Solvent- and functional-group-assisted tautomerism of 3-alkyl substituted 5-(2-pyridyl)-1,2,4-triazoles in DMSO–water

Literature Information

Publication Date 2023-11-13
DOI 10.1039/D3OB01651J
Impact Factor 3.876
Authors

Jesús García-López, Dmytro M. Khomenko, Borys V. Zakharchenko, Roman O. Doroshchuk, Viktoriia S. Starova, María José Iglesias, Rostyslav D. Lampeka, Fernando López-Ortiz


View Original

Abstract

The tautomerism of a series of 5-alkyl substituted 3-(2-pyridyl)-1,2,4-triazoles in DMSO-d6-containing water has been investigated by 1H, 13C and 15N NMR spectroscopy. The populations of the three possible regioisomers in the tautomeric equilibrium (A [3-alkyl-5-(2-pyridyl)-1H], B [5-alkyl-3-(2-pyridyl)-1H] and C [5-alkyl-3-(2-pyridyl)-4H]) were determined. Isomers A (17–40%) and B (54–79%) are the major components and their ratio is insensitive to the substitution pattern, except for the unsubstituted and the methoxymethyl substituted derivatives. The isomer C (3–5%) has been fully characterised for the first time by NMR spectroscopy. Activation energies of tautomerisation (14.74–16.78 kcal mol−1) were determined by EXSY experiments, which also supported the involvement of water in the tautomerisation. Substituent effects on the 15N chemical shifts are relatively small. The DFT study of the tautomerism in DMSO–water showed that both A/B and B/C interconversions are assisted by the pyridine substituent and catalysed by solvent molecules. The NH-A/NH-B tautomerisation takes place via a relayed quadruple proton transfer mediated by three water molecules in the hydrogen-bonded cyclic substructure of a triazole·4H2O complex. The equilibrium B ⇄ C involves three steps: NH-B transfer to the pyridyl nitrogen mediated by a water molecule in a 1 : 1 cyclic complex, rotamerisation to bring the pyridinium NH close to N4 of the triazole catalysed by complexation to a DMSO molecule and transfer of the NH from the pyridinium donor to the N4 acceptor via a 1 : 1 complex with a bridging water molecule. This mechanism of 1,3-prototropic shift in triazoles is unprecedented in the literature.

Related Literature

Development of β-keto 1,3-dithianes as versatile intermediates for organic synthesis

Matthew J. Gaunt, Helen F. Sneddon, Peter R. Hewitt, Paolo Orsini, David F. Hook, Steven V. Ley.

2002-12-03 Communication

DOI: 10.1039/B208982C

QM/MM calculations of kinetic isotope effects in the chorismate mutase active site

Sergio Martí, Vicent Moliner, Iñaki Tuñón, Ian H. Williams

2003-01-17 Paper

DOI: 10.1039/B210508J

Bioactive polycyclic polyprenylated acylphloroglucinols from Hypericum perforatum

Yi Guo, Na Zhang, Weiguang Sun, Xueyan Duan, Qing Zhang, Qun Zhou, Chunmei Chen, Hucheng Zhu, Zengwei Luo, Junjun Liu, Xiao-Nian Li, Yongbo Xue, Yonghui Zhang

2018-10-08 Paper

DOI: 10.1039/C8OB02067A

A facile tandem decyanation/cyanation reaction of α-iminonitriles toward cyano-substituted amides

Pei Liang, Botao Liu, Haiqing Luo, Jing Zheng, Xiaowei Wen, Tanggao Liu, Min Ye

2018-10-25 Communication

DOI: 10.1039/C8OB02186D

Synthesis of poly(ethylene glycol)-supported manganese porphyrins: efficient, recoverable and recyclable catalysts for epoxidation of alkenes

Maurizio Benaglia, Tamara Danelli, Gianluca Pozzi

2003-01-02 Communication

DOI: 10.1039/B210985A

Dirhodium(ii)-catalyzed ortho C–H amination of sterically congested N,N-dialkylanilines

Motoki Ito, Tomoya Nakagawa, Kazuhiro Higuchi, Shigeo Sugiyama

2018-09-12 Communication

DOI: 10.1039/C8OB01974F

Transition metal free decarboxylative fluoroalkylation of N-acrylamides with 3,3,3-trifluoro-2,2-dimethylpropanoic acid (TFDMPA)

Yingkun Shi, Hongqing Xiao, Xiu-Hua Xu, Yangen Huang

2018-10-22 Communication

DOI: 10.1039/C8OB02457J

On the impossibility of determination of stepwise binding constants for the 1 ∶ 2 complex of (+)-camphor with α-cyclodextrin

Helena Dodziuk, Krzysztof S. Nowinski, Wiktor Kozminski, Grigory Dolgonos

2003-01-13 Paper

DOI: 10.1039/B209272G

You might also like

Compound Q&A

How should 2-Methylbenzene-1,4-diamine dihydrochloride (CAS: 615-45-2) be stored?

2-Methylbenzene-1,4-diamine dihydrochloride (CAS: 615-45-2) should be stored in ...

615-45-22-Methylbenzene-1,4-...
Compound Q&A

Is (1S,4S)-2,5-Diazabicyclo[2.2.1]heptane dihydrobromide (CAS: 132747-20-7) safe?

(1S,4S)-2,5-Diazabicyclo[2.2.1]heptane dihydrobromide is generally considered sa...

132747-20-7(1S,4S)-2,5-Diazabic...
Compound Q&A

What industries use (6-Chloropyridazin-3-YL)methanamine (CAS: 871826-15-2)?

(6-Chloropyridazin-3-YL)methanamine finds applications in the pharmaceutical ind...

871826-15-2(6-Chloropyridazin-3...
Compound Q&A

What are the main uses of 2-Fluoro-3-methylphenol (CAS: 77772-72-6)?

2-Fluoro-3-methylphenol is primarily used in the synthesis of pharmaceuticals, p...

77772-72-62-Fluoro-3-methylphe...
Compound Q&A

What precautions should be taken when handling 3-Methoxy-4-nitrobenzonitrile (CAS: 177476-75-4)?

When handling 3-Methoxy-4-nitrobenzonitrile, it is important to wear appropriate...

177476-75-43-Methoxy-4-nitroben...
Compound Q&A

What precautions should be taken when handling 1,3-Oxazolo[4,5-b]pyridine-2(3H)-thione (CAS: 211949-57-4)?

When handling 1,3-Oxazolo[4,5-b]pyridine-2(3H)-thione (CAS: 211949-57-4), it is ...

211949-57-4[1,3]Oxazolo[4,5-b]p...
Compound Q&A

What regulatory guidelines apply to 4-Ethynylbenzamide (CAS: 90347-86-7)?

4-Ethynylbenzamide (CAS: 90347-86-7) falls under various regulatory guidelines i...

90347-86-74-Ethynylbenzamide
Compound Q&A

What are the main uses of 3-(2-Ethylphenyl)-2-thioxo-4-imidazolidinone (CAS: 186822-57-1)?

3-(2-Ethylphenyl)-2-thioxo-4-imidazolidinone is primarily used as an intermediat...

186822-57-13-(2-Ethylphenyl)-2-...
Compound Q&A

What is (2-Fluoro-6-methoxyphenyl)acetic acid (CAS: 500912-19-6)?

(2-Fluoro-6-methoxyphenyl)acetic acid, also known as 4-fluoro-3-methoxybenzoic a...

500912-19-6(2-Fluoro-6-methoxyp...
Compound Q&A

What is the market or research trend for 2-[4-(Hydroxymethyl)phenoxy]ethanol (CAS: 102196-18-9)?

Market trends for 2-[4-(Hydroxymethyl)phenoxy]ethanol (CAS: 102196-18-9) indicat...

102196-18-92-[4-(Hydroxymethyl)...

Source Journal

Organic & Biomolecular Chemistry

Organic & Biomolecular Chemistry
CiteScore: 3.4
Self-citation Rate: 10.3%
Articles per Year: 1041

Organic & Biomolecular Chemistry (OBC) publishes original and high impact research and reviews in organic chemistry. We welcome research that shows new or significantly improved protocols or methodologies in total synthesis, synthetic methodology or physical and theoretical organic chemistry as well as research that shows a significant advance in the organic chemistry or molecular design aspects of chemical biology, catalysis, supramolecular and macromolecular chemistry, theoretical chemistry, mechanism-oriented physical organic chemistry, medicinal chemistry or natural products. Articles published in the journal should report new work which makes a highly-significant impact in the field. Routine and incremental work is generally not suitable for publication in the journal. More details about key areas of our scope are below. In all cases authors should include in their article clear rationale for why their research has been carried out.

Recommended Suppliers

Disclaimer
This page provides academic journal information for reference and research purposes only. We are not affiliated with any journal publishers and do not handle publication submissions. For publication-related inquiries, please contact the respective journal publishers directly.
If you notice any inaccuracies in the information displayed, please contact us at support@chemtradehub.com. We will promptly review and address your concerns.