Nanoscale Liposome Synthesis for Drug Delivery Applications via Ultrafast Acoustofluidic Micromixing

Ali POURABDOLLAH VARDİN, Gurkan YESILOZ
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Abstract

Nowadays, lipid nanoparticles have gained profound interest in chemical and biomedical engineering. The rapid development of therapeutic nanosystems has led to a need to design suitable approaches to synthesize bio-carriers for efficient drug delivery. Microfluidic methods provide an excellent opportunity to acquire desirable nanoparticle properties, including stability, size, shape, and size distribution, which are often challenging to obtain using conventional bulk synthesis methods. Rapid mixing is a crucial factor in the nanoprecipitation process as it influences the size and size distribution of the nanoparticles. Within this regard, in this work, we report an ultrafast acoustofluidic micromixer to synthesize liposome nanoparticles, which have been widely investigated in the literature as drug carriers due to their biocompatibility and biodegradability. This research has also investigated the influence of glycerol addition to the solvent to control the size of the liposomes. Our findings indicate that utilizing the acoustofluidic platform resulted in the production of nanoscale liposomes with small mean sizes compared to the hydrodynamic flow-focusing (HFF) method. Furthermore, the inclusion of glycerol led to a significant reduction in liposome size. These results emphasize the potential of the proposed approach for the efficient and precise synthesis of liposome nanoparticles with improved characteristics, which can be utilized in various biomedical and drug delivery applications.
利用超快声流微混合技术合成纳米级脂质体用于药物递送
目前,脂质纳米颗粒在化学和生物医学工程中引起了广泛的关注。治疗性纳米系统的快速发展导致需要设计合适的方法来合成有效的药物递送的生物载体。微流控方法提供了一个极好的机会来获得理想的纳米颗粒特性,包括稳定性、尺寸、形状和尺寸分布,这些通常是传统体合成方法难以获得的。在纳米沉淀过程中,快速混合是一个至关重要的因素,因为它影响着纳米颗粒的大小和粒径分布。在这方面,在本工作中,我们报道了一种超快声流控微混合器来合成脂质体纳米颗粒,由于其生物相容性和可生物降解性,脂质体纳米颗粒作为药物载体在文献中得到了广泛的研究。本研究还考察了在溶剂中加入甘油对控制脂质体大小的影响。我们的研究结果表明,与流体动力学流动聚焦(HFF)方法相比,利用声流体平台可以产生平均尺寸较小的纳米级脂质体。此外,甘油的加入使脂质体的大小显著减小。这些结果强调了该方法在高效和精确合成具有改进特性的脂质体纳米颗粒方面的潜力,该方法可用于各种生物医学和药物输送应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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