| Literature DB >> 29861915 |
Shahab Mortezaei1, Noelle R Catarineu1, Xueyou Duan1, Chunhua Hu1, James W Canary1.
Abstract
A ligand capable of adopting two pseudo-enantiomeric helically chiral states when bound to copper has been applied as an asymmetric catalyst in the Michael addition ofEntities:
Year: 2015 PMID: 29861915 PMCID: PMC5950827 DOI: 10.1039/c5sc02144h
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1Helical inversion of a methionine-based copper complex.16
Fig. 2Model used for design of a helically chiral scaffold with appended urea groups.
Scheme 1Synthetic route used to produce complex Δ-1.
Fig. 3Redox triggered switching between Δ-1 and Λ-1. CD (L mol–1 cm–1) and UV (L mol–1 cm–1) of Δ/Λ-1 (59 μM, acetonitrile).
Scheme 2Preliminary catalyst results.
Effects of solvent on Δ/Λ-1
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| Solvent |
|
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| % ee of ( | % yield | % ee of ( | % yield | |
| Toluene | 24 | 55 | 51 | 33 |
| THF | 48 | 33 | 57 | 78 |
| MeCN | 72 | 55 | 70 | 40 |
| CHCl3 | 30 | 40 | 68 | 34 |
| CH2Cl2 | 46 | 44 | 74 | 43 |
| Hexane | 51 | 30 | 60 | 30 |
| EtOAc | 0 | 81 | 7 | 73 |
| DCE | 22 | 46 | 44 | 52 |
| Dioxane | 3 | 87 | 0 | 78 |
| MeOH | 20 | 35 | 5 | 35 |
All reactions were performed using β-nitrostyrene 8 (0.34 mmol, 1 equiv.), diethylmalonate 9 (0.68 mmol, 2 equiv.), and NEt3 (0.034 mmol, 0.1 equiv.) in solvent (1 mL) with 5 mol% catalyst (Δ-1 or Λ-1) at room temperature for 24 h.
Determined by chiral HPLC analysis.
Isolated yields.
Base screen for different complex oxidation states
| Base |
|
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| % ee | % yield of ( | % ee | % yield of ( | |
| NEt3 | 72 | 55 | 70 | 40 |
| DIPEA | 70 | 38 | 56 | 32 |
| DABCO | 66 | 44 | 30 | 48 |
| DBU | 34 | 40 | 7 | 34 |
| DMAP | 57 | 21 | 31 | 32 |
All reactions were performed using β-nitrostyrene 8 (0.34 mmol, 1 equiv.), diethylmalonate 9 (0.68 mmol, 2 equiv.), and base (0.034 mmol, 0.1 equiv.) in MeCN (1 mL) with 5 mol% catalyst (Δ-1 or Λ-1) at room temperature for 24 h.
Determined by chiral HPLC analysis.
Isolated yields.
Base screen for basicity and steric effects
| Base |
| ||
| % ee | % yield of ( | p | |
| DBU | 34 | 20 | 24.33 |
| NEt3 | 72 | 55 | 18.82 |
| DIEA | 70 | 38 | 18.80 |
|
| 53 | 33 | 18.64 |
|
| 66 | 43 | 18.62 |
| DABCO | 66 | 44 | 18.29 |
| DMAP | 57 | 21 | 17.95 |
|
| 40 | 17 | 15.8 |
| Collidine | 10 | 8 | 14.77 |
|
| 0 | 21 | 13–14 |
| TBAF | 20 | 61 | ? |
All reactions were performed using β-nitrostyrene 8 (0.34 mmol, 1 equiv.), diethylmalonate 9 (0.68 mmol, 2 equiv.), and base (0.034 mmol, 0.1 equiv.) in MeCN (1 mL) with 5 mol% catalyst (Δ-1) at room temperature for 24 h.
Determined by chiral HPLC analysis.
Isolated yields.
pKa of conjugate acid in acetonitrile.38
Enantioselective reaction of Δ/Λ-1 with different substrates
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| Entry |
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| R1 | R2 | % ee | % yield of ( | % ee | % yield of ( | |
| 1 ( | 4-MeC6H4 | OEt | 70 | 67 | 67 | 55 |
| 2 ( | 4-OMeC6H4 | OEt | 60 | 46 | 73 | 20 |
| 3 ( | 2,3-(OMe)2C6H3 | OEt | 48 | 97 | 57 | 98 |
| 4 ( | 4-BrC6H4 | OEt | 24 | 45 | 72 | 48 |
| 5 ( | 4-OHC6H4 | OEt | 40 | 51 | 53 | 44 |
| 6 ( | Ph | OMe | 57 | 35 | 64 | 77 |
| 7 ( | Ph | i-PrO | 73 | 30 | 65 | 30 |
| 8 ( | Ph | Me | 60 ( | 80 ( | 70 | 78 |
All reactions were performed using nitrostyrene (0.34 mmol, 1 equiv.), malonate (0.68 mmol, 2 equiv.), and NEt3 (0.034 mmol, 0.1 equiv.) in MeCN (1 mL) with 5 mol% catalyst (Δ-1 or Λ-1) at room temperature for 3–24 h.
Determined by chiral HPLC analysis.
Isolated yields.
Stereoselective reaction of Δ/Λ-1 with prochiral malonates
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| Entry |
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| R1 | R2 | % ee | % yield of ( | % ee | % yield of ( | |
| 1 ( | OMe | Ot-Bu | 60/73 | 54 (dr ∼ 70 : 30) | 64/64 | 40 (dr ∼ 68 : 32) |
| 2 ( | OBz | OEt | 26/30 | 41 (dr ∼ 50 : 50) | 20/20 | 40 (dr ∼ 50 : 50) |
| 3 ( | OEt | Ot-Bu | 77/72 | 46 (dr ∼ 50 : 50) | 20/24 | 39 (dr ∼ 50 : 50) |
| 4 ( | OBz | Ot-Bu | 37/70 | 51 (dr ∼ 67 : 32) | 50/40 | 42 (dr ∼ 50 : 50) |
All reactions were carried out using β-nitrostyrene (0.34 mmol, 1 equiv. malonate (0.68 mmol, 2 equiv.)), and NEt3 (0.034 mmol, 0.1 equiv.) in MeCN (1 mL) with 5 mol% catalyst (Δ-1 or Λ-1) at room temperature for 3–24 h.
Determined by chiral HPLC analysis (d1 = diastereomer 1).
Isolated yield.
(dr = d1 : d2).
Effects of different copper salts on catalysis
| Entry | Cu2+ salt | % ee | % yield of ( |
| 1 | Cu(ClO4)2·6H2O | 67 | 64 |
| 2 | Cu(ClO4)2·6H2O | 72 | 63 |
| 3 | CuCl2·2H2O | 20 | 55 |
| 4 | Cu(BF4)2 | 70 | 50 |
| 5 | Cu(NO3)2·H2O | 37 | 57 |
All reactions were carried out using β-nitrostyrene 8 (0.34 mmol, 1 equiv.), diethyl malonate 9 (0.68 mmol, 2 equiv.), and NEt3 (0.034 mmol, 0.1 equiv.) in MeCN (1 mL) with 5 mol% catalyst (formed in situ) at room temperature for 3–24 h.
Determined by chiral HPLC analysis.
Isolated yields.
4 Å MS added.
Fig. 4Pseudo first order rate studies performed in the presence of excess diethyl malonate (top) and excess nitrostyrene (bottom) (mal = 9, ns = 8c).
Fig. 5Reaction kinetics monitoring formation of product (S)-10 in the presence of free ligand 7 and Δ-1.
Fig. 6The space filling (top) and stick (bottom) molecular structure of Δ-1. The disordered groups, perchlorate ions, acetonitrile molecules, and hydrogen atoms are omitted for clarity.
Fig. 7Model of catalyst showing hindered attack at Re face of hydrogen bonded nitrostyrene.
Fig. 8Practical handling the ambidextrous catalyst allows for both in situ catalyst reduction and one pot methods.