Onan Deniz, Özder Melike, Sipahi Meryem İrem, Poyraz Nazlıcan, Apaydın Ceylin, Erel-Akbaba Gülşah, Akbaba Hasan
Department of Pharmaceutical Biotechnology, Faculty of Pharmacy, Ege University, Izmir, Turkey.
Department of Pharmaceutical Biotechnology, Faculty of Pharmacy, Izmir Katip Celebi University, Izmir, Turkey.
J Biomed Mater Res B Appl Biomater. 2025 Feb;113(2):e35530. doi: 10.1002/jbm.b.35530.
Microfluidics-based droplets have emerged as a powerful technology for biomedical research, offering precise control over droplet size and structure, optimal mixing of solutions, and prevention of cross-contamination. It is a major branch of microfluidic technology with applications in diagnostic testing, imaging, separation, and gene amplification. This review discusses the different aspects of microfluidic devices, droplet generation techniques, droplet types, and the production of micro/nano particles, along with their advantages and limitations. Passive and active methods for droplet formation are discussed, as well as the manipulation of droplet shape and content. This review also highlights the potential applications of droplet microfluidics in tissue engineering, cancer therapy, and drug delivery systems. The use of microfluidics in the production of lipid nanoparticles and polymeric microparticles is also presented, with emphasis on their potential in drug delivery and biomedical research. Finally, the contributions of microfluidics to vaccines, gene therapy, personalized medicine, and future perspectives are discussed, emphasizing the need for continuous innovation and integration with other technologies, such as AI and wearable devices, to further enhance its potential in personalized medicine and drug delivery. However, it is also noted that challenges in commercialization and widespread adoption still need to be addressed.
基于微流控技术的液滴已成为生物医学研究的一项强大技术,可对液滴大小和结构进行精确控制,实现溶液的最佳混合,并防止交叉污染。它是微流控技术的一个主要分支,应用于诊断测试、成像、分离和基因扩增等领域。本文综述了微流控装置、液滴生成技术、液滴类型以及微/纳米颗粒的制备等不同方面,以及它们的优缺点。讨论了液滴形成的被动和主动方法,以及液滴形状和内容物的操控。本文还重点介绍了液滴微流控技术在组织工程、癌症治疗和药物递送系统中的潜在应用。还介绍了微流控技术在脂质纳米颗粒和聚合物微粒生产中的应用,重点强调了它们在药物递送和生物医学研究中的潜力。最后,讨论了微流控技术对疫苗、基因治疗、个性化医疗的贡献以及未来展望,强调需要持续创新并与人工智能和可穿戴设备等其他技术集成,以进一步提升其在个性化医疗和药物递送方面的潜力。然而,也指出商业化和广泛应用方面的挑战仍需解决。