class='kwd-title'>Keywords: Nanoprecipitation, F'/> Comparison of bulk and microfluidics methods for the formulation of poly-lactic-co-glycolic acid (PLGA) nanoparticles modified with cell-penetrating peptides of different architectures
首页> 美国卫生研究院文献>International Journal of Pharmaceutics: X >Comparison of bulk and microfluidics methods for the formulation of poly-lactic-co-glycolic acid (PLGA) nanoparticles modified with cell-penetrating peptides of different architectures
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Comparison of bulk and microfluidics methods for the formulation of poly-lactic-co-glycolic acid (PLGA) nanoparticles modified with cell-penetrating peptides of different architectures

机译:比较不同结构的可穿透细胞的肽修饰的聚乳酸-乙醇酸共聚物(PLGA)纳米粒子的本体和微流控方法

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class="kwd-title">Keywords: Nanoprecipitation, FTIR, Bio-nano interactions, Cell-penetrating peptides, PLGA nanoparticles class="head no_bottom_margin" id="ab010title">AbstractThe efficient and reproducible production of nanoparticles using bulk nanoprecipitation methods is still challenging because of low batch to batch reproducibility. Here, we optimize a bulk nanoprecipitation method using design of experiments and translate to a microfluidic device to formulate surface-modified poly-lactic-co-glycolic (PLGA) nanoparticles. Cell-penetrating peptides (CPPs) with a short, long linear or branched architecture were used for the surface modification of PLGA nanoparticles. The microfluidics method was more time efficient than the bulk nanoprecipitation method and allowed the formulation of uniform PLGA nanoparticles with a size of 150 nm, a polydispersity index below 0.150 and with better reproducibility in comparison to the bulk nanoprecipitation method. After surface modification the size of CPP-tagged PLGA nanoparticles increased to 160–180 nm and the surface charge of the CPP-tagged PLGA nanoparticles varied between −24 mV and +3 mV, depending on the architecture and concentration of the conjugated CPP. Covalent attachment of CPPs to the PLGA polymer was confirmed with FTIR by identifying the formation of an amide bond. The conjugation efficiency of CPPs to the polymeric PLGA nanoparticles was between 32 and 80%. The development and design of reproducible nanoformulations with tuneable surface properties is crucial to understand interactions at the nano-bio interface.
机译:<!-fig ft0-> <!-fig @ position =“ position” anchor“ == f4-> <!-fig mode =” anchred“ f5-> <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> class =“ kwd-title”>关键字:纳米沉淀,FTIR,生物纳米相互作用,细胞穿透肽,PLGA纳米颗粒 class =“ head no_bottom_margin“ id =” ab010title“>摘要由于批量对批量的重复性低,使用本体纳米沉淀法高效且可重复生产纳米颗粒仍然具有挑战性。在这里,我们使用实验设计优化整体纳米沉淀方法,并将其转化为微流体装置以配制表面改性的聚乳酸-乙醇酸共聚物(PLGA)纳米粒子。具有短,长线性或分支结构的细胞穿透肽(CPP)用于PLGA纳米粒子的表面修饰。与本体纳米沉淀法相比,微流控方法具有更高的时间效率,并且可以制备尺寸为150 nm,多分散指数低于0.150且具有更高重现性的均匀PLGA纳米粒子。经过表面修饰后,带有CPP标签的PLGA纳米颗粒的尺寸增加到160-180 nm,带有CPP标签的PLGA纳米颗粒的表面电荷在-24 mV和+3 mV之间变化,这取决于共轭CPP的结构和浓度。通过鉴定酰胺键的形成,用FTIR证实了CPP与PLGA聚合物的共价连接。 CPP与聚合物PLGA纳米粒子的共轭效率在32%至80%之间。具有可调节表面特性的可重现纳米制剂的开发和设计对于理解纳米生物界面之间的相互作用至关重要。

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