Danaei M, Kalantari M, Raji M, Samareh Fekri H, Saber R, Asnani G P, Mortazavi S M, Mozafari M R, Rasti B, Taheriazam A
Australasian Nanoscience and Nanotechnology Initiative, 8054 Monash University LPO, Clayton, 3168 Victoria, Australia.
Sinhgad Technical Education Society's, Smt. Kashibai Navale College of Pharmacy, Kondhwa, Pune 411 048, (Savitribai Phule Pune University), Maharashtra, India.
Heliyon. 2018 Dec 26;4(12):e01088. doi: 10.1016/j.heliyon.2018.e01088. eCollection 2018 Dec.
There has been a steady increase in the interest towards employing nanoliposomes as colloidal drug delivery systems, particularly in the last few years. Their biocompatibility nature along with the possibility of encapsulation of lipid-soluble, water-soluble and amphipathic molecules and compounds are among the advantages of employing these lipidic nanocarriers. A challenge in the successful formulation of nanoliposomal systems is to control the critical physicochemical properties, which impact their in vivo performance, and validating analytical techniques that can adequately characterize these nanostructures. Of particular interest are the chemical composition of nanoliposomes, their phase transition temperature, state of the encapsulated material, encapsulation efficiency, particle size distribution, morphology, internal structure, lamellarity, surface charge, and drug release pattern. These attributes are highly important in revealing the supramolecular arrangement of nanoliposomes and incorporated drugs and ensuring the stability of the formulation as well as consistent drug delivery to target tissues. In this article, we present characterization of nanoliposomal formulations as an example to illustrate identification of key in vitro characteristics of a typical nanotherapeutic agent. Corresponding analytical techniques are discussed within the context of nanoliposome assessment, single particle analysis and ensuring uniform manufacture of therapeutic formulations with batch-to-batch consistency.
近年来,人们对将纳米脂质体用作胶体药物递送系统的兴趣一直在稳步增长。这些脂质纳米载体的优势包括其生物相容性,以及能够包封脂溶性、水溶性和两亲性分子及化合物的可能性。成功制备纳米脂质体系统面临的一个挑战是控制关键的物理化学性质,这些性质会影响其体内性能,并验证能够充分表征这些纳米结构的分析技术。特别值得关注的是纳米脂质体的化学成分、相变温度、包封材料的状态、包封效率、粒径分布、形态、内部结构、层数、表面电荷和药物释放模式。这些属性对于揭示纳米脂质体和所含药物的超分子排列,确保制剂的稳定性以及向靶组织持续递送药物非常重要。在本文中,我们以纳米脂质体制剂的表征为例,来说明典型纳米治疗剂关键体外特性的识别。在纳米脂质体评估、单颗粒分析以及确保治疗制剂批次间一致性的均匀制造的背景下,讨论了相应的分析技术。