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Development of a Microfluidic-Based Post-Treatment Process for Size-Controlled Lipid Nanoparticles and Application to siRNA Delivery

机译:尺寸控制脂质纳米粒子的微流体基后处理过程的研制及其在siRNA递送中的应用

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摘要

Microfluidic methodologies for preparation of lipid nanoparticles (LNPs) based on an organic solvent injection method enable precise size control of the LNPs. After preparation of LNPs, the organic solvent injection method needs some post-treatments, such as overnight dialysis or direct dilution with a buffer solution. LNP production using the microfluidic-based organic solvent injection method is dominated by kinetics rather than thermodynamics. Kinetics of ethanol removal from the inner and outer membranes of LNPs could induce a structural change in the membrane that could lead to fusion of LNPs. However, the effects of microfluidic post-treatment on the final size of LNPs have not been sufficiently understood. Herein, we investigated the effect of the post-treatment processes on the final product size of LNPs in detail. A simple baffle device and a model lipid system composed of a neutral phospholipid (1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine, POPC) and cholesterol were used to produce the LNPs. We demonstrated that flow conditions of the post-treatment diluting the remaining ethanol in the LNP suspension affected the final product size of LNPs. Based on the findings, we developed an integrated baffle device composed of an LNP production region and a post-treatment region for a microfluidic-based LNP production system; this integrated baffle device prevented the undesirable aggregation or fusion of POPC LNPs even for the high-lipid-concentration condition. Finally, we applied our concept to small interfering RNA (siRNA) delivery and confirmed that no significant effects due to the continuous process occurred on the siRNA encapsulation efficiency, biological distribution, and knockdown activity. The microfluidic post-treatment method is expected to contribute to the production of LNPs for practical applications and the development of novel LNP-based nanomedicines.
机译:基于有机溶剂注入方法制备脂纳米颗粒(LNP)的微流体方法,使得LNP的精确尺寸控制。在制备LNP后,有机溶剂注射方法需要一些后处理,例如过夜透析或用缓冲溶液直接稀释。使用微流体基有机溶剂注入方法的LNP生产由动力学而不是热力学。从LNP的内部和外膜中除去乙醇的动力学可以诱导可能导致LNP融合的膜中的结构变化。然而,没有充分了解微流体治疗对LNP的最终尺寸的影响。在此,我们详细研究了处理后方法对LNP的最终产品尺寸的影响。使用简单的挡板装置和由中性磷脂(1-palmitoyl-2-Oleyoyl-Sn-甘油-3-磷光啉,POPC)和胆固醇组成的模型脂质系统来产生LNP。我们证明,在LNP悬浮液中稀释剩余乙醇的后处理的流动条件影响了LNP的最终产品尺寸。基于调查结果,我们开发了由LNP生产区域和治疗后区域组成的集成挡板器件,用于基于Microfluid的LNP生产系统;这种集成的挡板装置甚至防止了POPC LNP的不希望的聚集或融合,即使是高脂质浓度条件也是如此。最后,我们将我们的概念应用于小干扰RNA(siRNA)递送,并确认由于SiRNA封装效率,生物分布和敲低度的连续过程没有显着影响。预期微流体后处理方法有助于生产LNP的实际应用和新型基于LNP的纳米型尼林。

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