Jia Fuhao, Gao Yanbing, Wang Hai
CAS Key Laboratory for Biomedical Effects of Nanomaterials & Nanosafety, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing 100190, China.
School of Nanoscience and Technology, University of Chinese Academy of Sciences, Beijing 100049, China.
Bioengineering (Basel). 2022 Oct 29;9(11):625. doi: 10.3390/bioengineering9110625.
Traditional drug therapy faces challenges such as drug distribution throughout the body, rapid degradation and excretion, and extensive adverse reactions. In contrast, micro/nanoparticles can controllably deliver drugs to target sites to improve drug efficacy. Unlike traditional large-scale synthetic systems, microfluidics allows manipulation of fluids at the microscale and shows great potential in drug delivery and precision medicine. Well-designed microfluidic devices have been used to fabricate multifunctional drug carriers using stimuli-responsive materials. In this review, we first introduce the selection of materials and processing techniques for microfluidic devices. Then, various well-designed microfluidic chips are shown for the fabrication of multifunctional micro/nanoparticles as drug delivery vehicles. Finally, we describe the interaction of drugs with lymphatic vessels that are neglected in organs-on-chips. Overall, the accelerated development of microfluidics holds great potential for the clinical translation of micro/nanoparticle drug delivery systems for disease treatment.
传统药物疗法面临着诸如药物在全身的分布、快速降解和排泄以及广泛的不良反应等挑战。相比之下,微/纳米颗粒可以可控地将药物递送至靶位点以提高药物疗效。与传统的大规模合成系统不同,微流控技术允许在微观尺度上操控流体,并且在药物递送和精准医学方面显示出巨大潜力。精心设计的微流控装置已被用于使用刺激响应材料制造多功能药物载体。在本综述中,我们首先介绍微流控装置的材料选择和加工技术。然后,展示了各种精心设计的微流控芯片用于制造作为药物递送载体的多功能微/纳米颗粒。最后,我们描述了药物与芯片器官中被忽视的淋巴管的相互作用。总体而言,微流控技术的加速发展对于微/纳米颗粒药物递送系统用于疾病治疗的临床转化具有巨大潜力。