| Literature DB >> 32182996 |
Alejandro Manchado1, Victoria Elena Ramos1, David Díez1, Narciso M Garrido1.
Abstract
The asymmetric synthesis of a compound with the cyclopentan[c]pyran core of iridoid natural products in four steps and 40% overall yield is reported. Our methodology includes a one-pot tandem domino reaction which provides a trisubstituted cyclopentane with five new completely determined stereocenters, which were determined through 2D homo and heteronuclear NMR and n.O.e. experiments on different compounds specially designed for this purpose, such as a dioxane obtained from a diol. Due to their pharmaceutical properties, including sedative, analgesic, anti-inflammatory, CNS depressor or anti-conceptive effects, this methodology to produce the abovementioned iridoid derivatives, is an interesting strategy in terms of new drug discovery as well as pharmaceutical development.Entities:
Keywords: asymmetric aza-Michael addition; asymmetric domino reaction; chiral lithium amide; cyclopentan[c]pyran; iridoid; multicomponent reaction; nepetalactone
Mesh:
Substances:
Year: 2020 PMID: 32182996 PMCID: PMC7144114 DOI: 10.3390/molecules25061308
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Some main nepetalactone and iridoid skeletons.
Scheme 1Previous and current studies of domino reactions.
Scheme 2Retrosyntheses of nepetalactones and iridoids from octadiendioate.
Scheme 3(a) Multicomponent domino reaction towards 3 and 4. (b) Numbering used for these compounds.
One bond and long-range 2D 1H-13C correlation for compounds 4, 5 and 6.
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| CARBON | Observed 1H ( | Observed Long Range Correlation | Observed 1H ( | Observed Long Range Correlation | Observed 1H ( | Observed Long Range Correlation | |||
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| 50.0 | 3.23, dd, 10.1, 9.3 | 2, 3, 4, 5, 7 | 45.1 | 2.24, m | 2 | 53.0 | 2.73, t, 9.1 | 5, 3 |
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| 65.1 | 3.56, ddd, 9.9, 8.2, 8.2 | 1, 1′, 1′’, 3, 4 | 60.7 | 2.84, m | 1, 1′, 3 | 65.1 | 3.55, m | 1, 1′, 3 |
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| 26.6 | 1.75, m | 4 | 25.7 | 1.64, m | 4 | 27.1 | 1.65, m | 4 |
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| 28.8 | 1.55, m | 2 | 28.5 | 1.75, m | 5 | 30.3 | 1.26, m | 5 |
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| 40.0 | 2.74, m | 1, 3, 4, 7 | 36.1 | 2.84, m | 1′’’ | 39.8 | 2.27, m | 1 |
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| 177.4 | 1, 2 | 64.7 | 3.55, m | 2 | 176.6 | 1, 2 | ||
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| 56.5 | 2.87, dd, 10.0, 3.8 | 1, 5, OH | 57.2 | 2.83, m | 1′’’ | 50.6 | 2.29, m | 1 |
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| 172.0 | 5, 7 | 173.0 | 7 | 63.4 | 3.51, d, 4.5 | 5, 7 | ||
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| 57.2 | 3.90, q, 6.8 | 1′’, 2′, HAr | 55.4 | 3.94, q, 6.8 | 1′’, 2′ | 58.0 | 3.90, q, 6.8 | 1′’, 2′ |
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| 15.1 | 1.28, d, 6.8 | 1′ | 12.4 | 1.38, d, 6.8 | 1′ | 15.1 | 1.34, d, 6.8 | 1′ |
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| 49.9 | 3.85, d, 14.4 | HAr, 1′ | 50.1 | 3.91, d, 14.4 | HAr, 1′, 2 | 50.0 | 3.69, d, 14.6 | HAr, 1′, 2 |
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| 73.3 | 4.64, dd, 10.0, 3.5 | HAr, 7 | 73.3 | 4.96, d, 6.5 | 7 | 75.6 | 4.86, d, 6.5 | 8 |
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| 25.4 | 1.08, m | CH3 | 25.3 | 1.38, m | CH3 | 24.8 | 1.35, m | CH3 |
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| 9.4 | 1.00, t, 7.5 | CH2 | 8.6 | 0.37, t, 7.5 | CH2 | 9.0 | 0.83, t, 7.6 | CH2 |
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| 3.04, d, 3.5 | ||||||||
Figure 2(a) 1H NMR stereochemical analysis of major and minor diastereoisomers 4 and 3. (b) Proposed intramolecular H-bond for 3.
Scheme 4Reduction reactions of 3 and 4 epimers and dioxane 9 formation.
Figure 3Significant n.O.e correlations observed for 9.
Scheme 5Oxidation reactions of 3 and 4.
Scheme 6Mechanistic explanation of the different TS toward 3 and 4 (1:2 ratio).
Electrophile additions.
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Scheme 7Synthesis of iridoid derivative 26.
Figure 4Observed n.O.es for compounds 21, 24 and 25.