Peptides Trapping Dioxins: A Docking-Based Inverse Screening Approach

Author:

Perez German1,Mascini Marcello2,Lanzone Valentina2,Sergi Manuel2,Del Carlo Michele2,Esposito Mauro3,Compagnone Dario2

Affiliation:

1. Laboratory of Computational and Theoretical Chemistry, Faculty of Chemistry, University of Havana, 10400 Havana, Cuba

2. Faculty of Bioscience and Technology for Food, Agriculture, and Environment, University of Teramo, 64023 Teramo, Italy

3. Istituto Zooprofilattico Sperimentale del Mezzogiorno, 80055 Portici, Italy

Abstract

A rapid and cost-effective computational methodology for designing and rationalizing the selection of small peptides as receptors for dioxin-like compounds was proposed. The backbone of the dioxin Ah receptor binding site was used to design a series of penta- and hexapeptide libraries, with 1400 elements in total. Peptide flexibility was considered and 10 conformers were found to be a good option to represent peptide conformational space with fair speed-accuracy ratio. Each peptide conformer was treated as a possible receptor, generating a dedicated box and then running a docking process using as ligands a family of 76 dibenzo-p-dioxins and 113 dibenzofurans mono- and polychlorinated. Significant predictions were confirmed by comparing primary structure of top and bottom ranked peptides binding dioxins confirming that scrambled positions of the same amino acids gave completely different predicted binding. The hexapeptide EWFQPW, with the best binding score, was chosen as selective sorbent material in solid-phase extraction. The retention performances were tested using the 2,3,7,8-tetrachlorodibenzo-p-dioxin and two polychlorinated biphenyls in order to verify the hexapeptide specificity. The solid-phase extraction experimental procedure was optimized, and analytical parameters of hexapeptide sorbent material were compared with the resin without hexapeptide and a commercial reversed phase cartridge.

Funder

Italian Ministry of Health

Publisher

Hindawi Limited

Subject

General Chemistry

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