Center for Intelligent Microprocess of Pharmaceutical Synthesis, Department of Chemical Engineering, Pohang University of Science and Technology (POSTECH), Pohang 37673, Republic of Korea.
Research Center, ST Pharm, Ansan-si, Gyoenggi-do 15610, Republic of Korea.
J Control Release. 2024 Sep;373:161-171. doi: 10.1016/j.jconrel.2024.07.019. Epub 2024 Jul 14.
Achieving precise control of nanoparticle size while maintaining consistency and high uniformity is of paramount importance for improving the efficacy of nanoparticle-based therapies and minimizing potential side effects. Although microfluidic technologies are widely used for reliable nanoparticle synthesis, they face challenges in meeting critical homogeneity requirements, mainly due to imperfect mixing efficiency. Furthermore, channel clogging during continuous operation presents a significant obstacle in terms of quality control, as it progressively impedes the mixing behavior necessary for consistent nanoparticle production for therapeutic delivery and complicates the scaling-up process. This study entailed the development of a 3D-printed novel micromixer embedded with hemispherical baffle microstructures, a dual vortex mixer (DVM), which integrates Dean vortices to generate two symmetrical counter-rotating intensified secondary flows. The DVM with a relatively large mixer volume showed rapid mixing characteristics even at a flow rate of several mL min and produced highly uniform lipids, liposomes, and polymer nanoparticles in a size range (50-130 nm) and polydispersity index (PDI) values below 0.15. For the evaluation of products, SARS-CoV-2 Spike mRNA-loaded lipid nanoparticles were examined to verify protein expression in vitro and in vivo using firefly luciferase (FLuc) mRNA. This showed that the performance of the system is comparable to that of a commercial toroidal mixer. Moreover, the vigorous in-situ dispersion of nanoparticles by harnessing the power of vortex physically minimizes the occurrence of aggregation, ensuring consistent production performance without internal clogging of a half-day operation and facilitating quality control of the nanoparticles at desired scales.
在保持一致性和高均匀性的同时,实现纳米颗粒尺寸的精确控制对于提高基于纳米颗粒的治疗效果和最小化潜在副作用至关重要。尽管微流控技术广泛用于可靠的纳米颗粒合成,但它们在满足关键均匀性要求方面面临挑战,主要是由于混合效率不完美。此外,连续操作期间的通道堵塞在质量控制方面构成了重大障碍,因为它逐渐阻碍了用于治疗输送的一致纳米颗粒生产所需的混合行为,并使规模化过程复杂化。本研究开发了一种具有半球形挡板微结构的 3D 打印新型微混合器,即双涡旋混合器(DVM),它集成了 Dean 涡旋以产生两个对称的反向旋转强化二次流。具有相对较大混合器体积的 DVM 即使在几毫升/分钟的流速下也具有快速混合特性,并在 50-130nm 的尺寸范围内和低于 0.15 的多分散指数(PDI)值下产生高度均匀的脂质、脂质体和聚合物纳米颗粒。为了评估产品,我们检查了负载 SARS-CoV-2 Spike mRNA 的脂质纳米颗粒,以使用萤火虫荧光素酶(FLuc)mRNA 在体外和体内验证蛋白质表达。这表明该系统的性能可与商业环形容器混合器相媲美。此外,利用涡旋的动力原位分散纳米颗粒可最大限度地减少聚集的发生,确保在半日内无内部堵塞的情况下保持一致的生产性能,并有助于在所需规模下对纳米颗粒进行质量控制。