| Literature DB >> 18830158 |
Roman Sívek1, Filip Bures, Oldrich Pytela, Jirí Kulhánek.
Abstract
Twelve new imidazole-based potential bi- and tridentate ligands were synthesized and characterized. Whereas in the first series the alpha-amino acid and imidazole moieties were linked by an amino bond, in the second series the tridentate ligands, containing two imidazole groups, were separated by an amide bond. The first series was obtained by the reductive amination of 2-phenylimidazole-4-carboxaldehyde with alpha-amino acid esters. The tridentate ligands were prepared from 2-phenylimidazole-4-carboxylic acid and chiral amines. In the Henry reaction, the amines were revealed as a more reactive species than the less nucleophilic amides, however the enantiomeric excesses were generally poor.Entities:
Mesh:
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Year: 2008 PMID: 18830158 PMCID: PMC6245419 DOI: 10.3390/molecules13092326
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Known and newly proposed imidazole-based ligands.
Scheme 2The reductive amination leading to ligands 3a-f.
Bidentate ligands 3a-f.
| Comp. | R / Source of chirality | Yield [%] | e.e. [%] | [α]D20 ( |
|---|---|---|---|---|
|
| CH3 / ( | 56 | > 95 | -8.9 |
|
| CH(CH3)2 / ( | 73 | > 95 | -22.8 |
|
| CH2CH(CH3)2 / ( | 34 | > 95 | -22.0 |
|
| CH(CH3)CH2CH3 / ( | 38 | > 95 | -9.2 |
|
| CH2Ph / ( | 66 | > 95 | -13.4 |
|
| Ph / ( | 23 | > 95 | -16.7 |
Scheme 3Synthesis of tridentate ligands 4a-e and ligand 4f.
Tridentate 4a-e and bidentate ligand 4f.
| Comp. | R / Source of chirality | Yield[a] [%] | e.e. [%] | [α]D20 ( |
|---|---|---|---|---|
|
| CH3 / ( | 23/24 | > 95 | +95.6 |
|
| CH(CH3)2 / ( | 30/35 | > 95 | +48.0 |
|
| CH2CH(CH3)2 / ( | 16/25 | > 95 | +48.8 |
|
| CH(CH3)CH2CH3 / ( | 13/34 | > 95 | +36.0 |
|
| CH2Ph / ( | 17/22 | > 95 | +33.0 |
|
| CH3 / ( | 44/42 | > 95 | +142.0 |
[a] Isolated yields for Methods A/B
Scheme 4Asymmetric version of the Henry reaction.
The Henry reaction – yields and enantiomeric excesses.
|
| |||||||||
|---|---|---|---|---|---|---|---|---|---|
| Lig. | R | Yield [%] | ee [%] | Lig. | R | Yield [%] | ee [%] | ||
|
| CH3 | H, H | 98 | 10 |
| CH3 | O | 94 | 10 |
|
| CH(CH3)2 | H, H | 96 | 7 |
| CH(CH3)2 | O | 91 | 6 |
|
| CH2CH(CH3)2 | H, H | 94 | 15 |
| CH2CH(CH3)2 | O | 94 | 14 |
|
| CH(CH3)CH2CH3 | H, H | 97 | 10 |
| CH(CH3)CH2CH3 | O | 89 | 8 |
|
| CH2Ph | H, H | 95 | 14 |
| CH2Ph | O | 99 | 15 |
|
| Ph | H, H | 93 | 9 |
| see | O | 91 | 5 |
|
| CH3 | O | 79 | 1 |
| CH3 | H, H | 94 | 13 |
|
| CH(CH3)2 | O | 84 | 3 |
| CH(CH3)2 | H, H | 95 | 13 |
|
| CH2CH(CH3)2 | O | 85 | 8 |
| CH2CH(CH3)2 | H, H | 96 | 15 |
|
| CH(CH3)CH2CH3 | O | 91 | 4 |
| CH(CH3)CH2CH3 | H, H | - | - |
|
| CH2Ph | O | 90 | 3 |
| CH2Ph | H, H | 96 | 19 |
|
| Ph | O | 70 | 4 | |||||
[a] Taken from Ref. [24] [b] Taken from Ref. [17] [c] No available data.
Figure 11H-NMR spectra of (S)-4b measured with (R)-Mosher’s acid (d-acetone) used for the ee’s determination.
Figure 21H-NMR spectra of (rac)-4b measured with (R)-Mosher’s acid (d-acetone) used for the ee’s determination (compare in particular the 2-H signals with (S)-4b on the Figure 1).