| Literature DB >> 29732108 |
Jian Zhao1, Sybrand J T Jonker1, Denise N Meyer1, Göran Schulz1, C Duc Tran1, Lars Eriksson2, Kálmán J Szabó1.
Abstract
Tri- and tetrasubstituted allenylboronic acids were prepared via a new versatile copper-catalyzed methodology. The densely functionalized allenylboronic acids readily undergo propargylboration reactions with ketones and imines without any additives. Catalytic asymmetric propargylborylation of ketones is demonstrated with high stereoselectivity allowing for the synthesis of highly enantioenriched tertiary homopropargyl alcohols. The reaction is suitable for kinetic resolution of racemic allenylboronic acids affording alkynes with adjacent quaternary stereocenters.Entities:
Year: 2018 PMID: 29732108 PMCID: PMC5915797 DOI: 10.1039/c7sc05123a
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1Asymmetric catalysis toward sterically encumbered homopropargylic alcohols.
Fig. 2Pinacol protected allenylboronic acids are reluctant to react with ketones and imines.
Variation of reaction conditions for the synthesis of allenylboronic acid 1a
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| Entry | Conditions | Yield |
| 1 | No change | 76 |
| 2 | CuCl | 52 |
| 3 | CuCl | 49 |
| 4 | CuCl | 65 |
| 5 | Cul | 29 |
| 6 | PPh3 instead of P(OMe)3 | 46 |
| 7 | PCy3 or P(O-iPr)3 instead of P(OMe)3 | 0 |
| 8 | 1,3-Propanediol instead of ethylene glycol | 49 |
| 9 | Without ethylene glycol | 66 |
| 10 | Without 3 Å MS | 75 |
| 11 | At 0 °C | 16 |
| 12 | THF or toluene instead of MeOH | 0 |
General procedure: 4a (0.10 mmol), 5 (0.15 mmol), mesitylcopper(i) (0.01 mmol), P(OMe)3 (0.02 mmol), ethylene glycol (0.30 mmol), and 3 Å MS were stirred in MeOH (1 mL) at –10 °C for 24 h.
1H NMR-yields.
10 mol%.
20 mol%.
Protodeborylation occurs.
Fig. 3(a) and (b) Purification of allenylboronic acids 1a and 1b. (c) Attempted transformation of the pinacolate analogue 1a-Bpin with diethanolamine.
Fig. 4NMR spectra of allenylboronic acid 1a with the characteristic B(OH)2 peak “d”.
Synthesis of various allenylboronic acids
| Entry | Substrate | Product | Yield |
| 1 |
|
| 94 |
| 62 | |||
| 2 |
|
| 67 |
| 3 |
|
| 61 |
| 4 |
|
| 59 |
| 5 |
|
| 80 |
| 6 |
|
| 63 |
| 7 |
|
| 83 |
| 8 |
|
| 59 |
| 9 |
|
| 34 |
General procedure: 4a (0.10 mmol), 5 (0.15 mmol), mesitylcopper(i) (0.01 mmol), P(OMe)3 (0.02 mmol), ethylene glycol (0.30 mmol), and 3 Å MS were stirred in MeOH (1 mL) at –10 °C for 24 h.
1H NMR-yield.
Yield at 3 mmol scale.
Fig. 5Extension of the methodology for synthesis of allenyl boronates. a1H NMR yield. bIsolated yield.
Propargylation using allenylboronates
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| Entry | Boronic acid | Substrate | Product | Yield |
| 1 |
|
|
| 87 |
| 2 |
|
|
| 0 |
| 3 |
|
|
| 72 |
| 4 |
|
|
| 63 |
| 5 |
|
|
| 83 |
| 6 |
|
|
| 96 |
| 7 |
|
|
| 82 |
| 8 |
|
|
| 65 |
Unless otherwise stated 2 or 3 (0.15 mmol) is dissolved in toluene with 3 Å MS. 1 (0.1 mmol) in toluene is added and stirred at RT for 24 h.
Isolated yield.
Reaction time was 10 minutes.
Variation of reaction conditions for the asymmetric propargylation of 2a
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EtOH or t-BuOH (0.2 mmol) and 8a were added to 1b (0.1 mmol) in toluene (0.2 M) with 3 Å MS, then 3 h later 2a (0.15 mmol) was added and this mixture was stirred for 48 h at RT.
Isolated yield.
Asymmetric propargylation of various ketones. The vicinal quaternary carbons formed in the propargylboration process are colored
| Entry | Substrates | Product | Yield | ee | |
| 1 |
|
|
| 75 | 97 |
| 2 |
|
|
| 67 | 91 |
| 3 |
|
|
| 90 | 96 |
| 4 |
|
|
| 77 | 90 |
| 5 |
|
|
| 62 (70 | 94 (96 |
| 6 |
|
|
| 63 | 96 |
| 7 |
|
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| 64 | 99 |
EtOH (0.2 mmol) and 8a were added to 1 (0.1 mmol) in toluene (0.2 M) with 3 Å MS, then 3 h later 2 (0.15 mmol) was added and this mixture was stirred for 48 h at RT.
Isolated yields.
Reaction time 72 h.
Reaction time 90 h. Conc. was 0.1 M. 20 mol% 8a.
0.5 mmol scale, using 30 mol% 8a and the reaction time was 90 h.
Fig. 6Kinetic resolution of 1g affording a single enantiomeric product with adjacent quaternary stereocenters. aYield is based on racemic 1g. bYield is based on the reactive enantiomer of 1g.
Fig. 7Plausible mechanism of the stereoselection exemplified with the propargylation of 2c.
Fig. 8Proposed mechanism for the asymmetric propargylation exemplified with the reaction of 1b with 2c.