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3D 微混合器用于纳米脂质体合成:高产量生产的有前景的进展。

3D micromixer for nanoliposome synthesis: a promising advance in high mass productivity.

机构信息

Department of Materials and Bioprocess Engineering, School of Chemical Engineering, University of Campinas (UNICAMP), Campinas, São Paulo, Brazil.

Department of Chemical Systems Engineering, School of Chemical Engineering, University of Campinas (UNICAMP), Campinas, São Paulo, Brazil.

出版信息

Lab Chip. 2021 Aug 7;21(15):2971-2985. doi: 10.1039/d1lc00232e. Epub 2021 Jun 17.

Abstract

This paper addresses an important breakthrough in the high mass production of liposomes by microfluidics technology. We investigated the synthesis of liposomes using a high flow rate microfluidic device (HFR-MD) with a 3D-twisted cross-sectional microchannel to favor chaotic advection. A simple construction scaffold technique was used to manufacture the HFR-MD. The synthesis of liposomes combined the effects of high flow and high concentration of lipids, resulting in high mass productivity (2.27 g of lipid per h) which, to our knowledge, has never been registered by only one microdevice. We assessed the effects of the flow rate ratio (FRR), total flow rate (TFR), and lipid concentration on the liposome physicochemical properties. HFR-MD liposomes were monodisperse (0.074) with a size around 100 nm under the condition of an FRR of 1 (50% v/v ethanol) and TFR of 5 ml min (expandable to 10 ml min). We demonstrated that the mixing conditions are not the only parameter controlling liposome synthesis using experimental and computational fluid dynamics analysis. A vacuum concentrator was used for ethanol removal, and there is no further modification after processing in accordance with the structural (SAXS) and morphological (cryo-TEM) analysis. Hence, the HFR-MD can be used to prepare nanoliposomes. It emerges as an innovative tool with high mass production.

摘要

本文介绍了微流控技术在大规模生产脂质体方面的重要突破。我们研究了使用具有 3D 扭曲横截面微通道的高通量微流控装置(HFR-MD)合成脂质体,以促进混沌对流。采用简单的构建支架技术制造 HFR-MD。脂质体的合成结合了高通量和高浓度脂质的效果,从而实现了高产量(每小时 2.27 克脂质),据我们所知,这是以前从未通过单个微器件实现的。我们评估了流速比(FRR)、总流量(TFR)和脂质浓度对脂质体物理化学性质的影响。在 FRR 为 1(50%v/v 乙醇)和 TFR 为 5 ml min 的条件下,HFR-MD 脂质体呈单分散性(0.074),粒径约为 100nm。我们通过实验和计算流体动力学分析表明,混合条件不是控制脂质体合成的唯一参数。使用真空浓缩器去除乙醇,并且根据结构(SAXS)和形态(冷冻透射电镜)分析,处理后无需进一步修饰。因此,HFR-MD 可用于制备纳米脂质体。它作为一种具有大规模生产能力的创新工具出现。

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