Capture, Confine, Characterize: High-Throughput Dielectrophoresis-Based Single-Cell Microfluidics Platform to Analyze Mammalian and Yeast Cells Using Raman Spectroscopy
Jung, B.-J.; Hohreiter, A.; Cook, D.; Hansen, L.; Taylor, S.; Kobayashi-Kirschvink, K. J.; Chaiken, J.; Guha, S.; Basu, A.
Show abstract
Single-cell analysis technologies are pivotal in unraveling complex biological mechanisms, yet existing platforms are often limited to sequencing-based end-point measurements, which fail to capture live cell dynamics. Here, we present a microfluidic- microelectronic device, the Microfluidic dielectrophoretic Arresting System (MiDAS) that employs dielectrophoresis (DEP) for high-throughput single-cell and droplet trapping in a compact array. We tested multiple trap geometries, including a 20 m-diameter DEP trap for polymer microbeads, fungal and mammalian cells, and a 40 m-diameter trap for water-in-oil droplets. The platform demonstrates broad sample compatibility, reliably immobilizing cells and beads of varying sizes. By integrating optical imaging and Raman spectroscopy, we enable rapid, non-destructive interrogation of individual cells with temporal resolution. We describe different modes of MiDAS operation to trap and manipulate single-cells or reverse emulsion droplets on demand, with applications in droplet microfluidics. Our MiDAS platforms simple fabrication, robust performance, and broad compatibility with diverse sample types position it as a versatile tool with transformative potential for single-cell analysis, offering researchers an innovative approach to interrogate cellular dynamics with unprecedented precision and throughput.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Passive droplet microfluidic platform for high-throughput screening of microbial proteolytic activity. 96%
- High throughput steady-state enzyme kinetics measured in a parallel droplet generation and absorbance detection platform 94%
- Exceeding 80% efficiency of single-bead encapsulation in microdroplets through hydrogel coating-assisted close-packed ordering 94%
Similar papers in this journal
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.