| Literature DB >> 23766807 |
Abstract
A series of functionalized spiro[indoline-3,2'-oxiran]-2-ones was efficiently synthesized by Darzens reaction of phenacyl bromides with isatins both with N-alkyl groups and without N-substituent in the presence of potassium carbonate as a base catalyst. When two equivalents phenacyl bromides were used in the reaction, the N-substitution reaction of isatin also finished with the formation of spiro-oxirane-oxindoles.Entities:
Keywords: Darzens reaction; isatin; oxindole; oxirane; spiro-epoxyoxindole; spirooxindole
Year: 2013 PMID: 23766807 PMCID: PMC3678858 DOI: 10.3762/bjoc.9.105
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Synthesis of spiro-epoxyoxindole with pyridinium ylide.
Reaction of 5-methylisatin (1) with phenacyl bromide (2).
| Entry | Base | Ratios of | Solvent | Temp. (°C) | Time (h) | Yield (%) | |
| 3 | 4 | ||||||
| 1 | NEt3 | 1:1 | EtOH | 10–15 | 24 | — | — |
| 2 | DABCO | 1:1 | EtOH | 10–15 | 18 | 40 | — |
| 3 | DBU | 1:1 | EtOH | 10–15 | 18 | 62 | — |
| 4 | K2CO3 | 1:1 | EtOH | 10–15 | 18 | 70 | — |
| 5 | K2CO3 | 1:1 | CHCl3 | 10–15 | 18 | 78 | — |
| 6 | K2CO3 | 1:1 | CHCl3 | 50 | 10 | 85 | — |
| 7 | K2CO3 | 1:1 | MeCN | 50 | 10 | 60 | — |
| 8 | K2CO3 | 1:1 | EtOH | 50 | 10 | 56 | 18 |
| 9 | K2CO3 | 1:1 | toluene | 50 | 10 | 87 | — |
| 10 | K2CO3 | 1:1 | DMF | 50 | 10 | 28 | 46 |
| 11 | K2CO3 | 1:1.2 | CHCl3 | 50 | 10 | 66 | 15 |
| 12 | K2CO3 | 1:2 | CHCl3 | 50 | 10 | 10 | 77 |
| 13 | K2CO3 | 1:2.2 | CHCl3 | 50 | 10 | — | 90 |
| 14 | K2CO3 | 1:2.2 | DMF | 50 | 10 | — | 89 |
Synthesis of spiro[indoline-3,2'-oxiran]-2-ones 3a–h.
| Entry | Compound | R | R’ | Yield (%, | Ref. |
| 1 | H | H | 83 (14:1) | [ | |
| 2 | H | Cl | 72 | [ | |
| 3 | CH3 | H | 85 | [ | |
| 4 | CH3 | Cl | 80 | — | |
| 5 | F | H | 78 | [ | |
| 6 | F | Cl | 77 (8:1) | [ | |
| 7 | Cl | H | 86 | [ | |
| 8 | Cl | Cl | 82 | — | |
Synthesis of spiro[indoline-3,2'-oxiran]-2-ones 4a–e.
| Entry | Compound | R | R’ | Yield (%) |
| 1 | H | H | 93 | |
| 2 | H | Cl | 89 | |
| 3 | CH3 | H | 90 | |
| 4 | CH3 | Cl | 85 | |
| 5 | Cl | Cl | 88 | |
Figure 1Molecular structure of spiro compound 3c.
Figure 2Molecular structure of spiro compound 4a.
Synthesis of spiro[indoline-3,2'-oxiran]-2-ones 5a–p.
| Entry | Compound | R | R’ | R” | Yield (%, |
| 1 | H | CH2Ph | H | 92 [ | |
| 2 | H | CH2Ph | Cl | 80 (12:1) | |
| 3 | H | H | 88 | ||
| 4 | H | Cl | 76 (1:1) | ||
| 5 | CH3 | CH2Ph | H | 90 (2:1) | |
| 6 | CH3 | CH2Ph | Cl | 86 (3:1) | |
| 7 | CH3 | H | 82 (4:1) | ||
| 8 | CH3 | Cl | 86 (4:1) | ||
| 9 | F | CH2Ph | H | 80 (5:4) | |
| 10 | F | CH2Ph | Cl | 89 (5:2) | |
| 11 | F | H | 83 (11:1) | ||
| 12 | F | Cl | 92 (3:1) | ||
| 13 | Cl | CH2Ph | H | 84 (5:1) | |
| 14 | Cl | CH2Ph | Cl | 91 | |
| 15 | Cl | H | 81 | ||
| 16 | Cl | Cl | 88 (10:1) | ||
Figure 3Molecular structure of spiro compound 5o.