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Methods of Liposomes Preparation: Formation and Control Factors of Versatile Nanocarriers for Biomedical and Nanomedicine Application

Overview
Journal Pharmaceutics
Publisher MDPI
Date 2022 Mar 26
PMID 35335920
Authors
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Abstract

Liposomes are nano-sized spherical vesicles composed of an aqueous core surrounded by one (or more) phospholipid bilayer shells. Owing to their high biocompatibility, chemical composition variability, and ease of preparation, as well as their large variety of structural properties, liposomes have been employed in a large variety of nanomedicine and biomedical applications, including nanocarriers for drug delivery, in nutraceutical fields, for immunoassays, clinical diagnostics, tissue engineering, and theranostics formulations. Particularly important is the role of liposomes in drug-delivery applications, as they improve the performance of the encapsulated drugs, reducing side effects and toxicity by enhancing its in vitro- and in vivo-controlled delivery and activity. These applications stimulated a great effort for the scale-up of the formation processes in view of suitable industrial development. Despite the improvements of conventional approaches and the development of novel routes of liposome preparation, their intrinsic sensitivity to mechanical and chemical actions is responsible for some critical issues connected with a limited colloidal stability and reduced entrapment efficiency of cargo molecules. This article analyzes the main features of the formation and fabrication techniques of liposome nanocarriers, with a special focus on the structure, parameters, and the critical factors that influence the development of a suitable and stable formulation. Recent developments and new methods for liposome preparation are also discussed, with the objective of updating the reader and providing future directions for research and development.

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References
1.
Franze S, Selmin F, Samaritani E, Minghetti P, Cilurzo F . Lyophilization of Liposomal Formulations: Still Necessary, Still Challenging. Pharmaceutics. 2018; 10(3). PMC: 6161153. DOI: 10.3390/pharmaceutics10030139. View

2.
Bouvrais H, Pott T, Bagatolli L, Ipsen J, Meleard P . Impact of membrane-anchored fluorescent probes on the mechanical properties of lipid bilayers. Biochim Biophys Acta. 2010; 1798(7):1333-7. DOI: 10.1016/j.bbamem.2010.03.026. View

3.
Miller C, Bondurant B, McLean S, McGovern K, OBrien D . Liposome-cell interactions in vitro: effect of liposome surface charge on the binding and endocytosis of conventional and sterically stabilized liposomes. Biochemistry. 1998; 37(37):12875-83. DOI: 10.1021/bi980096y. View

4.
Nagle J, Tristram-Nagle S . Structure of lipid bilayers. Biochim Biophys Acta. 2000; 1469(3):159-95. PMC: 2747654. DOI: 10.1016/s0304-4157(00)00016-2. View

5.
Koch M, Vachette P, Svergun D . Small-angle scattering: a view on the properties, structures and structural changes of biological macromolecules in solution. Q Rev Biophys. 2003; 36(2):147-227. DOI: 10.1017/s0033583503003871. View