In-situ formation of nanoparticles from drug-loaded 3D polymeric matrices

Na minha lista:
Detalhes bibliográficos
Autor principal: Pires, Felipe Queiroz
Data de Publicação: 2023
Outros Autores: Gross, Idejan Padilha, Barreto, Livia Cristina Lira de Sá, Gratieri, Taís, Gelfuso, Guilherme Martins, Báo, Sônia Nair, Cunha Filho, Marcílio Sérgio Soares da
Formato: Artigo
Idioma: eng
Fonte: Repositório Institucional da UnB
Texto Completo: http://repositorio.unb.br/handle/10482/47633
https://doi.org/10.1016/j.ejps.2023.106517
Resumo: The in-situ formation of nanoparticles from polymer-based solid medicines, although previously described, has been overlooked despite its potential to interfere with oral drug bioavailability. Such polymeric pharmaceuticals are becoming increasingly common on the market and can become even more popular due to the dizzying advance of 3D printing medicines. Hence, this work aimed to study this phenomenon during the dissolution of 3D printed tablets produced with three different polymers, hydroxypropylmethylcellulose acetate succinate (HPMCAS), polyvinyl alcohol (PVA), and Eudragit RL PO® (EUD RL) combined with plasticizers and the model drug naringenin (NAR). The components’ interaction, dissolution behavior, and characteristics of the formed particles were investigated employing thermal, spectroscopic, mechanical, and chromatographic assays. All the systems generated stable spherical-shaped particles throughout 24 h, encapsulating over 25% of NAR. Results suggest encapsulation efficiencies variations may depend on interactions between polymer-drug, drug-plasti cizer, and polymer-plasticizer, which formed stable nanoparticles even in the drug absence, as observed with the HPMCAS and EUD RL formulations. Additionally, components solubility in the medium and previous formulation treatments are also a decisive factor for nanoparticle formation. In particular, the treatment provided by hot-melt extrusion and FDM 3D printing affected the dissolution efficiency enhancing the interaction between the com ponents, reverberating on particle size and particle formation kinetics mainly for HPMCAS and EUD RL. In conclusion, the 3D printing process influences the in-situ formation of nanoparticles, which can directly affect oral drug bioavailability and needs to be monitored.