熔点问题:设计脂质纳米载体改善T细胞活化。

IF 3.1 3区 化学 Q2 Chemistry
Carina S. Fedosejevs, Lariana Cline and Neha P. Kamat
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引用次数: 0

摘要

表面修饰的脂质纳米载体越来越多地被用作人工抗原提呈细胞在免疫治疗中的应用。在这些纳米载体中,脂质的作用通常仅限于提供颗粒的结构/稳定性,锚定靶向部分和/或改变纳米载体在体内的生物分布。然而,脂质膜还具有影响其功能的特殊热力学性质。在这里,我们研究了脂质纳米载体的熔化转变温度对T淋巴细胞永生系激活效率的影响。利用已建立的体外激活实验和α cd3功能化的脂质纳米载体,我们筛选了多种脂质纳米载体对T细胞的激活能力。我们观察到T细胞活化效率与脂质纳米载体的熔化转变温度与活化研究进行温度(37°C)的接近程度之间存在相关性。这种关系在各种脂质组成中都存在,似乎比脂质头基团或链长度更重要。当激活温度转移到30°C时,这一趋势仍保持不变,支持纳米载体膜状态对靶细胞激活的作用以及相变相关效应对纳米载体活性的潜在影响。我们得出结论,脂质组成确实是基于脂质纳米载体设计的一个重要参数,不仅对脂质的生化作用有更多的探索,而且对脂质混合物产生的热力学性质也有很大的影响。我们的研究结果为治疗性纳米载体的设计提供了一个新的思路,可以显著提高靶向纳米载体配方的疗效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Melting point matters: designing lipid nanocarriers for improved T cell activation†

Melting point matters: designing lipid nanocarriers for improved T cell activation†

Surface-modified lipid nanocarriers are increasingly used as artificial antigen-presenting cells for therapeutic applications in immunotherapy. Within these nanocarriers, the role of the lipids is typically limited to providing structure/stability of the particle, to anchoring a targeting moiety, and/or to altering the biodistribution of the nanocarriers in vivo. However, lipid membranes also possess special thermodynamic properties that impact their function. Here, we investigate the effect of the melting transition temperature of lipid nanocarriers on the activation efficiency of an immortalized line of T lymphocytes. Using an established in vitro activation assay and αCD3-functionalized lipid nanocarriers, we screened a variety of lipid nanocarriers with respect to their capacity to activate T cells. We observed a correlation between T cell activation efficiency and proximity of the melting transition temperature of the lipid nanocarrier to the temperature at which the activation study was conducted (37 °C). This relationship held across a variety of lipid compositions and appeared to be more important than the lipid headgroup or chain length. This trend was preserved when the activation temperature was shifted to 30 °C, supporting the role of the nanocarrier membrane state for target cell activation and the potential impact of phase-transition-related effects on nanocarrier activity. We conclude that lipid composition is indeed an important parameter for lipid-based nanocarrier design, not only for the more explored biochemical roles of the lipids but also for the thermodynamic properties the lipid mixtures generate. Our results provide a new consideration in therapeutic nanocarrier design that could significantly improve the efficacy of targeted nanocarrier formulations.

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来源期刊
Faraday Discussions
Faraday Discussions CHEMISTRY, PHYSICAL-
CiteScore
4.90
自引率
0.00%
发文量
259
审稿时长
2.8 months
期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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