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Provedor de dados:  BJPS
País:  Brazil
Título:  Comparative analyses of response surface methodology and artificial neural networks on incorporating tetracaine into liposomes
Autores:  Pereira,Ana Karina Vidal
Barbosa,Raquel de Melo
Fernandes,Marcelo Augusto Costa
Finkler,Leandro
Finkler,Christine Lamenha Luna
Data:  2020-01-01
Ano:  2020
Palavras-chave:  Local anesthetics
Liposomes
Response Surface Methodology
Artificial Neural Networks
Resumo:  This study evaluated the incorporation of tetracaine into liposomes by RSM (Response Surface Methodology) and ANN (Artificial Neural Networks) based models. RCCD (rotational central composite design) and ANN were performed to optimize the sonication conditions of particles containing 100 % lipid. Laser light scattering was used to perform measure hydrodynamic radius and size distribution of vesicles. The liposomal formulations were analyzed by incorporating the drug into the hydrophilic phase or the lipophilic phase. RCCD and ANN were conducted, having the lipid/cholesterol ratio and concentration of tetracaine as variables investigated and, the encapsulation efficiency and mean diameter of the vesicles as response variables. The optimum sonication condition set at a power of 16 kHz and 3 minutes, resulting in sizes smaller than 800 nm. Maximum encapsulation efficiency (39.7 %) was obtained in the hydrophilic phase to a tetracaine concentration of 8.37 mg/mL and 79.5:20.5% lipid/cholesterol ratio. Liposomes were stable for about 30 days (at 4 ºC), and the drug encapsulation efficiency was higher in the hydrophilic phase. The experimental results of RCCD-RSM and ANN techniques show ANN obtained more refined prediction errors that RCCD-RSM technique, therefore, ANN can be considered as an efficient mathematical method to characterize the incorporation of tetracaine into liposomes.
Tipo:  Info:eu-repo/semantics/article
Idioma:  Inglês
Identificador:  http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1984-82502020000100517
Editor:  Universidade de São Paulo, Faculdade de Ciências Farmacêuticas
Relação:  10.1590/s2175-97902019000317808
Formato:  text/html
Fonte:  Brazilian Journal of Pharmaceutical Sciences v.56 2020
Direitos:  info:eu-repo/semantics/openAccess
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