Full Paper
Stereoselective Chemoenzymatic Preparation of β-Amino Esters: Molecular Modelling Considerations in Lipase-Mediated Processes and Application to the Synthesis of (S)-Dapoxetine
Article first published online: 9 FEB 2010
DOI: 10.1002/adsc.200900676
Copyright © 2010 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
Additional Information
How to Cite
Rodríguez-Mata, M., García-Urdiales, E., Gotor-Fernández, V. and Gotor, V. (2010), Stereoselective Chemoenzymatic Preparation of β-Amino Esters: Molecular Modelling Considerations in Lipase-Mediated Processes and Application to the Synthesis of (S)-Dapoxetine. Adv. Synth. Catal., 352: 395–406. doi: 10.1002/adsc.200900676
Publication History
- Issue published online: 17 FEB 2010
- Article first published online: 9 FEB 2010
- Manuscript Revised: 22 DEC 2009
- Manuscript Received: 29 SEP 2009
Funded by
- MEC. Grant Number: CTQ 2007-61126
- MICINN
Keywords:
- amino acids;
- dapoxetine;
- enzyme catalysis;
- hydrolysis;
- lipases;
- molecular modelling
Abstract
A wide range of optically active 3-amino-3-arylpropanoic acid derivatives have been prepared by means of a stereoselective chemoenzymatic route. The key step is the kinetic resolution of the corresponding β-amino esters. Although the enzymatic acylations of the amino group with ethyl methoxyacetate showed synthetically useful enantioselectivities, the hydrolyses of the ester group catalyzed by lipase from Pseudomonas cepacia have been identified as the optimal processes concerning both activity and enantioselectivity. The enantiopreference of this lipase in these reactions has been explained, at the molecular level, by using a fragment-based approach in which the most favoured binding site for a phenyl ring and the most stable conformation of the 3-aminopropanoate core nicely match the (S)-configuration of the major products. The conversion and enantioselectivity values of the enzymatic reactions have been compared in order to understand the influence of the different substitution patterns present in the phenyl ring. This chemoenzymatic route has been successfully applied to the preparation of a valuable intermediate in the synthesis of (S)-dapoxetine, which has been chemically synthesised in excellent optical purity.

1615-4169/asset/2258_left.gif?v=1&s=480b85eb3acd0e8f47639c75e9ec7a59d53cd074)
