| Literature DB >> 32110333 |
Lei Cheng1, Ming-Ming Li1, Biao Wang1, Li-Jun Xiao1, Jian-Hua Xie1, Qi-Lin Zhou1.
Abstract
Transition-metal-catalyzed hydrofunctionalization of 1,3-dienes is a useful and atom-economical method for constructing allylic compounds. Although substantial progress on hydroalkylation of dienes with stabilized carbon nucleophiles has been made, hydroalkylation of dienes with unstabilized carbon nucleophiles has remained a challenge. In this article, we report a protocol for nickel-catalyzed hydroalkylation of dienes with hydrazones, which serve as equivalents of alkyl carbon nucleophiles. In addition, we developed a protocol for hydroalkenylation of dienes with α,β-unsaturated hydrazones, providing a new method for the synthesis of 1,4-dienes. These hydroalkylation and hydroalkenylation reactions feature mild conditions and a wide substrate scope, and the utility of the reaction products is demonstrated by the preparation of an activator of soluble guanylate cyclase. This journal is © The Royal Society of Chemistry 2019.Entities:
Year: 2019 PMID: 32110333 PMCID: PMC6988744 DOI: 10.1039/c9sc04177j
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Transition-metal-catalyzed allylic C–C bond formation using 1,3-dienes and carbon nucleophiles.
Hydroalkylation of 1a with 2a. Optimization of reaction conditions
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| Entry | Ligand | Additive | Solvent | Yield |
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| 1 | DTBM-SegPhos |
| EtOH | 13 | 13 : 1 |
| 2 | DPPP |
| EtOH | 18 | 9 : 1 |
| 3 | DPPB |
| EtOH | 65 | 18 : 1 |
| 4 | DPPPe |
| EtOH | 62 | 18 : 1 |
| 5 | DPPF |
| EtOH | 58 | 9 : 1 |
| 6 | PCy3 |
| EtOH | 33 | 3 : 1 |
| 7 | PPh3 |
| EtOH | 64 | 11 : 1 |
| 8 | P(4-OMeC6H4)3 |
| EtOH | 81 | 9 : 1 |
| 9 | P(4-CF3C6H4)3 |
| EtOH | 85 | >20 : 1 |
| 10 | P(4-CF3C6H4)3 | None | EtOH | 30 | 6 : 1 |
| 11 | P(4-CF3C6H4)3 |
| EtOH | 85 | >20 : 1 |
| 12 | P(4-CF3C6H4)3 |
| MeOH | 28 | 11 : 1 |
| 13 | P(4-CF3C6H4)3 |
|
| 80 | >20 : 1 |
| 14 | P(4-CF3C6H4)3 |
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| 71 | 16 : 1 |
| 15 | P(4-CF3C6H4)3 |
| EtOH | 95 (92) | >20 : 1 |
Reaction conditions: 1a (0.1 mmol), 2a (0.15 mmol), Ni(COD)2 (0.01 mmol), ligand (0.012 mmol for monodentate ligand, 0.01 mmol for bidentate ligand), additive (0.01 mmol), solvent (0.75 mL) at 80 °C for 8 h.
1H NMR yields of major isomer 3a using 1,3,5-trimethoxybenzene as internal standard.
Regioselectivity (ratio of 1,2- and 1,4-hydrogenation products) was determined by 1H NMR analysis of reaction mixture.
Additives: 1.0 equivalent.
1a (0.2 mmol), 2a (0.1 mmol).
Isolated yield in the parentheses. DPPP = 1,3-bis(diphenylphosphino)propane; DPPB = 1,4-bis(diphenylphosphino)butane; DPPPe = 1,5-bis(diphenylphosphino)pentane; DPPF = 1,1′-bis(diphenylphosphino)ferrocene.
Hydroalkylation of dienes with hydrazone 2a ,
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Reaction conditions: 1 (0.4 mmol), 2a (0.2 mmol), Ni(COD)2 (0.02 mmol), P(4-CF3C6H4)3 (0.024 mmol), BuOLi (0.02 mmol), EtOH (1.5 mL) at 80 °C for 8 h. Isolated yields. Regioselectivity was the ratio of 3 to 3′, which was determined by 1H NMR analysis of the product.
Z/E configuration of aromatic dienes had no effect on the yield and selectivity of the reaction (see ESI).
1 (0.2 mmol), 2a (0.3 mmol).
E-isomer of aliphatic diene as starting material, DPPPe as the ligand.
Hydroalkylation of diene 1a with various hydrazones 2
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Reaction conditions: 1a (0.4 mmol), 2 (0.2 mmol), Ni(COD)2 (0.02 mmol), P(4-CF3C6H4)3 (0.024 mmol), BuOLi (0.02 mmol), EtOH (1.5 mL) at 80 °C for 8 h. Isolated yields. Regioselectivity was the ratio of 4 to 4′, which was determined by 1H NMR analysis of the product.
1a (0.2 mmol), 2r (0.3 mmol), Ni(COD)2 (0.02 mol), PBn3 (0.024 mmol), BuOLi (0.02 mmol), EtOH (1.0 mL) at 80 °C for 8 h.
Hydroalkenylation of dienes with α,β-unsaturated hydrazones
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Reaction conditions: 1a (0.4 mmol), α,β-unsaturated hydrazones 4 (0.2 mmol), Ni(COD)2 (0.02 mmol), P(4-CF3C6H4)3 (0.024 mmol), BuOLi (0.02 mmol), EtOH (1.5 mL) at 80 °C for 8 h. Isolated yields. Regioselectivity was determined by 1H NMR analysis.
1a (0.2 mmol), α,β-unsaturated hydrazones 4 (0.4 mmol).
Scheme 2Synthesis of guanylate cyclase activator 8.
Scheme 3Deuterium-labeling experiments.
Scheme 4A proposed mechanism.