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采用响应面法优化 BSA 纳米粒的 PEGylation 条件。

Optimization of PEGylation conditions for BSA nanoparticles using response surface methodology.

机构信息

Biotechnology Group, Chemical Engineering Department, Faculty of Engineering, Tarbiat Modares University, P.O. Box 14115-143, Tehran, Iran.

出版信息

AAPS PharmSciTech. 2010 Sep;11(3):1206-11. doi: 10.1208/s12249-010-9487-8. Epub 2010 Aug 3.

Abstract

Chemical coupling of polyethylene glycol (PEG) to proteins or particles (PEGylation), prolongs their circulation half-life by greater than 50-fold, reduces their immunogenicity, and also promotes their accumulation in tumors due to enhanced permeability and retention effect. Herein, phase separation method was used to prepare bovine serum albumin (BSA) nanoparticles. PEGylation of BSA nanoparticles was performed by SPA activated mPEG through their free amino groups. Effect of process variables on PEGylation efficiency of BSA nanoparticles was investigated and optimized through response surface methodology with the amount of free amino groups as response. Optimum conditions was found to be 32.5 g/l of PEG concentration, PEG-nanoparticle incubation time of 10 min, incubation temperature of 27°C, and pH of 7 for 5 mg of BSA nanoparticles in 1 mL phosphate buffer. Analysis of data showed that PEG concentration had the most noticeable effect on the amount of PEGylated amino groups, but pH had the least. Mean diameter and zeta potential of PEGylated nanoparticles under these conditions were 217 nm and -14 mV, respectively. In conclusion, PEGylated nanoparticles demonstrated reduction of the negative surface charge compared to the non modified particles with the zeta potential of -31.7 mV. Drug release from PEGylated nanoparticles was almost slower than non-PEGylated ones, probably due to existence of a PEG layer around PEGylated particles which makes an extra resistance in opposition to drug diffusion.

摘要

聚乙二醇(PEG)与蛋白质或颗粒的化学偶联(PEGylation)可使它们的循环半衰期延长 50 倍以上,降低其免疫原性,并且由于增强的渗透性和保留效应,还促进它们在肿瘤中的积累。本文采用相分离法制备牛血清白蛋白(BSA)纳米颗粒。通过 SPA 激活的 mPEG 与游离氨基反应,将 BSA 纳米颗粒 PEGylation。通过响应面法,以游离氨基的量为响应,考察了过程变量对 BSA 纳米颗粒 PEGylation 效率的影响,并进行了优化。发现最佳条件为:PEG 浓度 32.5 g/L,PEG-纳米颗粒孵育时间 10 min,孵育温度 27°C,pH 值 7,1 mL 磷酸盐缓冲液中 5 mg BSA 纳米颗粒。数据分析表明,PEG 浓度对 PEG 化氨基的量有最显著的影响,而 pH 值的影响最小。在这些条件下,PEG 化纳米颗粒的平均直径和 zeta 电位分别为 217nm 和-14mV。总之,与未修饰的颗粒相比,PEG 化纳米颗粒的表面负电荷减少,zeta 电位为-31.7mV。PEG 化纳米颗粒的药物释放速度几乎比非 PEG 化纳米颗粒慢,可能是由于 PEG 化颗粒周围存在 PEG 层,这增加了药物扩散的阻力。

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