Dichello Gennaro A, Fukuda Takahiro, Maekawa Toru, Whitby Raymond L D, Mikhalovsky Sergey V, Alavijeh Mohammed, Pannala Ananth S, Sarker Dipak K
Biomaterials & Drug Delivery Research Group, School of Pharmacy & Biomolecular Sciences, University of Brighton, Brighton BN2 4GJ, United Kingdom.
Bio-Nano Electronics Research Centre, Toyo University, Kawagoe, Japan.
Eur J Pharm Sci. 2017 Jul 15;105:55-63. doi: 10.1016/j.ejps.2017.05.001. Epub 2017 May 3.
The development of liposome-nanoparticle colloid systems offers a versatile approach towards the manufacture of multifunctional therapeutic platforms. A strategy to encapsulate small metallic nanoparticles (<4nm) within multilamellar vesicles, effected by exploiting electrostatic interactions was investigated. Two liposome-gold nanoparticle (lipo-GNP) systems were prepared by the reverse-phase evaporation method employing cationic or anionic surface functionalised particles in combination with oppositely charged lipid compositions with subsequent post-formulation PEGylation. Structural characterisation using electron microscopy and elemental analysis revealed a regular distribution of GNPs between adjacent lipid bilayers of intact liposomes. Nanoparticle encapsulation efficacy of the two lipo-GNP systems was revealed to be significantly different (p=0.03), evaluated by comparing the ratio of measured lipid to gold concentration (loading content) determined by a colorimetric assay and atomic emission spectroscopy, respectively. It was concluded that the developed synthetic strategy is an effective approach for the preparation of liposome-nanoparticle colloids with potential to control the relative concentration of encapsulated particles to lipids by providing favourable electrostatic interactions.
脂质体-纳米颗粒胶体系统的发展为多功能治疗平台的制造提供了一种通用方法。研究了一种通过利用静电相互作用将小金属纳米颗粒(<4nm)包裹在多层囊泡中的策略。采用阳离子或阴离子表面功能化颗粒与带相反电荷的脂质组合物,通过反相蒸发法制备了两种脂质体-金纳米颗粒(lipo-GNP)系统,并在制剂后进行聚乙二醇化。使用电子显微镜和元素分析进行的结构表征显示,完整脂质体相邻脂质双层之间的金纳米颗粒分布规律。通过分别比较比色法和原子发射光谱法测定的脂质与金浓度之比(负载量)来评估,结果显示两种lipo-GNP系统的纳米颗粒包封效率存在显著差异(p=0.03)。得出的结论是,所开发的合成策略是制备脂质体-纳米颗粒胶体的有效方法,通过提供有利的静电相互作用,有可能控制包封颗粒与脂质的相对浓度。