| Literature DB >> 34094471 |
J Ciciolil Hilario-Martínez1,2, Fernando Murillo1, Jair García-Méndez1, Eugenia Dzib1, Jesús Sandoval-Ramírez2, Miguel Ángel Muñoz-Hernández3, Sylvain Bernès4, László Kürti5, Fernanda Duarte6, Gabriel Merino1, María A Fernández-Herrera1.
Abstract
Herein, we report for the first time a "trans-hydroboration-oxidation product" isolated and characterized under traditional hydroboration-oxidation conditions using cholesterol and diosgenin as substrates. These substrates are excellent starting materials because of the rigidity and different structural environments around the double bond. Further investigations based on experimental evidence, in conjunction with theoretical studies, indicate that the formation of this trans-species occurs via a retro-hydroboration of the major product to generate the corresponding Δ6-structure and the subsequent hydroboration by the β-face. Besides, the corresponding Markovnikov type products have been isolated in synthetically useful yields. The behavior of the reaction under a range of temperatures is also investigated. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 34094471 PMCID: PMC8162471 DOI: 10.1039/d0sc01701a
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1General mechanism for the hydroboration reaction of alkenes.
Fig. 1Structures of four possible products derived from the HBO reaction of substrates 1 and 2 (structures type a–d).
Isolated yields from HBO of 1 and 2 at different temperatures
| Diol type | Isolated yields at different temperatures (%) | ||||
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| 20 | 10 °C | 0 °C | −10 °C | −20 °C | |
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| 66 | 62 | 59 | 54 | 40 |
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| 9 | 10 | 12 | 14 | 17 |
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| 65 | 61 | 55 | 52 | 41 |
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| 8 | 10 | 12 | 15 | 18 |
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Reactions carried out at rt (25 °C) provided similar yields.
Fig. 2(A) Structure type e (derived from the HBO reaction of 1 and 2). (B) Molecular structure for compound 1e with displacement ellipsoids at 30% probability level.
Fig. 3Gibbs energy profiles (in kcal mol−1) of hydroboration of the decalin model of 1 and transition state structures for the first steps. Bond distances are in Å. In the depicted structures, H atoms are omitted for clarity, except the H atom involved in the hydroboration.
Fig. 4Gibbs energy profiles (in kcal mol−1) for the formation of 1e′ and 1f′ and transition state structures involved. Bond distances are in Å. In the depicted structures, H atoms are omitted for clarity, except the H atom involved in the hydroboration.