含有二酰甘油类似物的相分离脂质体的结构-功能关系。

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Panagiota Papadopoulou, Gabriela Arias-Alpizar, Pim Weeda, Thijs Poppe, Niels van Klaveren, Tomas Slíva, Dennis Aschmann, Winant van Os, Yun Zhang, Mohammad-Amin Moradi, Nico Sommerdijk, Frederick Campbell and Alexander Kros
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引用次数: 0

摘要

脂基纳米粒子的组成和形态会影响其在体内的整体行为。此前,我们证明了由 DSPC 和二酰基甘油脂质类似物(DOaG)组成的脂质体中的相分离现象会促使体内生物分布向斑马鱼胚胎中的特定内皮细胞亚群扩散。在没有传统靶向功能(如抗体、配体)的情况下,这种选择性完全是由独特的脂质体形态和组成介导的,其特点是在富含 DSPC 的磷脂双分子层中有一个富含 DOaG 的脂滴。这种相分离是由于 DOaG 脂质的几何形状及其在脂膜中形成非双层相的能力。为了研究相分离的基本原理并优化脂质体的胶体稳定性,我们通过合成具有不同分子特性(如酰基链的数量、长度和 Sn 位置以及饱和度或羰基取代基)的 DOaG 类似物库,进行了结构-功能关系研究。我们评估了这些脂质类似物组装成相分离脂质体的能力,并研究了它们在斑马鱼胚胎中的形态、胶体稳定性和体内生物分布。我们发现,需要含有不饱和、中等长度(C16-C18)脂肪酸的类似物才能获得胶体稳定、具有细胞特异性生物分布模式的相分离脂质体。此外,我们还观察到,与 sn-1,2 和 sn-1,3 异构体的混合物相比,使用纯 DOaG 异构体(酰基链位于 sn-1,3 位置)可获得胶体更稳定的脂质体。同样,我们观察到,加入脂肪尾短于 DSPC 的 DOaG 类似物以及 PEG 化,可使脂质体具有长期稳定性,同时保持细胞选择性生物分布。众所周知,二酰甘油可促进脂膜上的融合、脂质多态性、信号转导和蛋白质招募。在这项研究中,我们发现二酰甘油衍生物可以诱导脂质体中的相分离,从而为体内细胞特异性靶向释放潜力。我们相信,这些发现可为未来在脂基纳米药物中使用二酰甘油奠定基础,并可促进新型靶向递送策略的开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Structure–function relationship of phase-separated liposomes containing diacylglycerol analogues†

Structure–function relationship of phase-separated liposomes containing diacylglycerol analogues†

Structure–function relationship of phase-separated liposomes containing diacylglycerol analogues†

The composition and morphology of lipid-based nanoparticles can influence their overall in vivo behavior. Previously, we demonstrated that phase separation in liposomes composed of DSPC and a diacylglycerol lipid analogue (DOaG) drives the in vivo biodistribution towards a specific subset of endothelial cells in zebrafish embryos. In the absence of traditional targeting functionalities (e.g., antibodies, ligands), this selectivity is mediated solely by the unique liposome morphology and composition, characterized by a DOaG-rich lipid droplet within the DSPC-rich phospholipid bilayer. The phase separation is induced due to the geometry of DOaG lipid and its ability to create non-bilayer phases in lipid membranes. To investigate the underlying principles of phase separation and to optimize the liposome colloidal stability, we performed a structure–function relationship study by synthesizing a library of DOaG analogues with varying molecular properties, such as the number, length and sn-position of the acyl chains, as well as the degree of saturation or carbonyl substituents. We assessed the ability of these lipid analogues to assemble into phase-separated liposomes and studied their morphology, colloidal stability, and in vivo biodistribution in zebrafish embryos. We found that analogues containing unsaturated, medium length (C16–C18) fatty acids were required to obtain colloidally stable, phase-separated liposomes with cell-specific biodistribution patterns. Moreover, we observed that using the pure DOaG isomer, with acyl chains at the sn-1,3 positions, leads to more colloidally stable liposomes than when a mixture of sn-1,2 and sn-1,3 isomers is used. Similarly, we observed that incorporating a DOaG analogue with fatty tails shorter than DSPC, as well as PEGylation, endows liposomes with long term stability while retaining cell-selective biodistribution. Diacylglycerols are known to promote fusion, lipid polymorphism, signaling and protein recruitment on lipid membranes. In this study, we showed that diacylglycerol derivatives can induce phase separation in liposomes, unlocking the potential for cell-specific targeting in vivo. We believe that these findings can be the foundation for future use of diacylglycerols in lipid-based nanomedicines and could lead to the development of novel targeted delivery strategies.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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