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聚乙二醇化脂质锚长度对创伤性脑损伤小鼠模型中脂质纳米颗粒药代动力学和活性的分析。

Analysis of PEG-lipid anchor length on lipid nanoparticle pharmacokinetics and activity in a mouse model of traumatic brain injury.

机构信息

Department of Nanoengineering, University of California, San Diego, La Jolla, CA, 92093, USA.

Department of Bioengineering, University of California, San Diego, La Jolla, CA, 92093, USA.

出版信息

Biomater Sci. 2023 Jun 13;11(12):4238-4253. doi: 10.1039/d2bm01846b.

Abstract

Traumatic brain injury (TBI) affects millions of people worldwide, yet there are currently no therapeutics that address the long-term impairments that develop in a large portion of survivors. Lipid nanoparticles (LNPs) are a promising therapeutic strategy that may address the molecular basis of TBI pathophysiology. LNPs are the only non-viral gene delivery platform to achieve clinical success, but systemically administered formulations have only been established for targets in the liver. In this work, we evaluated the pharmacokinetics and activity of LNPs formulated with polyethylene glycol (PEG)-lipids of different anchor lengths when systemically administered to a mouse model of TBI. We observed an increase in LNP accumulation and activity in the injured brain hemisphere compared to the uninjured contralateral brain hemisphere. Interestingly, transgene expression mediated by LNPs was more durable in injured brain tissue compared to off-target organs when compared between 4 and 24 hours. The PEG-lipid is an important component of LNP formulation necessary for the stable formation and storage of LNPs, but the PEG-lipid structure and content also has an impact on LNP function. LNP formulations containing various ratios of PEG-lipid with C18 (DSPE-PEG) and C14 (DMG-PEG) anchors displayed similar physicochemical properties, independent of the PEG-lipid compositions. As the proportion of DSPE-PEG was increased in formulations, blood circulation times of LNPs increased and the duration of expression increased. We also evaluated diffusion of LNPs after convection enhanced delivery (CED) in healthy brains and found LNPs distributed >1 mm away from the injection site. Understanding LNP pharmacokinetics and activity in TBI models and the impact of PEG-lipid anchor length informs the design of LNP-based therapies for TBI after systemic administration.

摘要

创伤性脑损伤(TBI)影响着全球数百万人,然而目前尚无治疗方法能够解决大部分幸存者中出现的长期损伤。脂质纳米颗粒(LNPs)是一种很有前途的治疗策略,可能针对 TBI 病理生理学的分子基础。LNPs 是唯一一种实现临床成功的非病毒基因传递平台,但系统给药的制剂仅在肝脏靶点中建立。在这项工作中,我们评估了用不同锚定长度的聚乙二醇(PEG)脂质配制的 LNPs 在 TBI 小鼠模型中系统给药时的药代动力学和活性。与对侧未损伤半球相比,我们观察到损伤半球的 LNP 积累和活性增加。有趣的是,与 4 至 24 小时相比,LNPs 介导的转基因表达在损伤脑组织中的持久性比在非靶器官中更高。PEG-脂质是 LNP 配方的重要组成部分,对于 LNPs 的稳定形成和储存是必需的,但 PEG-脂质的结构和含量也会影响 LNP 的功能。含有不同比例的 PEG-脂质与 C18(DSPE-PEG)和 C14(DMG-PEG)锚的 LNP 制剂具有相似的理化性质,与 PEG-脂质组成无关。随着制剂中 DSPE-PEG 比例的增加,LNPs 的血液循环时间延长,表达持续时间延长。我们还评估了 LNPs 在健康大脑中的对流增强递送(CED)后的扩散情况,发现 LNPs 分布在距注射部位 1 毫米以上的位置。了解 TBI 模型中 LNP 的药代动力学和活性以及 PEG-脂质锚定长度的影响,为系统给药后 TBI 的 LNP 治疗提供了设计信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2584/10262813/72c366a9e97c/d2bm01846b-f1.jpg

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