| Literature DB >> 32916997 |
Cecilia Ciccolini1, Lucia De Crescentini1, Fabio Mantellini1, Giacomo Mari1, Stefania Santeusanio1, Gianfranco Favi1.
Abstract
Herein, we report the successful syntheses of scarcely represented indole-based heterocycles which have a structural connection with biologically active natural-like molecules. The selective oxidation of indoline nucleus to indole, hydrolysis of ester and carbamoyl residues followed by decarboxylation with concomitant aromatization of the pyridazine ring starting from tetrahydro-1H-pyridazino[3,4-b]indole derivatives lead to fused indole-pyridazine compounds. On the other hand, non-fused indole-pyrazol-5-one scaffolds are easily prepared by subjecting the same C2,C3-fused indoline tetrahydropyridazines to treatment with trifluoroacetic acid (TFA). These methods feature mild conditions, easy operation, high yields in most cases avoiding the chromatographic purification, and broad substrate scope. Interestingly, the formation of indole linked pyrazol-5-one system serves as a good example of the application of the umpolung strategy in the synthesis of C3-alkylated indoles.Entities:
Keywords: C2-C3 indole oxidation; aromatization; indole-based heterocycles; ring-opening/ring-closing; umpolung
Mesh:
Substances:
Year: 2020 PMID: 32916997 PMCID: PMC7571100 DOI: 10.3390/molecules25184124
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Different isomeric fused indole-pyridazine systems.
Optimization conditions.
| Entry | Oxidant | Solvent | Temp. | Time | 2b(2b’)/4c | Yield |
|---|---|---|---|---|---|---|
| 1 | DDQ (1 equiv) | dioxane | rt | 2 |
| trace |
| 2 | DDQ (1 equiv) | toluene | reflux | 24 |
| 21 |
| 3 | DDQ (1.5 equiv) | CH2Cl2 | rt | 15 |
| 27 |
| 4 | BQ (4 equiv) | toluene | reflux | 12 | – | – |
| 5 | NBS/TBPB (0.4 equiv) | CCl4 | reflux | 5 | – | – a |
| 6 | MnO2 (10 equiv) | benzene | 70 | 48 |
| 40 |
| 7 | MnO2 (25 equiv) | benzene | 70 | 24 |
| 55 |
| 8 | Na2Cr2O7 (1 equiv) | CHCl3 | reflux | 12 | – | – a |
| 9 | I2 (2 equiv) | CH3OH | reflux | 24 | – | – a |
| 10 | PCC (3.3 equiv) | CH2Cl2 | reflux | 2 | – | – |
| 11 | Pd/C (1 equiv) | AcOEt | reflux | 24 | – | – a |
| 12 | CAN (1 equiv) | CH2Cl2 | rt | 24 |
| 38 |
| 13 | CuCl2∙2H2O (0.1 equiv) | DMSO | 100 | 8 |
| 80 |
a Starting 1b was recovered.
Scheme 1Two-step synthesis of cyclo-fused pyridazino[3,4-b]indoles 3a, 3b’, 3c’.
Scheme 2Substrate scope for the synthesis of indole linked pyrazol-5-ones 4.
Scheme 3One-pot synthesis of 4c from N-methyl indole A1 and cyclic azoalkene B1.
Scheme 4Different synthetic approaches to indole linked pyrazol-5-one derivatives 4.