The elasticity of silicone-stabilized liposomes has no impact on their in vivo behavior.

IF 10.6 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Journal of Nanobiotechnology Pub Date : 2024-08-05 DOI:10.1186/s12951-024-02698-9
Alicja Hinz, Joanna Lewandowska-Łańcucka, Ewa Werner, Agnieszka Cierniak, Krystyna Stalińska, Grzegorz Dyduch, Michał Szuwarzyński, Monika Bzowska
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Abstract

Background: The elastomechanical properties of nanocarriers have recently been discussed as important for the efficient delivery of various therapeutics. Some data indicate that optimal nanocarriers' elasticity can modulate in vivo nanocarrier stability, interaction with phagocytes, and uptake by target cells. Here, we presented a study to extensively analyze the in vivo behavior of LIP-SS liposomes that were modified by forming the silicone network within the lipid bilayers to improve their elastomechanical properties. We verified liposome pharmacokinetic profiles and biodistribution, including retention in tumors on a mouse model of breast cancer, while biocompatibility was analyzed on healthy mice.

Results: We showed that fluorescently labeled LIP-SS and control LIP-CAT liposomes had similar pharmacokinetic profiles, biodistribution, and retention in tumors, indicating that modified elasticity did not improve nanocarrier in vivo performance. Interestingly, biocompatibility studies revealed no changes in blood morphology, liver, spleen, and kidney function but indicated prolonged activation of immune response manifesting in increased concentration of proinflammatory cytokines in sera of animals exposed to all tested liposomes.

Conclusion: Incorporating the silicone layer into the liposome structure did not change nanocarriers' characteristics in vivo. Further modification of the LIP-SS surface, including decoration with hydrophilic stealth polymers, should be performed to improve their pharmacokinetics and retention in tumors significantly. Activation of the immune response by LIP-SS and LIP-CAT, resulting in elevated inflammatory cytokine production, requires detailed studies to elucidate its mechanism.

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硅稳定脂质体的弹性对其体内行为没有影响。
背景:最近,纳米载体的弹性力学特性被认为对有效输送各种治疗药物非常重要。一些数据表明,最佳的纳米载体弹性可以调节体内纳米载体的稳定性、与吞噬细胞的相互作用以及靶细胞的吸收。在此,我们进行了一项研究,广泛分析了通过在脂质双层膜内形成硅酮网络来改善其弹性力学性能的 LIP-SS 脂质体的体内行为。我们验证了脂质体的药代动力学特征和生物分布,包括在乳腺癌小鼠模型肿瘤中的滞留情况,同时对健康小鼠的生物相容性进行了分析:结果:我们发现荧光标记的LIP-SS脂质体和对照组LIP-CAT脂质体具有相似的药代动力学特征、生物分布和在肿瘤中的保留率,这表明改良的弹性并没有改善纳米载体的体内性能。有趣的是,生物相容性研究表明,血液形态、肝脏、脾脏和肾脏功能没有发生变化,但免疫反应的激活时间延长,表现为暴露于所有测试脂质体的动物血清中促炎细胞因子浓度升高:结论:在脂质体结构中加入硅胶层不会改变纳米载体在体内的特性。应进一步对 LIP-SS 表面进行修饰,包括用亲水性隐形聚合物进行装饰,以显著改善其药代动力学和在肿瘤中的存留。LIP-SS和LIP-CAT激活免疫反应,导致炎症细胞因子分泌增加,这需要详细的研究来阐明其机制。
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来源期刊
Journal of Nanobiotechnology
Journal of Nanobiotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
13.90
自引率
4.90%
发文量
493
审稿时长
16 weeks
期刊介绍: Journal of Nanobiotechnology is an open access peer-reviewed journal communicating scientific and technological advances in the fields of medicine and biology, with an emphasis in their interface with nanoscale sciences. The journal provides biomedical scientists and the international biotechnology business community with the latest developments in the growing field of Nanobiotechnology.
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