrawal of the electron density from the amide nitrogen by means of substituents with negative mesomeric effect and a decrease in the steric constraints through aromatic core modification. The strengthening of the intramolecular hydrogen bond by the use of the buttressing effect shows a lesser extent of reduction in ΔG‡. The proposed structural modification of the classic AmPS can facilitate the design of a new acylation agent for practical use.

AB - Acid catalysis of weakly distorted or undistorted carboxamides in acyl-migration reactions proceeding through N-protonation is a process with low probability, in contrast to O-protonation. This circumstance makes the experimental study of the selective N-protonation path difficult or even impossible. However, such a problem can be solved by means of N-acyl-N,N,N-threemethylnaphtalenediamine (amide proton sponge, AmPS), which was synthesized back in 1999; after protonation, the relatively mobile NH proton of the dimethylamino group and amide nitrogen are in close proximity in this compound that significantly increases the probability of the N-protonation pathway. As was already shown, the noted structural peculiarity leads to remarkably high mobility of the acyl group in AmPS, but the details of this phenomenon were not explored previously. In this regard, a contribution of the N-protonation pathway to the reactivity of AmPS is of particular interest. In this study, for the first time, by means of quantum-chemical calculations, the energetic profiles for the reaction of AmPS with charged and uncharged nucleophiles have been established. A range of the similar AmPSs has been studied and the structural motifs promoting the decay of the amide bond and decreasing the Gibbs activation energy (ΔG‡) for nucleophilic attack have been determined. The most effective ways to achieve the desired effects are the additional withdrawal of the electron density from the amide nitrogen by means of substituents with negative mesomeric effect and a decrease in the steric constraints through aromatic core modification. The strengthening of the intramolecular hydrogen bond by the use of the buttressing effect shows a lesser extent of reduction in ΔG‡. The proposed structural modification of the classic AmPS can facilitate the design of a new acylation agent for practical use.

UR - http://www.scopus.com/inward/record.url?scp=85136264524&partnerID=8YFLogxK

U2 - 10.1039/d2nj02975h

DO - 10.1039/d2nj02975h

M3 - Article

AN - SCOPUS:85136264524

VL - 46

SP - 16471

EP - 16484

JO - New Journal of Chemistry

JF - New Journal of Chemistry

SN - 1144-0546

ER -

ID: 99550343