水飞蓟宾
Zeta电位
析因实验
分散性
纳米颗粒
化学
粒径
壳聚糖
细胞毒性
赫拉
响应面法
纳米技术
分式析因设计
Box-Behnken设计
表面电荷
色谱法
G2水电站
药物输送
体外
材料科学
透射电子显微镜
化学工程
中心组合设计
作者
Rafaelle de Sertorio dos Santos,Ariane Krause Padilha Lorenzett,Gabriela Casa Grande de Matos,Patricia Mendonca,Vanderlei Aparecido de Lima,Rubiana Mara Mainardes
出处
期刊:ACS omega
[American Chemical Society]
日期:2026-03-06
卷期号:11 (10): 16673-16686
被引量:1
标识
DOI:10.1021/acsomega.5c13167
摘要
factorial design to investigate the effects of zein concentration, chitosan concentration, incubation time, and organic-to-water ratio on particle size, polydispersity index (PDI), zeta potential, and encapsulation efficiency. The factorial approach enabled systematic evaluation of the most influential variables and their interactions, with zein and chitosan concentrations exerting major effects on particle size and surface charge, while the organic-to-water ratio significantly affected particle size distribution. The optimized formulation produced nanoparticles with a mean diameter of approximately 145 nm, low PDI (∼0.19), high positive zeta potential (∼+40 mV), and high encapsulation efficiency (∼90%). Transmission electron microscopy revealed spherical and homogeneous nanoparticles, with enhanced structural organization upon SLB incorporation. In vitro cytotoxicity assays in HeLa and SiHa cervical cancer cell lines showed that nanoencapsulation modulates carrier-associated cytotoxicity in a cell line- and concentration-dependent manner. Overall, this study demonstrates the utility of factorial design as a formulation-centered strategy for engineering zein-chitosan nanoparticles with well-defined physicochemical and in vitro properties.
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