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微流控和芯片实验室制备路线用于制备有机纳米粒子和用于纳米医学应用的囊泡系统。

Microfluidic and lab-on-a-chip preparation routes for organic nanoparticles and vesicular systems for nanomedicine applications.

机构信息

Department of Pharmaceutics, UCL School of Pharmacy, 29-39 Brunswick Square, London WC1N 1AX, United Kingdom.

出版信息

Adv Drug Deliv Rev. 2013 Nov;65(11-12):1496-532. doi: 10.1016/j.addr.2013.08.002. Epub 2013 Aug 8.

Abstract

In recent years, advancements in the fields of microfluidic and lab-on-a-chip technologies have provided unique opportunities for the implementation of nanomaterial production processes owing to the miniaturisation of the fluidic environment. It has been demonstrated that microfluidic reactors offer a range of advantages compared to conventional batch reactors, including improved controllability and uniformity of nanomaterial characteristics. In addition, the fast mixing achieved within microchannels, and the predictability of the laminar flow conditions, can be leveraged to investigate the nanomaterial formation dynamics. In this article recent developments in the field of microfluidic production of nanomaterials for drug delivery applications are reviewed. The features that make microfluidic reactors a suitable technological platform are discussed in terms of controllability of nanomaterials production. An overview of the various strategies developed for the production of organic nanoparticles and colloidal assemblies is presented, focusing on those nanomaterials that could have an impact on nanomedicine field such as drug nanoparticles, polymeric micelles, liposomes, polymersomes, polyplexes and hybrid nanoparticles. The effect of microfluidic environment on nanomaterials formation dynamics, as well as the use of microdevices as tools for nanomaterial investigation is also discussed.

摘要

近年来,由于流体环境的小型化,微流控和芯片实验室技术领域的进步为纳米材料生产工艺的实施提供了独特的机会。已经证明,与传统的分批式反应器相比,微流反应器具有一系列优势,包括对纳米材料特性的更好的可控性和均匀性。此外,在微通道内实现的快速混合以及层流条件的可预测性,可以用于研究纳米材料形成动力学。本文综述了用于药物输送应用的纳米材料的微流体制备领域的最新进展。讨论了使微流反应器成为合适的技术平台的特点,这些特点在纳米材料生产的可控性方面进行了讨论。本文还介绍了开发用于制备有机纳米粒子和胶体组装体的各种策略,重点介绍了那些可能对纳米医学领域有影响的纳米材料,如药物纳米粒子、聚合物胶束、脂质体、聚合物囊泡、多聚物和杂化纳米粒子。还讨论了微流环境对纳米材料形成动力学的影响,以及微器件作为纳米材料研究工具的使用。

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