| Literature DB >> 18007376 |
Zeinul-Gabiden M Kazhkenov1, Alexander A Bush, Eugene V Babaev.
Abstract
A series of previously unavailable derivatives of 2-alkyl- and 2-benzylderivatives of oxazolo[3,2-a]pyridines III were obtained via tandem ring opening and ring closure from stable mesoionic 3-acyloxazolo[3,2-a]pyridinium-2-olates I. The key intermediates of this tandem transformation are N-(b-oxoethyl)pyridones-2 II obtained by Dakin-West acylation of (pyridone-2-yl-1)acetic acid. An example of further utilization of this strategy is illustrated by preparation of unknown 2-benzylimidazo[1,2-a]pyridine from the salt I and ammonia.Entities:
Mesh:
Substances:
Year: 2005 PMID: 18007376 PMCID: PMC6147565 DOI: 10.3390/10091109
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1
Scheme 3
Scheme 4Characteristics of mesoionic compounds I
| № | R | Yield, % | Mp, °C | Chemical shift, p.p.m.; J, Hz | ||||
|---|---|---|---|---|---|---|---|---|
| H5 | H6 | H7 | H8 | RCO | ||||
| 4-MeOPhCH2 | 64 | 171-173 | d; 9.86; J56=6.4 | m; 7.51 | m; 7.96 | d; 7.61; J78=8.6 | m; 7.24 (2H); | |
| 4-ClPhCH2 | 60 | 194-196 | d; 9.83; J56=6.3 | m; 7.52 | m; 7.99 | d; 7.64; J78=8.4 | m; 7.34 (2H); | |
| 4-NO2PhCH2 | 82 | 225-227 | m; 9.81 | m; 7.55 | m; 8.01 | m; 7.65 | m; 8.12 (2H); | |
| Me | 78 | 170-172* | d; 9.78; J56=6.5 | m; 7.55 | m; 8.01 | d; 7.68; J78=8.5 | s; 2.36 (2H) | |
| Et | 48 | 153-155** | d; 9.90 J56=6.4 | m; 7.52 | m; 7.96 | d; 7.60; J78=8.7 | q; 2.75 (2H); J=8.0; | |
| Pr | 62 | 136-137 | d; 9.83; J56=6.2 | m; 7.55 | m; 8.00 | d; 7.68; J78=9.0 | t; 2.74 (2H); J=7.7; | |
| Bu | 86 | 140-142 | d; 9.84; J56=6.2 | m; 7.55 | m; 8.00 | d; 7.67; J78=8.0 | t; 2.74 (2H); J=7.3; | |
*Lit. Mp 170-171 [8]; **lit. Mp 146-147.5 [8].
Characteristics of pyridones II
| № | R | Yield, % | Mp, °C | Chemical shift, p.p.m.; J, Hz | ||||
|---|---|---|---|---|---|---|---|---|
| H3 | H4 | H5 | H6 | RCOCH2 | ||||
| 4-MeOPhCH2 | 86 | 84-85 | d; 7.42; J34=7.0 | m; 7.35 | m; 6.13 | d; 6.35; J56=8.6 | m; 7.14 (2H) | |
| 4-ClPhCH2 | 90 | 133-135 | d; 7.45; J34=7.2 | m; 7.37 | m; 6.15 | d; 6.36; J56=9.5 | m; 7.30 (2H); | |
| 4-NO2PhCH2 | 91 | 170-172 | m; 7.50 | m; 7.37 | m; 6.16 | d; 6.36; J56=9.0 | m; 8.16 (2H); | |
| Me | 67 | - | d; 7.44; J34=6.9 | m; 7.36 | m; 6.14 | d; 6.36; J56=9.2 | s; 4.72 (2H); | |
| Et | 52 | - | d; 7.46; J34=7.0 | m; 7.36 | m; 6.15 | d; 6.35; J56=8.7 | s; 4.71 (2H); | |
| Pr | 59 | - | d; 7.45; J34=7.1 | m; 7.36 | m; 6.14 | d; 6.34; J56=9.2 | s; 4.70 (2H); | |
| Bu | 76 | - | d; 7.44; J34=6.6 | m; 7.36 | m; 6.14 | d; 6.35; J56=8.6 | s; 4.70 (2H); | |
Scheme 7Characteristics of the salts III and imidazopyridine IV
| № | R | Yield, % | Mp, °C | Chemical shift, p.p.m.; J, Hz | |||||
|---|---|---|---|---|---|---|---|---|---|
| H3 | H5 | H6 | H7 | H8 | R | ||||
| 4-ClPhCH2 | 87 | 162-164 | s; 8.64 | d; 9.15; J56=6.1 | m; 8.45 | m; 7.90 | d; 8.27; J78=9.0 | m; 7.44 (2H); | |
| 4-NO2PhCH2 | 84 | 132-134 | s; 8.71 | d; 9.18; J56=6.7 | m; 8.46 | m; 7.91 | d; 8.30; J78=9.0 | m; 8.21 (2H); | |
| Me | 42 | 127-128* | s; 8.56 | d; 9.13; J56=6.3 | m; 8.44 | m; 7.90 | d; 8.29; J78=8.9 | s; 2.68 (3H) | |
| Et | 67 | 118-120 | s; 8.61 | d; 9.13; J56=6.1 | m; 8.45 | m; 7.91 | d; 8.29; J78=8.9 | q; 3.03 (2H); J=7.8; | |
| Pr | 74 | 98-100 | s; 8.65 | d; 9.16; J56=5.9 | m; 8.46 | m; 7.91 | d; 8.30; J78=8.9 | t; 2.98 (2H); J=7.1;m; 1.85; (2H); | |
| Bu | 48 | - | s; 8.68 | d; 9.19; J56=6.3 | m; 8.46 | m; 7.92 | d; 8.28; J78=8.9 | t; 2.99 (2H); J=7.3; | |
| 4-ClPhCH2 | 40 | 162-164 | s; 7.49 | d, 8.32, J56=7.1 | m, 7.11 | m, 6.73 | d, 7.38, J78=9.3 | m, 7.30 (2H); | |
*Lit. Mp 128 [6]