苯硝唑
聚乙二醇
聚合物
PEG比率
化学
Zeta电位
溶解度
药品
溶解
背景(考古学)
材料科学
组合化学
化学工程
有机化学
纳米技术
药理学
克鲁兹锥虫
纳米颗粒
万维网
计算机科学
工程类
寄生虫寄主
医学
古生物学
经济
财务
生物
作者
Lucas Resende Dutra Sousa,Maria L. S. Azevedo,Dayana Rocha,Ângela Leão Andrade,Tatiane Roquete Amparo,Orlando David Henrique dos Santos,Janaína Brandão Seibert,Luciano Pereira,Paula Melo de Abreu Vieira,Cláudia Martins Carneiro,Ana Paula Moreira Barboza,Bernardo R. A. Neves,Policarpo Ademar Sales,Silvane Maria Fonseca Murta,Kátia Monteiro Novack,Viviane Martins Rebello dos Santos
标识
DOI:10.21577/0103-5053.20210017
摘要
Selecting a polymer depends on its characteristics, the properties of the drug and of the remaining ingredients in the formulation. The drug, when incorporated into a polymeric matrix, can show several advantages when compared with its conventional form. In this context, this work describes the preparation and characterization of polyethylene glycol (PEG 4000) and its derivative particles loaded with benznidazole, as well as evaluates their trypanocidal activity. In this work, reactions to modify the PEG 4000 polymer and the subsequent incorporation of the benznidazole were made. The nuclear magnetic resonance (NMR) analysis confirmed the efficiency in modifying the PEG chains. The morphology of polymeric films was observed by atomic force microscopy (AFM) and showed considerable changes on the film organization. The acetylation of PEG favored the stability of the system and an increase in the zeta potential from -14.83 to -25.54 mV was observed. Although encapsulation efficiency values between 30.14 and 39.48% were found, the enhanced benznidazole dissolution profile by microparticles enables the use of lower drug concentrations. This fact can be proven by the increased trypanocidal effect of benznidazole when encapsulated in BP3 microparticles. Finally, the high selectivity of the formulations for trypanocidal action guarantees their safety as an alternative for the treatment of the Chagas disease.
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