用于精密纳米颗粒生产的微流控装置

Micro Pub Date : 2023-10-31 DOI:10.3390/micro3040058
Ayşenur Bezelya, Berrin Küçüktürkmen, Asuman Bozkır
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引用次数: 0

摘要

近年来,药物递送领域已经看到了一个重大的转变,即探索和利用纳米颗粒(NPs)作为治疗药物的多功能载体。微流体技术具有精确控制NPs特性的能力,是高效、可控合成NPs的有力平台。微流体装置设计用于精确的流体操作在微观尺度上提供了一个独特的平台来定制NP特性,增强了对NP特性的控制,如尺寸,形态和尺寸分布,同时确保高批对批的可重复性。微流体可用于生产脂质体,固体脂质纳米颗粒,聚合物基NPs和脂-聚合物混合NPs,以及各种无机NPs,如二氧化硅,金属,金属氧化物,量子点和碳基NPs,提供对组成和表面性质的精确控制。它在定制NP属性方面的独特精度为推进临床和工业环境中基于NP的药物输送系统提供了巨大的希望。尽管大规模生产的挑战仍然存在,微流体为NP合成提供了一种变革性的方法。本文将从微流控系统的发展历史出发,讨论微流控系统的材料、微加工方法和系统部件,以便读者对微流控系统有一个全面的了解。下面将介绍在微流控器件中制备纳米颗粒(如脂质NPs、聚合物NPs和无机NPs)的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microfluidic Devices for Precision Nanoparticle Production
In recent years, the field of drug delivery has seen a significant shift towards the exploration and utilization of nanoparticles (NPs) as versatile carriers for therapeutic agents. With its ability to provide exact control over NPs’ characteristics, microfluidics has emerged as a potent platform for the efficient and controlled synthesis of NPs. Microfluidic devices designed for precise fluid manipulation at the micro-scale offer a unique platform for tailoring NP properties, enabling enhanced control over NP properties such as size, morphology, and size distribution while ensuring high batch-to-batch reproducibility. Microfluidics can be used to produce liposomes, solid lipid nanoparticles, polymer-based NPs, and lipid-polymer hybrid NPs, as well as a variety of inorganic NPs such as silica, metal, metal oxide, quantum dots, and carbon-based NPs, offering precise control over composition and surface properties. Its unique precision in tailoring NP properties holds great promise for advancing NP-based drug delivery systems in both clinical and industrial settings. Although challenges with large-scale production still remain, microfluidics offers a transformative approach to NP synthesis. In this review, starting from the historical development of microfluidic systems, the materials used to create the systems, microfabrication methods, and system components will be discussed in order to provide the reader with an overview of microfluidic systems. In the following, studies on the fabrication of nanoparticles such as lipid NPs, polymeric NPs, and inorganic NPs in microfluidic devices are included.
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