Division of Biotechnology, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
ACS Biomater Sci Eng. 2024 Oct 14;10(10):6721-6733. doi: 10.1021/acsbiomaterials.4c01135. Epub 2024 Sep 4.
Droplets, tiny liquid compartments, are increasingly emerging in the biomedical and biomanufacturing fields due to their unique properties to serve as templates or independent reaction units. Currently, the straightforward and efficient generation of various functional droplets in a biofriendly manner remains challenging. Herein, a novel microfluidic-assisted pneumatic strategy is described for the customizable and high-throughput production of monodispersed droplets, and the droplet size can be precisely controlled via a simplified gas pressure regulation module. In particular, numerous uniform alginate microcarriers can be rapidly fabricated in an all-aqueous manner, wherein the encapsulated islet or liver cells exhibit favorable viability and biological functions. Furthermore, by changing the microchannel configuration, several fluid manipulation functions developed by microfluidic technology, such as mixing and laminar flow, can be successfully incorporated into this platform. The droplet generators with scalable functionality are demonstrated in many biomanufacturing scenarios, including on-demand distribution of cell-mimetic particles, continuous synthesis of biomedical metal-organic framework (MOF), controllable preparation of compartmental microgel, etc. These may provide sustainable inspiration for developing droplet generators and their applications in tissue and organ engineering, biomaterials design, bioprinting nozzles, and other fields.
液滴是微小的液体隔间,由于其作为模板或独立反应单元的独特性质,在生物医学和生物制造领域越来越受到关注。目前,以生物友好的方式直接有效地生成各种功能的液滴仍然具有挑战性。本文描述了一种新颖的微流控辅助气动策略,用于可定制和高通量生产单分散液滴,并且可以通过简化的气压调节模块精确控制液滴尺寸。特别是,可以快速地以全水相方式制造大量均匀的海藻酸盐微载体,其中包封的胰岛或肝细胞表现出良好的活力和生物功能。此外,通过改变微通道结构,可以成功地将微流控技术开发的多种流体操作功能(如混合和层流)集成到该平台中。具有可扩展功能的液滴发生器在许多生物制造场景中得到了展示,包括按需分配细胞模拟粒子、连续合成生物医学金属-有机框架(MOF)、可控制备隔室微凝胶等。这可能为开发液滴发生器及其在组织和器官工程、生物材料设计、生物打印喷嘴等领域的应用提供可持续的灵感。