| Literature DB >> 35539589 |
Yong-Chao Wang1, Jun-Liang Wang2, Kevin S Burgess3, Jiang-Wei Zhang4, Qiu-Mei Zheng1, Ya-Dan Pu1, Li-Jun Yan1, Xue-Bing Chen5.
Abstract
An efficient, green and sustainable approach for the synthesis of novel polycyclic pyrrolidine-fused spirooxindole compounds was developed. The synthesis included a one-pot, three-component, domino reaction of (E)-3-(2-nitrovinyl)-indoles, isatins and chiral polycyclic α-amino acids under catalyst-free conditions at room temperature in EtOH-H2O. The salient features of this methodology are eco-friendliness, high yields and the ease of obtaining target compounds without the involvement of toxic solvents and column chromatography. These novel polycyclic pyrrolidine-fused spirooxindoles provide a collection of structurally diverse compounds that show promise for future bioassays and medical treatments. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35539589 PMCID: PMC9078157 DOI: 10.1039/c7ra13207g
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Selected representative biologically active heterocycles and target compounds that exhibit pharmacological activities.
Optimization of the reaction conditions for the model reactiona
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|---|---|---|---|---|
| Entry | Solvent | Temperature | Time (h) | Yield |
| 1 | Acetone | r.t. | 6 | <5 |
| 2 | Acetonitrile | r.t. | 6 | <5 |
| 3 | Toluene | r.t. | 6 | <5 |
| 4 | Diethyl ether | r.t. | 6 | <5 |
| 5 | THF | r.t. | 6 | 38 |
| 6 | 1,4-Dioxane | r.t. | 6 | 41 |
| 7 | CH2Cl2 | r.t. | 6 | 78 |
| 8 | CHCl3 | r.t. | 6 | 81 |
| 9 | DMSO | r.t. | 6 | 74 |
| 10 | DMF | r.t. | 6 | 69 |
| 11 | Iso-propanol | r.t. | 6 | 76 |
| 12 | Glycerol | r.t. | 6 | 57 |
| 13 | MeOH | r.t. | 6 | 91 |
| 14 | EtOH | r.t. | 6 | 92 |
| 15 | H2O | r.t. | 6 | 21 |
| 16 | EtOH/H2O = 1 : 1 | r.t. | 6 | 94 |
| 17 | EtOH/H2O = 1 : 2 | r.t. | 6 | 87 |
| 18 | EtOH/H2O = 1 : 1 | 50 °C | 6 | 95 |
| 19 | EtOH/H2O = 1 : 1 | Reflux | 6 | 95 |
| 20 | EtOH/H2O = 1 : 1 | r.t. | 12 | 95 |
All reactions were carried out with 5a (1.0 mmol), 6a (1.1 mmol) and 7a (1.2 mmol) in corresponding solvents (5.0 mL) at corresponding temperatures.
Isolated yields based on β-nitrostyrene (5a).
Room temperature.
The resulting precipitates were filtered and washed with 3–5 mL EtOH/H2O (v/v = 1 : 1).
Fig. 2The diversity of reagents (5 and 6).
The synthesis of polycyclic pyrrolidine-fused spirooxindole derivatives 4a
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|---|---|---|---|---|---|---|
| Entry | R1 | R2 | R3 | R4 | 4 | Yield |
| 1 | CH3 | H | H | H | 4a | 94 |
| 2 | CH3 | H | H | 5-CH3 | 4b | 92 |
| 3 | CH3 | H | H | 5-OCH3 | 4c | 91 |
| 4 | CH3 | H | H | 5-F | 4d | 95 |
| 5 | CH3 | H | H | 6-Cl | 4e | 95 |
| 6 | CH3 | H | H | 6-Br | 4f | 96 |
| 7 | CH3 | H | H | 5-Br | 4g | 94 |
| 8 | CH3 | H | CH3 | 5-OCH3 | 4h | 87 |
| 9 | CH3 | H | CH3 | 5-F | 4i | 92 |
| 10 | CH3 | H | CH3 | 5-Cl | 4j | 92 |
| 11 | CH3 | Ph | H | 5-F | 4k | 91 |
| 12 | CH3 | Ph | H | 5-Br | 4l | 92 |
| 13 | H | H | H | H | 4m | 94 |
| 14 | H | H | H | 5-CH3 | 4n | 91 |
| 15 | H | H | H | 5-OCH3 | 4o | 95 |
| 16 | H | H | H | 5-F | 4p | 92 |
| 17 | H | H | H | 7-Cl | 4q | 93 |
| 18 | H | H | H | 5-Br | 4r | 93 |
| 18 | H | H | CH3 | 5-CH3 | 4s | 89 |
| 20 | H | H | CH3 | 5-OCH3 | 4t | 86 |
| 21 | H | H | CH3 | 5-F | 4u | 91 |
| 22 | H | H | CH3 | 7-Cl | 4v | 89 |
| 23 | H | H | CH3 | 5-Br | 4w | 93 |
All reactions were carried out with 5 (1.0 mmol), 6 (1.1 mmol) and 7a (1.2 mmol) in EtOH/H2O (v/v = 1 : 1) (5.0 mL) at room temperatures for 6 hours.
The resulting precipitates were filtered and washed with 3–5 mL EtOH/H2O (v/v = 1 : 1), the yields based on β-nitrostyrene (5).
The synthesis of polycyclic pyrrolidine-fused spirooxindole derivatives 8a
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|---|---|---|---|---|
| Entry | R | X | 8 | Yield |
| 1 | H | CH2 | 8a | 96 |
| 2 | 5-CH3 | CH2 | 8b | 94 |
| 3 | 7-CH3 | CH2 | 8c | 93 |
| 4 | 5-OCH3 | CH2 | 8d | 92 |
| 5 | 5-F | CH2 | 8e | 93 |
| 6 | 5,6-diF | CH2 | 8f | 92 |
| 7 | 6-Cl | CH2 | 8g | 95 |
| 8 | 7-Cl | CH2 | 8h | 93 |
| 9 | 6-Br | CH2 | 8i | 91 |
| 10 | 7-Br | CH2 | 8j | 95 |
| 11 | H | S | 8k | 89 |
| 12 | 6-Cl | S | 8l | 88 |
All reactions were carried out with 5d (1.0 mmol), 6 (1.1 mmol) and 7b (1.2 mmol) in EtOH/H2O (v/v = 1 : 1) (5.0 mL) at room temperatures for 6 hours.
The resulting precipitates were filtered and washed with 3–5 mL EtOH/H2O (v/v = 1 : 1), the yields based on β-nitrostyrene (5d).
Scheme 1Proposed reaction mechanism for the synthesis of 4 and 8.
Fig. 3Single crystal X-ray diffraction study of compound 4c.