Synthesizing Lipid Nanoparticles by Turbulent Flow in Confined Impinging Jet Mixers.

IF 1.2 4区 综合性期刊 Q3 MULTIDISCIPLINARY SCIENCES
Sai Nikhil Subraveti, Brian K Wilson, Navid Bizmark, Jason Liu, Robert K Prud'homme
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Abstract

Lipid nanoparticles (LNPs) have demonstrated their enormous potential as therapeutic delivery vehicles, as evidenced by the approval and global usage of two COVID-19 messenger RNA (mRNA) vaccines. On a small scale, LNPs are often made using microfluidics; however, the limitations of these devices preclude their use on a large scale. The COVID-19 vaccines are manufactured in large quantities using confined impinging jet (CIJ) turbulent mixers. CIJ technology enables production at a laboratory scale with the confidence that it can be scaled to production volumes. The key concepts in CIJ mixing are that the mixing length and time scale are determined by the turbulence intensity in the mixing cavity and that the nanoparticle formation occurs away from walls, eliminating the problem of deposition on surfaces and fouling. This work demonstrates the process of making LNPs using confined impinging jet mixer technology with two geometries: the two-jet CIJ and the four-jet multi-inlet vortex mixer (MIVM). The advantages and disadvantages of each mixing geometry are discussed. In these geometries, LNPs are formed by rapid mixing of an organic solvent stream (usually ethanol containing the ionizable lipids, co-lipids, and stabilizing PEG-lipids) with an aqueous anti-solvent stream (aqueous buffer containing RNA or DNA). The operating parameters for the CIJ and MIVM mixers are presented to prepare reproducible LNPs with controlled size, zeta potential, stability, and transfection effectiveness. The differences between LNPs made with poor mixing (pipetting solutions) compared to CIJ mixing are also presented.

利用封闭式撞击射流混合器中的湍流合成脂质纳米颗粒
两种 COVID-19 信使 RNA (mRNA) 疫苗获得批准并在全球范围内使用,证明了脂质纳米粒子(LNPs)作为治疗递送载体的巨大潜力。在小规模上,LNPs 通常使用微流控技术制造;然而,这些设备的局限性使其无法大规模使用。COVID-19 疫苗是利用封闭式撞击射流(CIJ)湍流混合器大量生产的。CIJ 技术可在实验室规模上进行生产,并有信心将其扩大到生产规模。CIJ 混合的关键概念是混合长度和时间尺度由混合腔内的湍流强度决定,纳米粒子的形成远离腔壁,从而消除了表面沉积和结垢问题。这项工作展示了使用两种几何形状的封闭式撞击射流混合器技术制造 LNPs 的过程:双射流 CIJ 和四射流多入口涡流混合器 (MIVM)。讨论了每种混合几何形状的优缺点。在这些几何结构中,LNPs 是通过将有机溶剂流(通常是含有可离子化脂质、辅助脂质和稳定 PEG 脂质的乙醇)与水性反溶剂流(含有 RNA 或 DNA 的水性缓冲液)快速混合而形成的。介绍了 CIJ 和 MIVM 混合器的操作参数,以制备具有可控尺寸、zeta 电位、稳定性和转染效果的可重复 LNPs。此外,还介绍了混合效果不佳(移液管溶液)与 CIJ 混合法制备的 LNP 之间的差异。
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来源期刊
Jove-Journal of Visualized Experiments
Jove-Journal of Visualized Experiments MULTIDISCIPLINARY SCIENCES-
CiteScore
2.10
自引率
0.00%
发文量
992
期刊介绍: JoVE, the Journal of Visualized Experiments, is the world''s first peer reviewed scientific video journal. Established in 2006, JoVE is devoted to publishing scientific research in a visual format to help researchers overcome two of the biggest challenges facing the scientific research community today; poor reproducibility and the time and labor intensive nature of learning new experimental techniques.
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