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Stabilized Production of Lipid Nanoparticles of Tunable Size in Taylor Flow Glass Devices with High-Surface-Quality 3D Microchannels

机译:具有高表面质量3D微通道的泰勒流动玻璃装置中稳定大小可调节的脂质纳米颗粒的稳定生产

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摘要

Nanoparticles as an application platform for active ingredients offer the advantage of efficient absorption and rapid dissolution in the organism, even in cases of poor water solubility. Active substances can either be presented directly as nanoparticles or can be integrated in a colloidal carrier system (e.g., lipid nanoparticles). For bottom-up nanoparticle production minimizing particle contamination, precipitation processes provide an adequate approach. Microfluidic systems ensure a precise control of mixing for the precipitation, which enables a tunable particle size definition. In this work, a gas/liquid Taylor flow micromixer made of chemically inert glass is presented, in which the organic phases are injected through a symmetric inlet structure. The 3D structuring of the glass was performed by femtosecond laser ablation. Rough microchannel walls are typically obtained by laser ablation but were smoothed by a subsequent annealing process resulting in lower hydrophilicity and even rounder channel cross-sections. Only with such smooth channel walls can a substantial reduction of fouling be obtained, allowing for stable operation over longer periods. The ultrafast mixing of the solutions could be adjusted by simply changing the gas volume flow rate. Narrow particle size distributions are obtained for smaller gas bubbles with a low backflow and when the rate of liquid volume flow has a small influence on particle precipitation. Therefore, nanoparticles with adjustable sizes of down to 70 nm could be reliably produced in continuous mode. Particle size distributions could be narrowed to a polydispersity value of 0.12.
机译:纳米粒子作为活性成分的应用平台,即使在水溶性差的情况下,也具有在生物体内有效吸收和快速溶解的优势。活性物质可以直接作为纳米颗粒存在或可以整合在胶体载体系统中(例如脂质纳米颗粒)。对于自下而上的纳米颗粒生产,可最大程度地减少颗粒污染,沉淀过程提供了适当的方法。微流体系统可确保精确控制沉淀的混合,从而实现可调节的粒径定义。在这项工作中,提出了一种由化学惰性玻璃制成的气/液泰勒流微混合器,其中有机相通过对称的入口结构注入。玻璃的3D结构是通过飞秒激光烧蚀完成的。粗糙的微通道壁通常通过激光烧蚀获得,但通过随后的退火工艺将其平滑,从而导致较低的亲水性和更圆的通道横截面。只有采用这种光滑的通道壁,才能大大减少结垢,从而可以在更长的时间内稳定运行。可以通过简单地改变气体体积流量来调节溶液的超快混合。对于较小的气泡和较低的回流,以及当液体体积流量对颗粒沉淀的影响较小时,可获得较窄的粒度分布。因此,可以以连续模式可靠地生产出可调节尺寸的低至70 nm的纳米颗粒。粒度分布可以缩小到0.12的多分散度值。

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