| Literature DB >> 29568453 |
G Malik1, R A Swyka1, V K Tiwari1, X Fei1, G A Applegate1, D B Berkowitz1.
Abstract
Herein we describe a formalEntities:
Year: 2017 PMID: 29568453 PMCID: PMC5855125 DOI: 10.1039/c7sc04083k
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1A new elevated temperature format for the plate-based colorimetric enzymatic screen and its use in parametrizing and optimizing the new thiocyanopalladation/carbocyclization transformation. (A) Schematic of the colorimetric, enzyme-based screen for this new bond construction. Note: the green color is due to ABTS radical cation formed from the alcohol oxidase/peroxidase reporting enzyme couple, with intensity of the signal related to the efficiency of organometallic reaction screened. (B) Table illustrating the reaction parameters being probed here – nature of the Pd(ii) catalyst, LiSCN loading, and ligand effects. Relative intensity of green shading indicates relative reaction progress after 15 min. (C) Images of the colorimetric enzymatic screen – entire 96-well aluminum plate after heating to 70 °C (sand bath). (D) Close-up view of the first row (white paper backing for clarity; dotted lines show how this row maps onto the schematic) highlighting the effect of LiSCN loading across the array of Pd(ii) catalysts screened.
Variation of the bridging functionality
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| Substrate | Product | X | Yield (t : c) |
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| O | 81% (4 : 1) |
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| NTs | 85% (11 : 1) |
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| NCOCF3 | 87% (30 : 1) |
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| C(COOEt)2 | 60 |
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| CH(COOEt) | 80% (13 : 1) |
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| S | 85% (1 : 1.5) |
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| SO2 | Elimination byproduct |
Ratio determined by crude 1H NMR.
Based on recovered starting material.
See ESI materials for compound structure.
dr 1 : 1.5 ratio in the major transoid product.
Fig. 2Assignment of alkene geometry using a combination of X-ray crystallography and correlated 1H and 13C chemical shift patterns. Note the clear positioning of the vinyl thiocyanate methine proton in the shielding region above the π-system of the vinyl group in the transoid isomer, resulting in an ∼0.4 ppm upfield shift, relative to the cisoid isomer.
Allylic substitution in the new thiocyanocarbocyclization: nearly absolute 1,2-anti-stereoinduction
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Reaction conditions: 2.5 mol% of PdCl2(PhCN)2 and 1.5 eq. of LiSCN. 5 mol% of PdCl2(PhCN)2 were employed for substrates 15, 17, 19. Ratios were determined by crude 1H NMR. Ratios >30 : 1 assume an NMR detection limit of approximately 3%; anti:syn ratios were determined by crude NMR for the major alkene formed.
Propargylic substitution in the new thiocyanocarbocyclization: nearly absolute 1,3-syn-stereoinduction
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Reaction conditions: 2.5 mol% of PdCl2(PhCN)2 and 1.5 eq. of LiSCN. Ratios were determined by crude 1H NMR. Ratios >30 : 1 assume an NMR detection limit of approximately 3%; anti:syn ratios were determined by crude NMR for the major alkene formed.
Scheme 1Proposed mechanism for the thiocyanopalladation/carbocyclization.
Scheme 2Starting alkene geometry strongly influences relative stereochemistry.
Asymmetric allylation of the reactive silylated propynal substrate
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| Entry | R | Conditions | Yield | ee |
| 1 | TMS | ( | 25% | +27% |
| 2 | TMS | (–)-DIP-OMe, allylmagnesium chloride, ether, –100 °C | 85% | –64% |
| 3 | TMS | (–)-DIP-Cl, allylmagnesium chloride, ether, –78 °C | 91% | –90% |
| 4 | TMS | Leighton reagent A, DCM, 0 °C | 61% | +65% |
| 5 | TMS | Leighton reagent B, DCM, 0 °C | 35% | +88% |
| 6 | TBS | Leighton reagent B, DCM, 0 °C | 20% | +92% |
| 7 | TBS | (–)-DIP-Cl, allylmagnesium chloride, ether, –78 °C | 77% | –90% |
Sign translates to the optical rotation of the major enantiomer obtained.
Scheme 3Rapid stereoselective access to oxabicyclo[3.2.1]octyl natural product cores. The new cyclization reaction affords core structures outfitted with a versatile thiocyanate functionality as a bioorthogonal probe in and of itself or as a template for subsequent functionalization.
Scheme 4Exploiting the SCN moiety for structural diversification.