Laboratory of Design and Application of Bioactive Molecules (CAMB), Faculty of Pharmacy, University of Strasbourg (UdS), Strasbourg, France; Group for the Intensification and Integration of Polymer Processes (G2IP), Institute of Chemistry and Processes for Energy, Environment and Health (ICPEES-UMR 7515 CNRS), European Engineering School of Chemistry, Polymers and Materials Science (ECPM), University of Strasbourg (UdS), CNRS UMR 7515, Strasbourg, France; College of Pharmacy, Government College University, Faisalabad, Pakistan.
J Control Release. 2013 Dec 28;172(3):1065-74. doi: 10.1016/j.jconrel.2013.07.028. Epub 2013 Aug 9.
Pharmaceutical science aims to localize the pharmacological activity of the drug at the site of action. Targeted drug delivery systems can directly deliver the payload to the desired site of action without undesired interaction with normal cells. This is especially important for anticancer drugs to avoid side effects and improve therapeutic response and patient compliance. Number of targeted drug delivery systems for anticancer drugs are in market and many more are in research phase. Most of the methods so far used suffer from poor drug loading, variation in composition, attachment of targeting ligands to carriers, and in vivo and in vitro cellular uptake in cancer cell. Recently microfluidic techniques are gaining attention from researchers and formulation scientists due to the ability of having a better control over the above said parameters not to mention saving cost, material, time and the possibility offered to synthesize different system morphologies from nano to microscale. This article reviews the recent advances in the design of various targeted systems obtained through microfluidics and to some extent addresses challenges and hurdles faced during cancer cell treatment.
制药科学旨在使药物的药理活性在作用部位本地化。靶向药物传递系统可以将有效载荷直接递送到所需的作用部位,而不会与正常细胞发生不需要的相互作用。这对于抗癌药物尤其重要,可以避免副作用,提高治疗反应和患者依从性。市场上已有许多用于抗癌药物的靶向药物传递系统,还有更多的处于研究阶段。到目前为止,大多数使用的方法都存在药物负载不良、组成变化、靶向配体与载体的连接以及在体内和体外的癌细胞摄取等问题。最近,由于能够更好地控制上述参数,微流控技术引起了研究人员和制剂科学家的关注,更不用说节省成本、材料、时间以及提供从纳米到微尺度合成不同系统形态的可能性了。本文综述了通过微流控技术设计各种靶向系统的最新进展,并在一定程度上解决了在癌细胞治疗过程中面临的挑战和障碍。