| Literature DB >> 25670972 |
Volodymyr V Tkachenko1, Elena A Muravyova2, Sergey M Desenko1, Oleg V Shishkin1, Svetlana V Shishkina2, Dmytro O Sysoiev3, Thomas J J Müller4, Valentin A Chebanov5.
Abstract
The switchable three-component reactions of 5-amino-3-methylisoxazole, salicylaldehyde and N-aryl-3-oxobutanamides under different conditions were studied and discussed. The unexpected influence of the aryl substituent in N-aryl-3-oxobutanamides on the behavior of the reaction was discovered. The key influence of ultrasonication and Lewis acid catalysts led to an established protocol to selectively obtain two or three types of heterocyclic scaffolds depending on the substituent in the N-aryl moiety.Entities:
Keywords: 5-amino-3-methylisoxazole; catalysis; chemoselectivity; heterocycle; multicomponent reaction; salicylaldehyde; ultrasonication
Year: 2014 PMID: 25670972 PMCID: PMC4311697 DOI: 10.3762/bjoc.10.320
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Some three-component reactions involving N-aryl-3-oxobutanamides.
Scheme 2Some Biginelli-type three-component condensations with salicylaldehyde.
Scheme 3Three-component heterocyclization of 5-amino-3-methylisoxazole (1), salicylaldehyde (2) and N-(2-methoxyphenyl)-3-oxobutanamide (3a).
Optimization of the reaction conditions for obtaining compound 5a.
| Catalyst | Catalyst amount (% of the stoichiometric) | Product yield (%) |
| Sc(OTf)3 | 2 | 33 |
| Sc(OTf)3 | 5 | 58 |
| Sc(OTf)3 | 10 | 54 |
| Sc(OTf)3 | 15 | 47 |
| Yb(OTf)3 | 2 | 30 |
| Yb(OTf)3 | 10 | 64 |
| Yb(OTf)3 | 15 | 52 |
| Al(O-iPr)3 | 10 | 15 |
| Al(O-iPr)3 | 20 | 18 |
| HCl | 5 | no product |
| 2 | no product | |
Optimization of the reaction conditions for heterocycle 6a synthesis.
| Catalyst | Catalyst amount (% of the stoichiometric) | Product yield (%) |
| Sc(OTf)3 | 2 | 27 |
| Sc(OTf)3 | 5 | 62 |
| Sc(OTf)3 | 10 | 58 |
| Sc(OTf)3 | 15 | 38 |
| Yb(OTf)3 | 2 | 35 |
| Yb(OTf)3 | 10 | 59 |
| Yb(OTf)3 | 15 | 42 |
| Al(O-iPr)3 | 10 | no product |
| Al(O-iPr)3 | 20 | 15 |
| HCl | 5 | no product |
| 2 | no product | |
Three-component heterocyclization of 5-amino-3-methylisoxazole (1), salicylaldehyde (2) and N-aryl-3-oxobutanamides (3a–h).
| Entry | Amide | Conditions | Product | Yield, % |
| 1 | EtOH, ))), rt, 4 h | 58 | ||
| 2 | EtOH, Yb(OTf)3 (5 mol %), rt, 48 h | 69 | ||
| 3 | EtOH, Yb(OTf)3 (5 mol %), ))), rt, 4 h | 66 | ||
| 4 | EtOH, ))), rt, 4 h | 54 | ||
| 5 | EtOH, Yb(OTf)3 (5 mol %), rt, 48 h | 70 | ||
| 6 | EtOH, Yb(OTf)3 (5 mol %), ))), rt, 4 h | 69 | ||
| 7 | EtOH, ))), rt, 4 h | 51 | ||
| 8 | EtOH, Yb(OTf)3 (5 mol %), rt, 48 h | 68 | ||
| 9 | EtOH, Yb(OTf)3 (5 mol %), ))), rt, 4 h | 64 | ||
| 10 | EtOH, ))), rt, 4 h | 58 | ||
| 11 | EtOH, Yb(OTf)3 (5 mol %), rt, 48 h | 61 | ||
| 12 | EtOH, Yb(OTf)3 (5 mol %), ))), rt, 4 h | 65 | ||
| 13 | EtOH, ))), rt, 4 h | 57 | ||
| 14 | EtOH, Yb(OTf)3 (5 mol %), rt, 48 h | 72 | ||
| 15 | EtOH, Yb(OTf)3 (5 mol %), ))), rt, 4 h | 81 | ||
| 16 | EtOH, ))), rt, 4 h | 59 | ||
| 17 | EtOH, Yb(OTf)3 (5 mol %), rt, 48 h | 77 | ||
| 18 | EtOH, Yb(OTf)3 (5 mol %), ))), rt, 4 h | 75 | ||
| 19 | EtOH, ))), rt, 4 h | 63 | ||
| 20 | EtOH, Yb(OTf)3 (5 mol %), rt, 48 h | 76 | ||
| 21 | EtOH, Yb(OTf)3 (5 mol %), ))), rt, 4 h | 82 | ||
| 22 | EtOH, ))), rt, 4 h | 55 | ||
| 23 | EtOH, Yb(OTf)3 (5 mol %), rt, 48 h | 61 | ||
| 24 | EtOH, Yb(OTf)3 (5 mol %), ))), rt, 4 h | 63 | ||
Figure 1The possible structure of an intermediate complex in reactions forming the heterocycles 6.
Scheme 4Possible pathways for the three-component reaction of 5-amino-3-methylisoxazole (1), salicylaldehyde (2) and N-(2-methoxyphenyl)-3-oxobutanamide (3a).
Figure 2Alternative structures 5a and 5'a for dihydroisoxazolopyridine 5a and selected NOESY correlations.
Figure 3Alternative structures 6a, 6'a and 6''a for compound 6a.
Figure 4Selected data from NOESY experiments and relative stereochemistry of stereogenic centers at positions 4 and 12.
Figure 5Molecular structure of compound 6a according to X-ray diffraction data.