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两性霉素B包封脂质纳米粒及其体外和体内特性。

Amphotericin B-entrapping lipid nanoparticles and their in vitro and in vivo characteristics.

作者信息

Jung Suk Hyun, Lim Deok Hwi, Jung Soon Hwa, Lee Jung Eun, Jeong Kyu-Sung, Seong Hasoo, Shin Byung Cheol

机构信息

Center for Drug Discovery Technologies, Korea Research Institute of Chemical Technology, Yuseong, Deajeon, Republic of Korea.

出版信息

Eur J Pharm Sci. 2009 Jun 28;37(3-4):313-20. doi: 10.1016/j.ejps.2009.02.021. Epub 2009 Mar 13.

Abstract

Lipid nanoparticles (LNPs) as nano-scale drug carriers that can entrap poorly water-soluble drugs such as amphotericin B (AmB) in aqueous solution with high drug entrapment efficiency were developed and their in vitro and in vivo characteristics were investigated. The AmB-entrapping plain, anionic and PEG (polyethylene glycol)-LNPs were prepared by using spontaneous emulsification and solvent evaporation (SESE) method. Mean particle size of the AmB-entrapping LNPs ranged from 72.9 to 159.1nm according to a variation of their lipid composition. The surface of AmB-entrapping PEG (0.2)-LNPs having 84.4+/-6nm of particle size was negatively charged showing -50.4+/-5mV of zeta-potential value. Entrapment efficiency of AmB in the PEG-LNPs reached up to 76.5+/-5%. Cytotoxicity of the AmB-entrapping LNPs against human kidney cells, 293 cells, was lower than those of the commercialized AmB-formulations such as Fungizone and AmBisome. Hematotoxicity of the AmB-entrapping LNPs against red blood cells was much lower than that of Fungizone but comparable to AmBisome. Antifungal activity in vitro of AmB-entrapping LNPs against Candida albicans and Aspergillus fumigatus was better than the commercialized AmB formulations showing their low minimum inhibitory concentration (MIC) for 90% of growth inhibition of fungi. The AmB-entrapping LNPs increased circulation half life of AmB in blood stream and it was comparable to AmBisome. Antifungal activity in vivo of the AmB-entrapping PEG-LNPs against Aspergillus fumigatus (ATCC 16424)-infected mice was superior to that of AmBisome. The drug-entrapping LNPs, especially PEG-LNPs, can be applicable to entrapment of poorly water-soluble drugs and enhancement of therapeutic efficacy by modulating pharmacokinetic behaviors and/or drug-related toxicities.

摘要

脂质纳米颗粒(LNPs)作为一种纳米级药物载体,能够在水溶液中高效包载难溶性药物,如两性霉素B(AmB),并对其体外和体内特性进行了研究。采用自乳化溶剂蒸发(SESE)法制备了包载AmB的普通、阴离子和聚乙二醇(PEG)修饰的LNPs。根据脂质组成的变化,包载AmB的LNPs平均粒径在72.9至159.1nm之间。粒径为84.4±6nm的包载AmB的PEG(0.2)-LNPs表面带负电荷,ζ电位值为-50.4±5mV。AmB在PEG-LNPs中的包封率高达76.5±5%。包载AmB的LNPs对人肾细胞293细胞的细胞毒性低于商业化的AmB制剂,如两性霉素B注射剂和安必素。包载AmB的LNPs对红细胞的血液毒性远低于两性霉素B注射剂,但与安必素相当。包载AmB的LNPs对白色念珠菌和烟曲霉的体外抗真菌活性优于商业化的AmB制剂,其对90%真菌生长抑制的最低抑菌浓度(MIC)较低。包载AmB的LNPs延长了AmB在血流中的循环半衰期,与安必素相当。包载AmB的PEG-LNPs对烟曲霉(ATCC 16424)感染小鼠的体内抗真菌活性优于安必素。包载药物的LNPs,尤其是PEG-LNPs,可用于包载难溶性药物,并通过调节药代动力学行为和/或药物相关毒性来提高治疗效果。

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