College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou 310027, P. R. China.
International Joint Innovation Center, Zhejiang University, Haining 314400, P. R. China.
Anal Chem. 2023 Sep 12;95(36):13586-13595. doi: 10.1021/acs.analchem.3c02250. Epub 2023 Aug 25.
In this paper, we present a highly effective microfluidic emulsion system using an integrated microchannel plate (MCP), a porous glass membrane that is readily available and densely packs millions of through-microchannels, for high-throughput production of monodisperse droplets. The physical controls of droplet formation, including viscosity, flow rate, and pore size, have been extensively explored for optimum emulsification conditions. The performance of the device has been validated where monodisperse droplets with a narrow coefficient of variance (<5%) can be achieved at a dispersed phase flux of 3 mL h from a piece of 4 × 4 mm MCP. The average droplet size is two times the nominal membrane pore diameter and thus can be easily controlled by choosing the appropriate membrane type. The preparation of hydrogel microspheres has also been demonstrated with a high throughput of 1.5 × 10 particles min. These microspheres with a uniform size range and rough surface morphology provide suitable bioenvironments and serve as ideal carriers for cell culture. Mouse fibroblasts are shown to be cultured on these 3D scaffolds with an average cell viability of over 96%. The cell attachment rate can reach up to 112 ± 7% in 24 h and the proliferation ability increases with the number of culture days. Furthermore, the device has been applied in the droplet digital polymerase chain reaction for absolute quantification of lung cancer-related PLAU genes. The detection limit achieved was noted to be 0.5 copies/μL with a dynamic range of 10 ranging from 1 × 10 to 1 × 10 copies/μL. Given the easy fabrication, robust performance, and simple operation, the emulsion system sets the stage for the laboratory's droplet-based assays and applications in tissue engineering.
本文提出了一种使用集成微通道板(MCP)和多孔玻璃膜的高效微流乳液系统,该多孔玻璃膜易于获得且可密集填充数百万个贯穿微通道,可用于高通量生产单分散液滴。我们广泛研究了液滴形成的物理控制因素,包括粘度、流速和孔径,以优化乳化条件。该设备的性能已得到验证,通过使用 4×4mm 的 MCP 可在分散相通量为 3mL/h 的情况下实现具有小于 5%的窄变异系数的单分散液滴。平均液滴尺寸是名义膜孔直径的两倍,因此可以通过选择适当的膜类型轻松控制。还展示了水凝胶微球的高通量制备,其通量可达 1.5×10 个/分钟。这些具有均匀尺寸范围和粗糙表面形态的微球提供了合适的生物环境,可用作细胞培养的理想载体。结果表明,小鼠成纤维细胞可以在这些 3D 支架上培养,平均细胞活力超过 96%。细胞黏附率在 24 小时内可达 112±7%,并且增殖能力随培养天数的增加而增加。此外,该设备已应用于液滴数字聚合酶链式反应中,用于绝对定量检测肺癌相关的 PLAU 基因。检测限可达 0.5 拷贝/μL,动态范围为 1×10 到 1×10 拷贝/μL。鉴于其易于制造、强大的性能和简单的操作,乳液系统为实验室的基于液滴的分析和组织工程应用奠定了基础。