School of Materials Science and Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen, P. R. China.
Peking University Shenzhen Hospital & Biomedical Research Institute, Shenzhen-PKU-HKUST Medical Center, Shenzhen, P. R. China.
Electrophoresis. 2019 Jun;40(11):1580-1590. doi: 10.1002/elps.201900047. Epub 2019 Apr 4.
Microfluidics has made a very impressive progress in the past decades due to its unique and instinctive advantages. Droplet-based microfluidic systems show excellent compatibility with many chemical and biological reagents and are capable of performing variety of operations that can implement microreactor, complex multiple core-shell structure, and many applications in biomedical research such as drug encapsulation, targeted drug delivery systems, and multifunctionalization on carriers. Droplet-based systems have been directly used to synthesize particles and encapsulate many biological entities for biomedicine applications due to their powerful encapsulation capability and facile versatility. In this paper, we review its origin, deviation, and evolution to draw a clear future, especially for droplet-based biomedical applications. This paper will focus on droplet generation, variations and complication as starter, and logistically lead to the numerous typical applications in biomedical research. Finally, we will summarize both its challenge and future prospects relevant to its droplet-based biomedical applications.
微流控技术由于其独特而本能的优势,在过去几十年中取得了非常显著的进展。基于液滴的微流控系统与许多化学和生物试剂具有出色的兼容性,能够执行各种操作,例如微反应器、复杂的多核壳结构,以及在药物封装、靶向药物输送系统和载体的多功能化等生物医学研究中的许多应用。基于液滴的系统由于其强大的封装能力和易于多功能化,已直接用于合成颗粒和封装许多生物实体,用于生物医学应用。在本文中,我们回顾了它的起源、偏差和进化,以描绘出一个清晰的未来,特别是对于基于液滴的生物医学应用。本文将重点介绍液滴的产生、变化和复杂性,作为起点,并在逻辑上引出生物医学研究中众多典型的应用。最后,我们将总结与基于液滴的生物医学应用相关的挑战和未来前景。