The kinetics of endosomal disruption reveal differences in lipid nanoparticle induced cellular toxicity

IF 10.5 1区 医学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Stephanie M. Bates, Michael J. Munson, Vitor Trovisco, Sara Pereira, Sophie R. Miller, Alan Sabirsh, Catherine J. Betts, Erik Oude Blenke, Nicholas J. Gay
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Abstract

Lipid nanoparticles (LNPs) are widely used to deliver mRNA therapeutics and vaccines; but treatment related inflammation can pose safety issues for applications requiring higher doses or repeat administration. The mechanisms underlying the toxicity of LNPs are not fully understood, so improved understanding of the intracellular pathways that sense LNP entry into the cell will facilitate LNP design for successful deployment across different therapeutic applications.Here we explored how experimental conditions can influence the uptake of LNP-delivered mRNA in vitro and modulate both the expression pattern of the cargo and cytotoxicity. We found that altering serum protein concentrations in culture media influence cellular uptake of LNPs, resulting in expression patterns that were not dose dependent. Additionally, changing or removing the mRNA cargo did not significantly affect cytotoxicity, indicating that this response was driven by the LNP components. Using a fluorescent Galectin 9 reporter system, kinetic experiments with different serum protein concentrations were conducted to measure LNP uptake, endosomal escape and cargo expression to systematically explore how these processes are related to cytotoxicity. We demonstrate that cytotoxicity is driven by both endosomal disruption and lipid chemistry.Our finding that the rate and magnitude of endosomal disruption correlates with cytotoxicity provide a new focus for investigation. Developing LNPs with optimal mRNA release mechanisms, and a reduced rate and duration of endosomal disruption, could alleviate some of the safety concerns associated with LNP/mRNA. Finally, we found that individual cationic lipid components can also influence cytotoxicity that is independent of cargo delivery, implying that at least some of the cytotoxicity can be mitigated with chemical design.

Abstract Image

内体破坏的动力学揭示了脂质纳米颗粒诱导细胞毒性的差异
脂质纳米颗粒(LNPs)被广泛用于递送mRNA疗法和疫苗;但是,治疗相关的炎症可能会对需要更高剂量或重复给药的应用带来安全问题。LNP的毒性机制尚不完全清楚,因此对LNP进入细胞的胞内通路的进一步了解将有助于LNP设计成功地应用于不同的治疗应用。在这里,我们探讨了实验条件如何影响lnp递送的mRNA在体外的摄取,并调节货物的表达模式和细胞毒性。我们发现改变培养基中的血清蛋白浓度会影响LNPs的细胞摄取,从而导致不依赖于剂量的表达模式。此外,改变或去除mRNA货物不会显著影响细胞毒性,表明这种反应是由LNP成分驱动的。利用荧光半乳糖凝集素9报告系统,在不同血清蛋白浓度下进行动力学实验,测量LNP摄取、内体逃逸和货物表达,系统探讨这些过程与细胞毒性的关系。我们证明细胞毒性是由内体破坏和脂质化学驱动的。我们发现内体破坏的速率和程度与细胞毒性相关,这为研究提供了新的重点。开发具有最佳mRNA释放机制的LNPs,减少内体破坏的速率和持续时间,可以缓解LNP/mRNA相关的一些安全性问题。最后,我们发现单个阳离子脂质成分也可以影响与货物递送无关的细胞毒性,这意味着至少一些细胞毒性可以通过化学设计减轻。
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来源期刊
Journal of Controlled Release
Journal of Controlled Release 医学-化学综合
CiteScore
18.50
自引率
5.60%
发文量
700
审稿时长
39 days
期刊介绍: The Journal of Controlled Release (JCR) proudly serves as the Official Journal of the Controlled Release Society and the Japan Society of Drug Delivery System. Dedicated to the broad field of delivery science and technology, JCR publishes high-quality research articles covering drug delivery systems and all facets of formulations. This includes the physicochemical and biological properties of drugs, design and characterization of dosage forms, release mechanisms, in vivo testing, and formulation research and development across pharmaceutical, diagnostic, agricultural, environmental, cosmetic, and food industries. Priority is given to manuscripts that contribute to the fundamental understanding of principles or demonstrate the advantages of novel technologies in terms of safety and efficacy over current clinical standards. JCR strives to be a leading platform for advancements in delivery science and technology.
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