The instrument uses laser illumination to excite fluorescently labeled molecules associated with individual cells. Detectors measure the emitted light along with other measurable cell properties, allowing the system to recognize cells that match selected characteristics. This measurement-based discrimination is important when a sample contains multiple populations and researchers need to examine or isolate a defined group.
After measurement, the system places cells into droplets and assigns an electrical charge to droplets containing selected cells. Electrostatic deflection then directs those droplets into separate collection tubes. This sequence links optical identification to physical separation, so fluorescence information can produce an isolated cell population rather than only a recorded measurement.
Flow-based measurement can characterize cells according to fluorescence and other properties, whereas a sorter adds a physical recovery step. The instrument directs selected cells into collection vessels, making the resulting populations available for later work. This distinction matters when researchers need purified or enriched cells for experiments instead of information about the original sample alone.
A typical workflow presents cells individually to laser beams, detects fluorescence and other measurable properties, identifies cells that meet the desired selection criteria, and places them into droplets. The system charges and deflects appropriate droplets into separate collection tubes. The collected populations can then support molecular profiling, functional assays, culture, or further biological investigation.
The approach supports separation of immune cells, stem cells, tumor cells, and genetically modified cells. These groups may contain distinct biological states or experimental characteristics that are difficult to study together. Isolating them allows researchers to focus subsequent analyses or experiments on a selected population and to investigate cellular heterogeneity within biological samples.
Sorted populations can be used for molecular profiling, functional assays, and culture, extending the experiment beyond detection. Researchers can also use the separated cells to investigate cellular heterogeneity in biology. The value of collection lies in preserving access to defined populations for downstream studies of molecular features, behavior, or experimental characteristics.