| Literature DB >> 35541399 |
D L Obydennov1, L R Khammatova1, V D Steben'kov1, V Y Sosnovskikh1.
Abstract
An approach for the introduction of the tricarbonyl moiety into aromatic, heterocyclic, and aliphatic amines with the use of acylpyrones has been developed for the synthesis and the design of novel polycarbonyl Schiff base ligands, including salphen structures. This Michael addition-ring-opening reaction proceeds under mild conditions (stirring at 0-20 °C) via the attack at the C-6 position of the pyrone ring in good to high yields (up to 99%) with excellent selectivity. The products can be easily isolated by crystallization without the use of chromatography. The scope of the reaction, tautomeric equilibrium of open-chain products, and their cyclization into pyridone structures were investigated. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35541399 PMCID: PMC9076191 DOI: 10.1039/c9ra07653k
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Reactions of acylpyrones 1 with primary amines.
Scheme 1Reaction of pyrones 1 with amines.
Reaction scope study of pyrones 1 with amines 2a
| Adduct | Pyrone | Amine | R | X | Yield, % |
|
|---|---|---|---|---|---|---|
| 3a | 1a | 2a | Ph | H | 87 | 82 : 13 : 5 |
| 3b | 1b | 2a | 4-MeOC6H4 | H | 85 | 95 : 2 : 3 |
| 3c | 1a | 2b | Ph | OH | 68 | 76 : 17 : 7 |
| 3d | 1c | 2b | 4-ClC6H4 | OH | 81 | 76 : 17 : 7 |
| 3e | 1b | 2c | 4-MeOC6H4 | NH2 | 86 | 79 : 15 : 6 |
| 3f | 1c | 2c | 4-ClC6H4 | NH2 | 78 | 78 : 16 : 6 |
| 3g | 1d | 2c | 2-Naph | NH2 | 90 | 79 : 13 : 8 |
| 3h | 1e | 2c | 2-Th | NH2 | 90 | 89 : 8 : 3 |
| 3i | 1f | 2c |
| NH2 | 61 | 79 : 14 : 7 |
|
| ||||||
Pyrone 1 (1.11 mmol) and amine 2 (1.11 mmol) were stirred in EtOH (6 mL) at 0 °C for 1 h.
The reaction was performed at 20 °C for 2 h.
The reaction was performed at 20 °C for 4 days, 2.22 mmol of the amine was used.
Fig. 2Selected 13C NMR signals of E-3b.
Fig. 3Fragment of the 1H NMR spectrum of 3a in CDCl3.
Scheme 2Reactions of pyrones 1 with diamines 2.
Scope of the pyrone transformation with diamines 2a
| Bis-adduct | Ar | R | Yield from enaminone 3, % (Method A) | Yield from diamine, % (Method B) | 5 |
|---|---|---|---|---|---|
| 4a | Ph | H | 64 | 57 | 50 : 17 |
| 4b | 4-MeOC6H4 | H | 73 | 38 | 69 : 17 |
| 4c | 4-ClC6H4 | H | 65 | 75 | 39 : 26 |
| 4d | 2-Th | H | 75 | 31 | 71 : 14 |
| 4e | 2-Th | Me | 79 | 63 | 74 : 10 |
Method A: pyrone 1 (0.26 mmol) and enaminone 3 (0.26 mmol) were stirred in EtOH (2 mL) at 20 °C for 24 h. Method B: pyrone 1 (0.72 mmol) and diamine 2 (0.36 mmol) were stirred in EtOH (2 mL) at 0 °C for 1 h and then at 20 °C for 24 h.
Scheme 3Reaction of pyrone 1a with p-phenylenediamine.
Scheme 4Cyclization reactions of polycarbonyl compounds 3.
Synthesis of pyrido[1,2-a]quinoxaline-6,8-diones 7,8
| Starting enaminone | Ar | R | Product 7, 8 | Yield 7, % | Yield 8, % | 7 : 8 (in DMSO- |
|---|---|---|---|---|---|---|
| 3e | 4-MeOC6H4 | H | a | 72 | 89 | 81 : 19 |
| 3f | 4-ClC6H4 | H | b | 89 | 89 | 76 : 24 |
| 3h | 2-Th | H | c | 86 | 92 | 93 : 7 |
| 3j | 2-Th | Me | d | 85 | 80 | 97 : 3 |
Scheme 5Reaction of pyrone 1e with 2,3-diaminopyridine.