| Literature DB >> 23616814 |
Murugan Sathishkumar1, Sangaraiah Nagarajan, Poovan Shanmugavelan, Murugan Dinesh, Alagusundaram Ponnuswamy.
Abstract
A rapid and efficient one pot solvent/scavenger-free protocol for the synthesis of 2-iminothiazolidin-4-ones has been developed. Interestingly, the regio/stereoselective synthesis affords the regioisomeric (Z)-3-alkyl/aryl-2-(2-phenylcyclohex-2-enylimino)thiazolidin-4-one as the sole product in good yield. The selectivities observed have been rationalized based on the relative magnitude of the allylic strains developed during the course of the reaction. This is the first report wherein the impact of allylic strains in directing the regiocyclization has been noted.Entities:
Keywords: 2-iminothiazolidin-4-ones; regioselective; scavenger-free; solvent-free; stereoselective
Year: 2013 PMID: 23616814 PMCID: PMC3628849 DOI: 10.3762/bjoc.9.78
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Figure 1Medicinally relevant 2-iminothiazolidin-4-ones.
Optimization of solution-phase and solvent-free synthesis of 2-iminothiazolidin-4-one 4f.
| Entry | Solvent | Temperature | Time | Yield (%)a |
| 1 | ethanol | reflux | 4 h | 52 |
| 2 | acetonitrile | reflux | 2 h | 66 |
| 3 | dioxane | reflux | 4 h | 46 |
| 4 | THF | reflux | 3 h | 51 |
| 5 | acetonitrile/ethanol (1:1) | reflux | 3 h | 49 |
| 6 | DCM | reflux | 6 h | 41 |
| 7 | solvent-free | 80 °C | 20 min | 41 |
| 8 | solvent-free | 100 °C | 15 min | 54 |
aYield of isolated product.
Screening of base and equivalents of chloroacetic acid in the solvent-free synthesis of 2-iminothiazolidin-4-one 4f.
| Entry | Base | Base (equiv) | Chloroacetic acid (equiv) | Yield (%)a |
| 1 | Et3N | 1 | 1 | 41 |
| 2 | K2CO3 | 1 | 1 | 25 |
| 3 | K2CO3 | 1 | 2 | 35 |
| 4 | NaOH | 1 | 2 | 24 |
| 5 | pyridine | 1 | 2 | 57 |
| 6 | — | — | 3 | 82 |
aYield of the isolated product.
Scheme 1Plausible mechanism.
Solvent/scavenger-free synthesis of 2-iminothiazolidin-4-ones 4a–n.
| Entry | Amine | Product | Yield (%)a |
| 1 | 79 | ||
| 2 | 84 | ||
| 3 | 87 | ||
| 4 | 84 | ||
| 5 | 80 | ||
| 6 | 82 | ||
| 7 | 80 | ||
| 8 | 83 | ||
| 9 | 85 | ||
| 10 | 81 | ||
| 11 | — | ||
| 12 | — | ||
| 13 | trace | ||
| 14 | — | ||
aYield of isolated product.
Figure 2Retardation of the nucleophilic attack of amines on the isothiocyanate due to the steric effect.
Solvent/scavenger-free synthesis of thiazolidinone derivatives.
| Entry | Thiourea | Thiazolidinone | Time (min) | Yield (%)a/Ref |
| 1 | 20 | 78/[ | ||
| 2b | 20 | 81/[ | ||
| 3b | 20 | 80/[ | ||
| 4b | 30 | 75/[ | ||
| 5b | 30 | 72/[ | ||
| 6 | 15 | 84/[ | ||
| 7 | 15 | 80/[ | ||
| 8 | 15 | 79/[ | ||
| 9 | 15 | 77/[ | ||
| 10 | 20 | 80/[ | ||
| 11 | 20 | 82/[ | ||
| 12 | 20 | 81/[ | ||
aYield of isolated product, bregioisomeric mixtures obtained.
Figure 3Possible regio/stereoisomeric products.
Scheme 2Regioselective cyclization in 2-iminothiazolidin-4-one synthesis directed by allylic strains.
Figure 4Stereoselectivity of the reaction directed by A1,3 strain.