Quantitative Structure−Activity Relationships for the Enantioselectivity of Oxirane Ring-Opening Catalyzed by Epoxide Hydrolases

Simona Funar-Timofei, Takahiro Suzuki, Joachim A. Paier,§ Andreas Steinreiber,§ Kurt Faber,§ and Walter M. F. Fabian*§
Institute of Chemistry, Romanian Academy, Bul. Mihai Viteazul 24, 1900 Timisoara, Romania, Faculty of Economics, Toyo University, 2-11-10 Oka, Asaka, Saitama 351-8510, Japan, and Institut fr Chemie (IfC), Karl-Franzens Universitt Graz, Heinrichstrasse 28, A-8010 Graz, Austria
J. Chem. Inf. Comput. Sci., 2003, 43 (3), pp 934–940
DOI: 10.1021/ci020047z
Publication Date (Web): April 26, 2003
Copyright © 2003 American Chemical Society

 Romanian Academy.

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 Toyo University.

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 Karl-Franzens Universität Graz.

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*

 Corresponding author phone:  ++43-316-380-8636; fax:  ++43-316-380-9840; e-mail:  walter.fabian@uni-graz.at.

Abstract

The enantioselective ring-opening catalyzed by epoxide hydrolases originating from seven different sources of a series of 2,2-disubstituted oxiranes containing alkyl chains of different lengths, unsaturated (alkenyl, alkinyl) and aromatic groups as well as electronegative heteroatoms at various positions within the side chain was analyzed by quantitative structure−activity relationships. Models for the enantioselectivity were derived with the aid of multiple linear regression analysis (MLR) using several steric and electronic (quantum chemical) descriptors. On the basis of the models derived by MLR nonlinear modeling with artificial neural networks (ANN) was also done. Good predictive performance was observed for both modeling approaches. The models also indicate that different steric and/or electronic features account for the enantioselectivities observed for the individual epoxide hydrolases.

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History

  • Published In Issue May 27, 2003
  • Received August 2, 2002

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