Alternative Methods for Pulmonary-Administered Drugs Metabolism: A Breath of Change

Author:

Cabral Lucio Mendes1ORCID,Suzuki Érika Yoko1ORCID,Simon Alice1ORCID,Souza Domingos Thaisa Francielle2ORCID,de Azevedo Abrahim Vieira Bárbara3,de Souza Alessandra Mendonça Teles3ORCID,Rodrigues Carlos Rangel3ORCID,de Sousa Valeria Pereira1ORCID,do Carmo Flávia Almada1ORCID

Affiliation:

1. Laboratory of Industrial Technology, Department of Drugs and Pharmaceutics, Faculty of Pharmacy, Universidade Federal do Rio de Janeiro, Rio de Janeiro, Brazil

2. BIODATA Computing Service & Consulting, Rio de Janeiro, Brazil

3. Laboratory of Molecular Modeling & QSAR, Faculty of Pharmacy, Universidade Federal do Rio de Janeiro, Rio de Janeiro, Brazil

Abstract

Abstract: Prediction of pulmonary metabolites following inhalation of a locally acting pulmonary drug is essential to the successful development of novel inhaled medicines. The lungs present metabolic enzymes, therefore they influence drug disposal and toxicity. The present review provides an overview of alternative methods to evaluate the pulmonary metabolism for the safety and efficacy of pulmonary delivery systems. In vitro approaches for investigating pulmonary drug metabolism were described, including subcellular fractions, cell culture models and lung slices as the main available in vitro methods. In addition, in silico studies are promising alternatives that use specific software to predict pulmonary drug metabolism, determine whether a molecule will react with a metabolic enzyme, the site of metabolism (SoM) and the result of this interaction. They can be used in an integrated approach to delineate the major cytochrome P450 (CYP) isoforms to rationalize the use of in vivo methods. A case study about a combination of experimental and computational approaches was done using fluticasone propionate as an example. The results of three tested software, RSWebPredictor, SMARTCyp and XenoSite, demonstrated greater probability of the fluticasone propionate being metabolized by CYPs 3A4 at the S1 atom of 5-S-fluoromethyl carbothioate group. As the in vitro studies were not able to directly detect pulmonary metabolites, those alternatives in silico methods may reduce animal testing efforts, following the principle of 3Rs (Replacement, Reduction and Refinement), and contribute to the evaluation of pharmacological efficacy and safety profiles of new drugs in development.

Funder

CNPq

Publisher

Bentham Science Publishers Ltd.

Subject

Drug Discovery,Pharmacology,General Medicine

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