| Literature DB >> 23209504 |
Zhi-Cong Geng1, Jian Chen, Ning Li, Xiao-Fei Huang, Yong Zhang, Ya-Wen Zhang, Xing-Wang Wang.
Abstract
The catalytic synthesis of nitrogen-containing heterocycles is of great importance to medicinal and synthetic chemists, and also a challenge for modern chemical methodology. In this paper, we report the synthesis of pyrazolidine derivatives through a domino aza-Michael/hemiacetal sequence with chiral or achiral secondary amines as organocatalysts. Thus, a series of achiral pyrazolidine derivatives were obtained with good yields (up to 90%) and high diastereoselectivities (>20:1) with pyrrolidine as an organocatalyst, and enantioenriched pyrazolidines are also achieved with good results (up to 86% yield, >10/1 regioselectivity, >20:1 dr, 99% ee) in the presence of (S)-diphenylprolinol trimethylsilyl ether catalyst.Entities:
Keywords: aza-Michael; domino; hydrazine; organocatalysis; pyrazolidine
Year: 2012 PMID: 23209504 PMCID: PMC3511004 DOI: 10.3762/bjoc.8.195
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Figure 1Important heterocycles containing pyrazolidine or pyrazoline structures.
Secondary amine catalyzed cascade aza-Michael/hemiacetal reaction.
| Entrya | Solvent | Additive | drb | Yield (%)c |
| 1 | CHCl3 | – | >20:1 | 68 |
| 2 | CH2Cl2 | – | >20:1 | 74 |
| 3 | MeOH | – | – | 48 |
| 4 | DMF | – | – | 51 |
| 5 | PhMe | – | – | 42 |
| 6 | THF | – | – | 37 |
| 7 | CH2Cl2 | NaOAc | >20:1 | 68 |
| 8 | CH2Cl2 | NaHCO3 | >20:1 | 63 |
| 9 | CH2Cl2 | Na2CO3 | – | 38 |
| 10 | CH2Cl2 | LiOAc | >20:1 | 56 |
| 11 | CH2Cl2 | Et3N | >20:1 | 42 |
| 12 | CH2Cl2 | DMAP | >20:1 | 50 |
| 13 | CH2Cl2 | benzoic acid ( | >20:1 | 77 |
| 14 | CH2Cl2 | 4-nitrobenzoic acid ( | >20:1 | 67 |
| 15 | CH2Cl2 | 3,5-dinitrobenzoic acid ( | – | 56 |
| 16d | CH2Cl2 | – | >20:1 | 81 |
aThe reaction was run with 2c (0.3 mmol), 3a (0.25 mmol), 1c (0.05 mmol) and the specified additive (0.05 mmol) in the given solvent (0.5 mL) at room temperature for 5 d. bDetermined by 1H NMR. cIsolated yield. dThe molar ratio of 2c/3a is 2.0:1.
Substrate scope for the cascade aza-Michael/hemiacetal reactions between 2 and α,β-unsaturated aldehydes 3.
| Entrya | Donor | R3 | drb | Yield (%)c |
| 1 | 4-NO2C6H4 ( | >20:1 | ||
| 2 | 3-NO2C6H4 ( | >20:1 | ||
| 3 | 4-CNC6H4 ( | >20:1 | ||
| 4 | 4-ClC6H4 ( | >20:1 | ||
| 5 | 4-BrC6H4 ( | >20:1 | ||
| 6 | 4-MeOC6H4 ( | – | ||
| 7 | 4-MeC6H4 ( | – | ||
| 8 | 4-NO2C6H4 ( | >20:1 | ||
| 9 | 3-NO2C6H4 ( | >20:1 | ||
| 10 | 4-NO2C6H4 ( | >20:1 | ||
| 11 | 3-NO2C6H4 ( | >20:1 | ||
| 12 | 4-MeOC6H4 ( | >20:1 | ||
| 13 | 4-NO2C6H4 ( | >20:1 | ||
| 14 | 4-NO2C6H4 ( | >20:1 | ||
| 15 | 4-NO2C6H4 ( | >20:1 | ||
| 16 | 3-NO2C6H4 ( | >20:1 | ||
aReaction was conducted on 0.25 mmol scale in solvents (0.5 mL) at room temperature for five days. bDetermined by 1H NMR. cIsolated yield (the data in parentheses is related to the isolated yield of the regioselective product). dThe ratio of 2/3 is 2.0:1. eThe ratio of 2/3 is 5.0:1. fThe ratio of 2/3 is 1.2:1. g100 mol % of pyrrolidine was used at rt for 12 h.
Figure 2X-ray crystal structure of racemic 4a (25% thermal ellipsoids).
Figure 3X-ray crystal structure of racemic 4n (25% thermal ellipsoids).
Chiral-amine-catalyzed cascade aza-Michael/hemiacetal reaction of 2c with 3a.
| Entrya | R | Time (d) | Yield (%)b | ee (%)c |
| 1 | 1 | <10 | n.d. | |
| 2 | 1 | <5 | n.d. | |
| 3 | 1 | 48 | 5 | |
| 4 | 1 | 21 | 13 | |
| 5 | 1 | <10 | n.d. | |
| 6 | 1 | <5 | n.d. | |
| 7 | 1 | 86 | 82 | |
| 8 | 1 | 89 | (−)79d | |
| 9 | 1 | 87 | 76 | |
aThe reaction was run with 2c (0.5 mmol), 3a (0.25 mmol), and 1 (0.05 mmol) in CH2Cl2 (0.5 mL) at room temperature. bIsolated yield. cDetermined by HPLC analysis on a chiral stationary phase (Chiralcel OD-H), >20:1 dr. dOpposite enantiomer of the product formed. n.d. = not determined.
Optimization of the reaction of 2c and 3a catalyzed by chiral amine 1m.
| Entrya | Additive | Solvent | Time (d) | Yield (%)b | ee (%)c |
| 1 | – | MeOH | 2 | 56 | 22 |
| 2 | – | CHCl3 | 1 | 84 | 75 |
| 3 | – | CHCl2 | 1 | 86 | 82 |
| 4 | – | THF | 2 | 51 | 92 |
| 5 | PhMe | 2 | 72 | 92 | |
| 6 | – | PhMe | 4 | 80 | 92 |
| 7 | PhMe | 4 | 27 | 93 | |
| 8 | PhMe | 4 | 56 | 94 | |
| 9 | PhMe | 4 | 48 | 92 | |
| 10 | PhMe | 4 | 45 | 92 | |
| 11 | PhMe | 4 | 51 | 94 | |
| 12 | PhMe | 4 | 20 | 94 | |
| 13 | PhMe | 4 | 38 | 94 | |
| 14 | PhMe | 4 | 53 | 95 | |
| 15 | LiOAc | PhMe | 4 | 79 | 93 |
| 16 | DMAP | PhMe | 4 | 83 | 87 |
| 17 | DABCO | PhMe | 4 | 79 | 89 |
| 18 | Et3N | PhMe | 4 | 83 | 87 |
| 19 | TMEDA | PhMe | 4 | 81 | 88 |
| 20 | DBU | PhMe | 4 | 58 | 11 |
aThe reaction was run with 2c (0.5 mmol), 3a (0.25 mmol), 1m (0.05 mmol) and the specified additive (0.05 mmol) in the given solvent (0.5 mL) at room temperature. bIsolated yield. cDetermined by HPLC analysis on a chiral stationary phase (Chiralcel OD-H), >20:1 dr.
Substrate scope of 2 and 3 catalyzed by chiral amine 1m.
| Entrya | Donor | R3 | Time (d) | Yield (%)b | Ratioc | ee (%)d |
| 1 | 4-NO2C6H4 ( | 4 | – | 92 | ||
| 2 | 3-NO2C6H4 ( | 2 | – | 91 | ||
| 3 | 4-CNC6H4 ( | 4 | – | 89 | ||
| 4 | 4-ClC6H4 ( | 4 | – | 74 | ||
| 5 | 4-BrC6H4 ( | 4 | – | 77 | ||
| 6 | 4-MeOC6H4 ( | 4 | – | – | ||
| 7 | 4-MeC6H4 ( | 4 | – | – | ||
| 8 | 4-NO2C6H4 ( | 2 | – | 72 | ||
| 9 | 4-NO2C6H4 ( | 4 | 1.8:1 | 88/55 | ||
| 10 | 3-NO2C6H4 ( | 4 | 3.2:1 | 88 | ||
| 11 | 4-NO2C6H4 ( | 4 | 4.5:1 | 99 | ||
| 12 | 4-CNC6H4 ( | 4 | 4.7:1 | 93 | ||
| 13 | 3-CF3C6H4 ( | 4 | –g | 81 | ||
| 14 | 4-NO2C6H4 ( | 4 | 6.4:1 | 99 | ||
| 15 | 4-CNC6H4 ( | 4 | 4.0:1 | 90 | ||
| 16 | 4-NO2C6H4 ( | 4 | 1:9.0 | –/11 | ||
| 17 | Me ( | 2 | >10:1 | 72 | ||
| 18 | Me ( | 2 | >10:1 | 74 | ||
| 19 | Et ( | 3 | – | – | ||
aUnless noted, the reaction was run with 2 (0.5 mmol), 3 (0.25 mmol), and 1m (0.05 mmol) in toluene (0.5 mL) at room temperature. bIsolated yield of pure isomer 4 (the data in parentheses is related to the isolated yield of the 4’). cThe ratio based on isolated yield of pure 4 and 4’. dDetermined by HPLC analysis on a chiral stationary phase (Chiralcel OD-H, AD-H or AS-H), >20:1 dr. eThe ratio of 2/3 is 1.2:1. fThe reaction was run with 2 (0.25 mmol), 3 (0.38 mmol), and 1m (0.05 mmol) in toluene (0.5 mL) at room temperature. gDue to the difficulty of separation of the product 4r’ from starting material 2h.
Figure 4The X-ray crystal structure of chiral compound 4s (40% thermal ellipsoids).