Bioengineering Group, School of Engineering Sciences, University of Southampton, Southampton SO17 1BJ, United Kingdom.
J Colloid Interface Sci. 2011 May 1;357(1):243-51. doi: 10.1016/j.jcis.2011.01.085. Epub 2011 Jan 31.
We report the development of a microfluidic-based process for the production of polymeric micelles (PMs) in continuous-flow microreactors where Pluronic® tri-block copolymer is used as model polymeric biomaterial relating to drug delivery applications. A flow focusing configuration is used enabling a controllable, and fast mixing process to assist the formation of polymeric micelles through nanoprecipitation which is triggered by a solvent exchange process when organic solutions of the polymer mixed with a non-solvent. We experientially investigate the effect of polymer concentration, flow rate ratio and microreactor dimension on the PMs size characteristics. The mixing process within the microfluidic reactors is further analyzed by computational modeling in order to understand the hydrodynamic process and its implication for the polymeric micelles formation process. The results obtained show that besides the effect of the flow rate ratio, the chemical environment in which the aggregation takes place plays an important role in determining the dimensional characteristics of the produced polymeric micelles. It is demonstrated that microfluidic reactors provide a useful platform for the continuous-flow production of polymeric micelles with improved controllability, reproducibility, and homogeneity of the size characteristics.
我们报告了一种在连续流微反应器中基于微流控的方法来制备聚合物胶束(PMs),其中 Pluronic®三嵌段共聚物被用作与药物输送应用相关的模型聚合物生物材料。使用流聚焦配置可以实现可控的、快速的混合过程,通过纳米沉淀来辅助聚合物胶束的形成,纳米沉淀是通过聚合物的有机溶剂与非溶剂混合时的溶剂交换过程触发的。我们通过实验研究了聚合物浓度、流速比和微反应器尺寸对 PMs 尺寸特性的影响。为了理解流体力过程及其对聚合物胶束形成过程的影响,进一步对微流道反应器内的混合过程进行了计算建模分析。结果表明,除了流速比的影响外,聚合发生的化学环境在确定所制备的聚合物胶束的尺寸特性方面起着重要作用。结果表明,微流道反应器为连续流制备聚合物胶束提供了一个有用的平台,具有更好的可控性、重现性和尺寸特性的均一性。