沈爱俊, 夏登宁, 甘勇, 李娟. 聚合物电解质层层组装脂质纳米粒提高多柔比星的口服吸收J. 药学学报, 2016,51(7): 1136-1143. doi: 10.16438/j.0513-4870.2016-0108
引用本文: 沈爱俊, 夏登宁, 甘勇, 李娟. 聚合物电解质层层组装脂质纳米粒提高多柔比星的口服吸收J. 药学学报, 2016,51(7): 1136-1143. doi: 10.16438/j.0513-4870.2016-0108
SHEN Ai-jun, XIA Deng-ning, GAN Yong, LI Juan. Polyelectrolyte layer-by-layer assembled lipid nanoparticles for improving oral absorption of doxorubicinJ. Acta Pharmaceutica Sinica, 2016,51(7): 1136-1143. doi: 10.16438/j.0513-4870.2016-0108
Citation: SHEN Ai-jun, XIA Deng-ning, GAN Yong, LI Juan. Polyelectrolyte layer-by-layer assembled lipid nanoparticles for improving oral absorption of doxorubicinJ. Acta Pharmaceutica Sinica, 2016,51(7): 1136-1143. doi: 10.16438/j.0513-4870.2016-0108

聚合物电解质层层组装脂质纳米粒提高多柔比星的口服吸收

Polyelectrolyte layer-by-layer assembled lipid nanoparticles for improving oral absorption of doxorubicin

  • 摘要: 载多柔比星(DOX)脂质纳米粒经聚合物电解质层层组装后,增加脂质纳米粒在胃肠道内的酶稳定性,以提高DOX的口服吸收。采用热熔均质-超声法制备了载DOX脂质纳米粒;利用静电作用将带相反电荷的聚合物电解质γ-聚谷氨酸(γ-PGA)和壳聚糖(chitosan, CS)层层组装在脂质纳米粒表面,得到聚合物电解质层层组装的载DOX脂质纳米粒(DOX-NPs/CS/γ-PGA);采用动态光散射激光粒度仪测定了纳米粒的粒径、粒度分布及zeta电位;考察聚合物电解质层层组装后的脂质纳米粒的体外药物释放和在体外模拟消化道环境下的酶解稳定性;以人结肠癌细胞Caco-2为细胞模型,对纳米粒的摄取进行了研究;以SD大鼠为动物模型对口服吸收后的药物动力学进行了研究。结果表明,制备的DOX-NPs/CS/γ-PGA平均粒径为180.6±5.4 nm,粒度分布均一,多分散性指数(PDI)为0.220±0.02, zeta电位为-38.53±0.29 mV;体外药物释放研究表明,采用聚合物电解质在脂质纳米粒表面层层组装后延缓DOX的释放,同时降低脂质纳米粒被脂肪酶降解的速率;细胞摄取实验研究表明,该组制剂的细胞摄取明显高于DOX溶液组;动物实验研究表明,经聚合物电解质层层组装后的脂质纳米粒可明显提高DOX的口服吸收,DOX-NPs/CS/γ-PGA的Cmaxtmax分别为0.76±0.25 μg·mL-1和0.5 h,AUC0-24h是溶液参比制剂的3.02倍,与DOX溶液口服组相比,其相对生物利用度是302.46%。通过聚合物电解质在脂质纳米载体表面进行层层组装,延缓了药物释放,降低了消化道酶对载体的酶解,增加了其在消化道内的稳定性,提高了DOX的口服吸收。

     

    Abstract: Polyelectrolyte layer-by-layer assembled lipid nanoparticles (NPs) were prepared to improve their stability against lipolysis in gastrointestinal tract, and efficiency of oral absorption of doxorubicin (DOX). The lipid NPs were prepared by hot melt-probe sonication method. The polyelectrolyte layer-by-layer assembled lipid NPs (DOX-NPs/CS/γ-PGA) was prepared by layer-by-layer self-assembling polyelectrolytes cationic chitosan (CS) and anionic poly (γ-glutamic acid) (γ-PGA) on the surface of lipid NPs based on electrostatic interaction. The particle size, polydispersity index (PDI) and zeta potential of lipid NPs and DOX-NPs/CS/γ-PGA were determined by dynamic light scattering (DLS). The in vitro drug release was determined in pH 1.2 HCl solution and pH 6.8 phosphate buffer solution (PBS). The stability of lipid NPs against lipolysis was evaluated in simulated gastrointestinal medium containing lipase. The cellular uptake of lipid NPs and DOX-NPs/CS/γ-PGA was evaluated in Caco-2 cell model. The pharmacokinetic of DOX after oral absorption was studied in SD rats. Results showed that the average particle size and zeta potential of DOX-NPs/CS/γ-PGA were 180.6±5.4 nm and -38.53±0.29 mV, respectively. The DOX-NPs/CS/γ-PGA effectively slowed down the release of DOX from nanoparticles, and decreased the lipolysis of lipid NPs in simulated gastrointestinal medium. The cell study showed that DOX-loaded lipid NPs and DOX-NPs/CS/γ-PGA remarkably enhanced the cell uptake in comparison with DOX solution. The DOX-NPs/CS/γ-PGA significantly improved oral absorption of DOX compared with DOX-loaded lipid NPs. The Cmax, tmax were 0.76±0.25 μg·mL-1 and 0.5 h, respectively; AUC0-24h was 3.02 folds and the relative bioavailability was 302.46% with DOX solution as reference. The stability of lipid NPs against lipolysis and drug release were significantly improved by layer-by-layer assembling, leading to an improved oral absorption.

     

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