Zoghi Alaleh, Khosravi-Darani Kianoush, Omri Abdelwahab
Department of Chemical Engineering, Science and Research Branch, Islamic Azad University, Tehran, Iran.
Department of Food Technology, National Nutrition and Food Technology Research Institute, Faculty of Nutrition Sciences and Food Technology, Shahid Beheshti University of Medical Sciences, P.O. Box 19395-4741, Tehran, Iran.
Mini Rev Med Chem. 2018;18(4):324-344. doi: 10.2174/1389557516666161031120752.
Liposomes vesicles consisting of one or more phospholipid bilayers are microcarriers used in numerous scientific disciplines. During the last decade, nanostructured liposomes, or nanoliposomes, have been utilized in biomedical investigations due to their unique characteristics including nanoscale size, sustained release, biocompatibility, and biodegradability. The extensive literature covering the field of liposomology is an indication of increasing interests and applications in many areas, especially as carriers of active substances in nanomedicine, agriculture, food technology, and cosmetics. Nanoliposomes application as drug carriers resulted in more effective treatment of such diseases as cancers, atherosclerosis, infectious diseases and ocular disorders. In this communication, we will introduce commonly used methods for the preparation of liposome, pointing the therapeutic report of liposomes, and explaining the common process variables in liposome encapsulations. We will also review different screening methods and full and fractional factorial designs that impact independent variables in certain applications and the end-user response. We will review such key factors as encapsulation efficiency, loading capacity, particles' biologic, structural and physicochemical properties, and lipid composition in an effort to provide a comprehensive guide for liposomologists in different fields of interest.
脂质体是由一层或多层磷脂双层组成的囊泡,是在众多科学学科中使用的微载体。在过去十年中,纳米结构脂质体或纳米脂质体因其独特的特性,包括纳米级尺寸、缓释、生物相容性和生物可降解性,已被用于生物医学研究。涵盖脂质体学领域的大量文献表明,在许多领域,尤其是作为纳米医学、农业、食品技术和化妆品中活性物质的载体,人们对其兴趣和应用不断增加。纳米脂质体作为药物载体的应用使得对癌症、动脉粥样硬化、传染病和眼部疾病等疾病的治疗更加有效。在本交流中,我们将介绍制备脂质体的常用方法,指出脂质体的治疗报告,并解释脂质体包封中的常见工艺变量。我们还将回顾不同的筛选方法以及全因子设计和部分因子设计,这些设计会影响某些应用中的自变量和最终用户的反应。我们将回顾诸如包封效率、载药量、颗粒的生物学、结构和物理化学性质以及脂质组成等关键因素,以便为不同感兴趣领域的脂质体学家提供全面的指南。
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