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通过将脂质纳米粒子结构与自动化单颗粒组成分析相结合来设计磷脂酶响应性纳米载体。

Coupling Lipid Nanoparticle Structure and Automated Single-Particle Composition Analysis to Design Phospholipase-Responsive Nanocarriers.

机构信息

Department of Medical Biochemistry and Biophysics, Karolinska Institutet, Stockholm, SE-171 77, Sweden.

Department of Materials, Department of Bioengineering, and Institute of Biomedical Engineering, Imperial College London, London, SW7 2AZ, UK.

出版信息

Adv Mater. 2022 Jul;34(26):e2200839. doi: 10.1002/adma.202200839. Epub 2022 May 18.

Abstract

Lipid nanoparticles (LNPs) are versatile structures with tunable physicochemical properties that are ideally suited as a platform for vaccine delivery and RNA therapeutics. A key barrier to LNP rational design is the inability to relate composition and structure to intracellular processing and function. Here Single Particle Automated Raman Trapping Analysis (SPARTA) is combined with small-angle X-ray and neutron scattering (SAXS/SANS) techniques to link LNP composition with internal structure and morphology and to monitor dynamic LNP-phospholipase D (PLD) interactions. This analysis demonstrates that PLD, a key intracellular trafficking mediator, can access the entire LNP lipid membrane to generate stable, anionic LNPs. PLD activity on vesicles with matched amounts of enzyme substrate is an order of magnitude lower, indicating that the LNP lipid membrane structure can be used to control enzyme interactions. This represents an opportunity to design enzyme-responsive LNP solutions for stimuli-responsive delivery and diseases where PLD is dysregulated.

摘要

脂质纳米颗粒(LNPs)是一种具有可调节理化性质的多功能结构,非常适合作为疫苗传递和 RNA 治疗的平台。LNP 合理设计的一个关键障碍是无法将组成和结构与细胞内加工和功能联系起来。在这里,单颗粒自动拉曼捕获分析(SPARTA)与小角 X 射线和中子散射(SAXS/SANS)技术相结合,将 LNP 的组成与内部结构和形态联系起来,并监测动态 LNP-磷脂酶 D(PLD)相互作用。该分析表明,PLD 是一种关键的细胞内运输介质,可以进入整个 LNP 脂质膜,生成稳定的阴离子 LNP。具有匹配酶底物量的囊泡上的 PLD 活性低一个数量级,这表明 LNP 脂质膜结构可用于控制酶相互作用。这为设计酶响应性 LNP 溶液提供了机会,可用于刺激响应性递药和 PLD 失调的疾病。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1602/7615489/c421436664be/EMS175893-f001.jpg

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