| Literature DB >> 35541389 |
Yi Le1,2,3, Zhisong Yang2, Yumei Chen2, Dongmei Chen2, Longjia Yan2,3, Zhenchao Wang2,3, Guiping Ouyang1,2,3.
Abstract
An efficient and practical procedure was developed to prepare 7-azaindole, starting from an o-haloaromatic amine and corresponding terminal alkynes under microwave irradiation and the scope was demonstrated with a number of examples. The valuable features of this procedure included the iron-catalyzed cyclization, short reaction times and convenient operation. Furthermore, iron catalysis is an interesting alternative to homogeneous catalysis for the synthesis of heterocycles. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35541389 PMCID: PMC9076099 DOI: 10.1039/c9ra08742g
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Fig. 1Bioactive skeletons containing 7-azaindole framework.
Fig. 2Different strategies for synthesis of 7-azaindoles.
Optimization of the metal-catalyzed cyclization 3aa
|
| ||||||
|---|---|---|---|---|---|---|
| Entry | Catalyst | CuI (%) | Base | Solvent |
| Yield |
| 1 | Pd(PPh3)2Cl2 | 10 | K3PO4 | DMF | 100 | 12 |
| 2 | Pd(dppf)Cl2 | 10 | K3PO4 | DMF | 100 | 21 |
| 3 | AgNO3 | 10 | K3PO4 | DMF | 100 | Trace |
| 4 | AgOAc | 10 | K3PO4 | DMF | 100 | Trace |
| 5 | FeCl3 | 10 | K3PO4 | DMF | 100 | 11 |
| 6 | Fe(acac)3 | 10 | K3PO4 | DMF | 100 | 32 |
| 7 | Fe(acac)3 | — | K3PO4 | DMF | 100 | 0 |
| 8 | Fe(acac)3 | 20 | K3PO4 | DMF | 100 | 31 |
| 9 | — | 10 | K3PO4 | DMF | 100 | — |
| 10 | — | — | K3PO4 | DMF | 100 | 0 |
| 11 | Fe(acac)3 | 10 | KOAc | DMF | 100 | 28 |
| 12 | Fe(acac)3 | 10 | K2CO3 | DMF | 100 | 25 |
| 13 | Fe(acac)3 | 10 | KO | DMF | 100 | 38 |
| 14 | Fe(acac)3 | 10 | KO | DMSO | 100 | 36 |
| 15 | Fe(acac)3 | 10 | KO | NMP | 100 | 42 |
| 16 | Fe(acac)3 | 10 | KO | Dioxane | 100 | 22 |
| 17 | Fe(acac)3 | 10 | KO | NMP | 110 | 58 |
| 18 | Fe(acac)3 | 10 | KO | NMP | 120 | 61 |
| 19 | Fe(acac)3 | 10 | KO | NMP | 130 | 62 |
| 20 | Fe(acac)3 | 10 | KO | NMP | 140 | 58 |
| 21 | Pd(PPh3)2Cl2 | 10 | KO | NMP | 130 | 44 |
| 22 | Pd(dppf)Cl2 | 10 | KO | NMP | 130 | 48 |
Reagents and conditions: 1a (1 mmol), 2a (2 mmol), catalyst (0.1 mmol), CuI (0.1 mmol), base (1.5 mmol), solvent (2 mL), 30 min MW, 100 °C.
Isolated yields.
Only 3aa was obtained with 8% yield.
Optimization of the iron-catalyzed cyclization 3aa
|
| |||
|---|---|---|---|
| Entry | 2a (equiv.) | Time (min) | Yield |
| 1 | 2 | 30 | 62 |
| 2 | 3 | 30 | 68 |
| 3 | 4 | 30 | 66 |
| 4 | 3 | 60 | 72 |
| 5 | 3 | 90 | 71 |
| 6 | 3 | 120 | 58 |
| 7 | 3 | 120 | 33 |
Reagents and conditions: 1a (1 mmol), 2a, Fe(acac)3 (0.1 mmol), CuI (0.1 mmol), KOBu (1.5 mmol), NMP (2 mL), MW, 130 °C.
Isolated yields.
Under conventional thermal heating condition.
Preparation of 7-azaindoles 3a–pa
|
| ||||
|---|---|---|---|---|
| Entry | R1 | R2 | Product | Yield |
| 1 | H | Ph | 3a | 72 |
| 2 | H | 4-OCH3-Ph | 3b | 73 |
| 3 | Me | Ph | 3c | 73 |
| 4 | Me | 4-F-Ph | 3d | 68 |
| 5 | CN | Ph | 3e | 65 |
| 6 | CN | 4-F-Ph | 3f | 61 |
| 7 | CN | 4-OCH3-Ph | 3g | 66 |
| 8 | CN | Me | 3h | 43 |
| 9 | CF3 | Ph | 3i | 62 |
| 10 | CF3 | 4-F-Ph | 3j | 56 |
| 11 | CF3 | 4-OCH3-Ph | 3k | 79 |
| 12 | CF3 | 4-CF3-Ph | 3l | 45 |
| 13 | CF3 | 4-Cl-Ph | 3m | 58 |
| 14 | CF3 | 2-Cl-Ph | 3n | 32 |
| 15 | CF3 | Me | 3o | 33 |
| 16 | CF3 |
| 3p | 48 |
Reagents and conditions: 1 (1 mmol), 2 (3 mmol), Fe(acac)3 (0.1 mmol), CuI (0.1 mmol), KOBu (1.5 mmol), NMP (2 mL), 60 min MW, 130 °C.
Isolated yields.
Preparation of 1,2-disubstituted 7-azaindoles 5a–ma
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|
Reagents and conditions: 4 (1 mmol), 2 (3 mmol), Fe(acac)3 (0.1 mmol), CuI (0.1 mmol), KOBu (1.5 mmol), NMP (2 mL), 60 min MW, 130 °C.
Scheme 1Complementary experiments.
Scheme 2Proposed mechanism.