ASYMFLU · Asymmetric Organocatalytic Fluorination with fluoride salts
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2018-05-01 → 2020-04-30
- EU contribution
- €183,455
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
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Results in brief
Asymmetric Organocatalytic Fluorination with fluoride salts
Despite its almost complete absence in natural products and biological processes, fluorine is a key element in pharmaceuticals and agrochemicals, being present in as many as 35% of agrochemicals and 20–25% of marketed drugs. The introduction of fluorine into molecules has proven to strongly modify the properties of compounds such as lipophilicity, metabolic stability and bioavailability thus leading, among other benefits, to improved drug efficacy. Furthermore, 18F is the most frequently used radioisotope in PET (Positron Emission Tomography), a powerful imaging technique routinely used in hospitals around the world for tracking diseases at an early stage, support drug discovery and help designing personalized care. For these reasons, the scientific community has developed a wide array of transformations in order to introduce fluorine (including its 18F radionuclide) into organic molecules. Moreover, there is a growing demand for enantiopure drugs which are one of two mirror image molecules. In many cases,these have shown to be safer and more effective than their racemic counterparts (mixture of the two mirror images). The constant rise of fluorine substitution in pharmaceutical drugs therefore requires the development of novel methodologies which employ safe, cost-efficient and readily available fluoride sources, thus avoiding the use of highly toxic and hard-to-handle hydrofluoric acid (HF). This research aimed at the use of one of the most cost effective class of fluorinating reagents, namely alkali metal fluorides, as sources of nucleophilic fluoride for asymmetric catalysis (thus biasing the introduction of fluorine towards only one of two mirror images). The project targets were met and a facile new access to β-fluoroamines, a privileged class of compounds contained in numerous therapeutics and bioactive compounds, was developed. The main challenge with the use of metal fluoride salts in synthesis was their insolubility in organic solvents. By designing a new catalyst capable of solubilizing a low cost fluoride source such as potassium fluoride while simultaneously controlling its reactivity, allowed for the first use of this reagent in asymmetric catalysis. The reaction has a simple set-up, is easily scalable and was successfully applied to the synthesis of numerous fluorinated drugs of well-known pharmaceuticals and bioactive compounds. This research opens new prospects to wider applications with other insoluble salts as reagents in organic synthesis as well as its translation to 18F radiochemistry to access new PET-tracers for imaging.
Data: CORDIS, © European Union
Project objective
Fluorine is a key element in modern pharmaceutical, agrochemicals and anesthetics. It is well-known that fluorine substitution can strongly improve drug efficiency by modifying the properties of compounds such as lipophilicity, metabolic stability, bioavailability and protein binding affinity. The selective installation of fluorine into molecules, especially in a catalytic way, still represents a major challenge for organic synthesis. To date, chemists have developed a range of transformations for carbon-fluorine bond formation yet the vast majority employs fluorine sources derived from F2, a highly toxic and corrosive gas. Only few processes involve the use of cheaper fluoride salts but often require expensive transition metals and suffer from a limited scope. With this proposal, we envision the development of a novel asymmetric metal-free catalytic reaction for carbon-fluorine bond formation by employing cost effective fluoride salts. The organocatalytic process we have designed is mechanistically unprecedented and will be applied to the synthesis of enantiopure fluoroamines which have a direct application in medicinal chemistry. This novel methodology will therefore provide a novel toolbox of reactions for chemists both from academia and industry and has the potential to have a strong impact on society by improving diagnostics, patient care and health-related quality of life.
Original text from CORDIS.
Participants
- THE CHANCELLOR, MASTERS AND SCHOLARS OF THE UNIVERSITY OF OXFORD · OxfordCoordinatorUnited Kingdom
Links
Data: CORDIS, © European Union
