| Literature DB >> 29675233 |
Xinxin Zheng1, Rui Guo2, Guozhu Zhang2, Dayong Zhang1.
Abstract
We report a rhodium-catalyzed asymmetric formal intermolecular [4 + 2] cycloaddition reaction of 2-alkylenecyclobutanols with α,β-unsaturated cyclic ketones leading to synthetically useful trans-bicyclic molecules. Three consecutive stereogenic centers are formed in a highly enantio- and diastereoselective manner. Stepwise C-C bond cleavage and annulation are likely involved in the reaction pathway. Here, iPr-Duphos is the viable chiral ligand that promotes excellent enantio-control.Entities:
Year: 2018 PMID: 29675233 PMCID: PMC5890795 DOI: 10.1039/c7sc04784c
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1Representative of the natural products.
Optimization of the reaction conditions for rhodium(i)-catalyzed tandem ring opening and cyclization
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| Entry |
|
| Yield ( | ee |
| 1 | — | 1.0/1.0 | 30 | — |
| 2 | — | 2.1/1.0 | 60 | — |
| 3 | — | 0/1.0 | 49 | — |
| 4 |
| — | — | — |
| 5 |
| 1.0/1.0 | 30 | 0 |
| 6 |
| 1.0/2.0 | 43 | 27 |
| 7 |
| — | — | — |
| 8 |
| 1.2/1.0 | 28 | 87 |
| 9 |
| 1.2/1.0 | 27 | 96 |
| 10 |
| 1.9/1.0 | 60 | 96 |
Unless otherwise noted, two-step reactions were carried out: step a, 1a (0.2 mmol), cyclohexenone (2 equiv.), [Rh(COD)OH]2 (2.5 mol%), L (10 mol%), K3PO4 (2 equiv.), and KF (2 equiv.) were heated in toluene (0.2 M) at 70 °C for 8 h; step b, 3a (isolated from step a) and KOH (1.1 equiv.) were heated in MeOH (0.1 M) at 80 °C for 15 h.
The combined yield of the two steps.
The absolute configuration of the product was assigned by single crystal X-ray analysis of 2a.
Without KF.
The reaction conditions for step a were: 1a (0.2 mmol), cyclohexenone (2 equiv.), [Rh(COD)OH]2 (2.5 mol%), K2CO3 (1.1 equiv.), and 10% H2O in toluene (0.2 M) heated at 70 °C for 8 h.
Fig. 2X-ray crystal structure of .
Scope studies: enantioselective cycloadditions ,
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| Entry | Product | R1 | R2 |
| Yield ( | ee |
| 1 |
|
| Ph | 1.1/1.0 | 55 | 98 |
| 2 |
|
| Ph | 1.3/1.0 | 58 | 97 |
| 3 |
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| Ph | 1.9/1.0 | 62 | 97 |
| 4 |
|
| Ph | 2.1/1.0 | 57 | 96 |
| 5 |
|
| Ph | 1.7/1.0 | 56 | 94 |
| 6 |
| Me | Ph | 2.0/1.0 | 58 | 97 |
| 7 |
| Et | Ph | 2.7/1.0 | 58 | 97 |
| 8 |
| Ph |
| 2.8/1.0 | 57 | 95 |
| 9 |
|
|
| 1.4/1.0 | 57 | 99 |
| 10 |
|
|
| 2.6/1.0 | 66 | 96 |
| 11 |
|
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| 3.8/1.0 | 77 | 92 |
| 12 |
| Ph |
| 2.1/1.0 | 57 | 98 |
| 13 |
|
|
| 4.4/1.0 | 56 | 99 |
| 14 |
|
|
| 3.0/1.0 | 68 | >99 |
| 15 |
| Ph |
| 1.4/1.0 | 54 | 97 |
| 16 |
|
|
| 4.2/1.0 | 78 | 99 |
| 17 |
|
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| 3.6/1.0 | 78 | 99 |
| 18 |
| Ph | 2-Fural | 2.5/1.0 | 59 | >99 |
Unless otherwise noted, the two-step reactions were carried out under the optimized conditions (Table 1, entry 10).
Combined yield of the two steps.
The absolute configuration was assigned by analogy.
Scope studies: enantioselective cycloaddition
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|
Two-step reactions were carried out under the optimized conditions (Table 1, entry 10). The absolute configuration was assigned by analogy.
Ratio of 2/3 in step a.
Combined yield of 2 from the two steps.
Scheme 1Proposed catalytic cycle.
Scheme 2Synthetic utilities of trans-bicyclic products.