Department of Chemical Engineering and Biotechnology, Ariel University, Ariel, 4070000, Israel.
Post Graduate Department of Biosciences, Sardar Patel University, Bakrol, Anand, Gujarat, 388120, India.
Small. 2024 Oct;20(43):e2401990. doi: 10.1002/smll.202401990. Epub 2024 Jul 14.
This review explores the evolution of lipid-based nanoparticles (LBNPs) for drug delivery (DD). Herein, LBNPs are classified into liposomes and cell membrane-based nanoparticles (CMNPs), each with unique advantages and challenges. Conventional LBNPs possess drawbacks such as poor targeting, quick clearance, and limited biocompatibility. One of the possible alternatives to overcome these challenges is surface modification of nanoparticles (NPs) with materials such as polyethylene glycol (PEG), aptamers, antibody fragments, peptides, CD44, hyaluronic acid, folic acid, palmitic acid, and lactoferrin. Thus, the main focus of this review will be on the different surface modifications that enable LBNPs to have beneficial properties for DD, such as enhancing mass transport properties, immune evasion, improved stability, and targeting. Moreover, various CMNPs are explored used for DD derived from cells such as red blood cells (RBCs), platelets, leukocytes, cancer cells, and stem cells, highlighting their unique natural properties (e.g., biocompatibility and ability to evade the immune system). This discussion extends to the biomimicking of hybrid NPs accomplished through the surface coating of synthetic (mainly polymeric) NPs with different cell membranes. This review aims to provide a comprehensive resource for researchers on recent advances in the field of surface modification of LBNPs and CMNPs. Overall, this review provides valuable insights into the dynamic field of lipid-based DD systems.
这篇综述探讨了用于药物递送 (DD) 的基于脂质的纳米粒子 (LBNP) 的演变。在此,LBNP 分为脂质体和细胞膜纳米粒子 (CMNP),每种都有其独特的优势和挑战。传统的 LBNP 存在一些缺点,例如靶向性差、清除速度快和生物相容性有限。克服这些挑战的一种可能的替代方法是用材料如聚乙二醇 (PEG)、适配体、抗体片段、肽、CD44、透明质酸、叶酸、棕榈酸和乳铁蛋白对纳米粒子 (NP) 进行表面修饰。因此,本综述的主要重点将放在不同的表面修饰上,这些修饰使 LBNP 具有 DD 的有益特性,例如增强质量传递特性、免疫逃逸、提高稳定性和靶向性。此外,还探讨了源自细胞的各种 CMNP 用于 DD,如红细胞 (RBC)、血小板、白细胞、癌细胞和干细胞,突出了它们独特的天然特性(例如,生物相容性和逃避免疫系统的能力)。这种讨论扩展到通过用不同细胞膜对合成(主要是聚合物)NP 进行表面涂层来实现的混合 NP 的仿生学。本综述旨在为研究人员提供关于 LBNP 和 CMNP 表面修饰的最新进展的综合资源。总的来说,本综述提供了对基于脂质的 DD 系统这一动态领域的宝贵见解。