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The Effects of Biological Fluids on Colloidal Stability and siRNA Delivery of a pH-Responsive Micellar Nanoparticle Delivery System

机译:pH响应胶束纳米粒子传递系统的生物流体对胶体稳定性和siRNA传递的影响。

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摘要

Nanoparticles (NP) interact with complex protein milieus in biological fluids, and these interactions have profound effects on NP physicochemical properties and function. Surprisingly, most studies neglect the impact of these interactions, especially with respect to NP-mediated siRNA delivery. Here, the effects of serum on colloidal stability and siRNA delivery of a pH-responsive micellar NP delivery system were characterized. Results show cationic NP-siRNA complexes aggregate in ≥ 2% serum in buffer, but are stable in serum-free media. Furthermore, non-aggregated NP-siRNA delivered in serum-free media result in 4-fold greater siRNA uptake in vitro, compared to aggregated NP-siRNA. Interestingly, pH-responsive membrane lysis behavior, which is required for endosomal escape, and NP-siRNA dissociation, necessary for mRNA knockdown, are significantly reduced in serum. Consistent with these data, non-aggregated NP-siRNA in serum-free conditions result in highly efficient gene silencing, even at doses as low as 5 nM siRNA. NP-siRNA diameter was measured at albumin and IgG levels mimicking biological fluids. Neither albumin nor IgG alone induces NP-siRNA aggregation, implicating other serum proteins in NP colloidal instability. Finally, as a proof-of-principle that stability is maintained in established in vivo models, transmission electron microscopy reveals NP-siRNA are taken up by ductal epithelial cells in a non-aggregated state when injected retroductally into mouse salivary glands in vivo. Overall, this study shows serum-induced NP-siRNA aggregation significantly diminishes efficiency of siRNA delivery by reducing uptake, pH-responsive membrane lysis activity, and NP-siRNA dissociation. Moreover, these results highlight the importance of local NP-mediated drug delivery, and are broadly applicable to other drug delivery systems.
机译:纳米粒子(NP)与生物流体中的复杂蛋白质环境相互作用,这些相互作用对NP的理化性质和功能具有深远的影响。出乎意料的是,大多数研究都忽略了这些相互作用的影响,特别是在NP介导的siRNA传递方面。在这里,表征了血清对胶体稳定性和pH响应胶束NP传递系统的siRNA传递的影响。结果显示阳离子NP-siRNA复合物在缓冲液中≥2%的血清中聚集,但在无血清培养基中稳定。此外,与聚集的NP-siRNA相比,在无血清培养基中递送的非聚集的NP-siRNA导致体外siRNA摄取高4倍。有趣的是,血清中内吞逃逸所必需的pH响应膜裂解行为和mRNA敲除所必需的NP-siRNA离解显着降低。与这些数据一致,在无血清条件下非聚集的NP-siRNA甚至在低至5 nM siRNA的剂量下也可实现高效的基因沉默。在模拟生物体液的白蛋白和IgG水平测量NP-siRNA直径。白蛋白和IgG都不能单独诱导NP-siRNA聚集,这牵涉到其他血清蛋白在NP胶体不稳定中。最后,作为在已建立的体内模型中保持稳定性的原理的证明,透射电子显微镜显示,当在体内逆行注入小鼠唾液腺时,导管上皮细胞以非聚集状态吸收了NP-siRNA。总体而言,这项研究表明,血清诱导的NP-siRNA聚集通过降低摄取,pH响应膜裂解活性和NP-siRNA的解离作用,显着降低了siRNA的递送效率。而且,这些结果突出了局部NP介导的药物递送的重要性,并且广泛适用于其他药物递送系统。

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