| Literature DB >> 35516360 |
Aref Mohammadi1, Mohammad Bayat1, Shima Nasri1.
Abstract
A new versatile strategy involving a sequential four-component reaction of the nitroketene dithioacetals, alkylamine/benzylamine, isatin and various enolizable active methylene structures (pyrazolone, barbituric acid, 1,3-indandione and 2-hydroxy-1,4-naphthoquinone) as precursors under mild and catalyst-free conditions results in the synthesis of new functionalized spirooxindole pyrans named spiro[indoline-3,4'-pyrano[2,3-c]pyrazol], spiro[indoline-3,5'-pyrano[2,3-d]pyrimidine], spiro[indeno[1,2-b]pyran-4,3'-indoline] and spiro[benzo[g]chromene-4,3'-indoline] in moderate to good yields. The use of various active methylene compounds affords a range of skeletally distinct spirooxindole-based heterocycles with potential biological properties. The present strategy has many advantages, such as convenient one-pot operation, simple workup procedures and straightforward isolation without using tedious purification steps such as column chromatography, progress under catalyst-free condition and high molecular diversity. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35516360 PMCID: PMC9064459 DOI: 10.1039/c9ra03214b
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Scheme 1Synthesis of spiro(indoline-3,4′-pyrano[2,3-c]pyrazol)-2-one derivatives catalyzed by indium trichloride.
Scheme 2The one-pot, multi-component synthesis of bis-spirooxindoles in PEG-400/K2CO3 at room temperature.
Scheme 3Synthetic approaches for the formation of spiro[indoline-3,4′-pyrano[2,3-c]pyrazol], spiro[indoline-3,5′-pyrano[2,3-d]pyrimidine], spiro[indeno[1,2-b]pyran-4,3′-indoline] and spiro[benzo[g]chromene-4,3′-indoline] (5a–q).
Scheme 4A plausible mechanism for the formation of 5 in catalyst-free conditions.
Substrate scope study of multicyclic spirooxindole pyran scaffolds with a series of amines, isatin derivatives, and active methylene structures
| Entry | Active methylene structures | R1 | R2 | Product | Time | Yield (%) |
|---|---|---|---|---|---|---|
| 1 |
| CH3 | H |
| 8 | 85 |
| 2 |
| CH3 | Cl |
| 8 | 80 |
| 3 |
| CH3 | Br |
| 9 | 78 |
| 4 |
| CH3 | H |
| 10 | 86 |
| 5 |
| CH3 | Br |
| 12 | 75 |
| 6 |
| CH3 | Cl |
| 10 | 80 |
| 7 |
| CH3 | Br |
| 10 | 62 |
| 8 |
| CH2Ph | Cl |
| 12 | 58 |
| 9 |
| CH3 | Cl |
| 10 | 65 |
| 10 |
| CH2CH2CH3 | Cl |
| 10 | 75 |
| 11 |
| CH(CH3)2 | Cl |
| 10 | 76 |
| 12 |
| CH2CH2CH3 | Br |
| 12 | 71 |
| 13 |
| CH(CH3)2 | Br |
| 12 | 72 |
| 14 |
| CH3 | Cl |
| 12 | 65 |
| 15 |
| CH2Ph | H |
| 12 | 65 |
| 16 |
| CH2CH2CH3 | Cl |
| 8 | 62 |
| 17 |
| CH2CH2CH3 | Br |
| 8 | 60 |
The reaction time of the second step.