Each bead population carries a distinct fluorescent code that identifies the capture antibody or probe attached to it. The instrument reads this code separately from the signal produced by the bound target and labeled detection reagent. This two-part measurement allows several analytes to be assigned to their correct bead population and quantified within the same sample.
The capture antibody or probe selectively binds its corresponding target molecule during incubation. A labeled detection reagent then interacts with the captured target and produces a measurable signal. Because the signal is proportional to analyte abundance, the assay links molecular recognition with quantitative fluorescence, while the bead code indicates which analyte generated that signal.
Multiplexing measures several targets from one specimen rather than requiring separate measurements for each analyte. This conserves limited sample volume and increases analytical efficiency, which is useful when investigators want to examine coordinated immune responses or multiple infection-related biomarkers. The resulting profile can provide broader information than an isolated measurement of a single cytokine, antibody, or antigen.
A single-analyte approach focuses on one target per measurement, whereas this assay combines distinct bead populations so multiple targets can be evaluated from the same sample. Each population retains its own fluorescent identity, allowing the measurements to remain assigned to their respective analytes. This design supports broader profiling while reducing the amount of specimen required.
The workflow begins by combining the sample with distinct bead populations carrying target-specific capture antibodies or probes. During incubation, analytes bind to the appropriate beads. Labeled detection reagents are then used to generate analyte-dependent signals, and a flow-based or fluorescence-based instrument reads bead identity and signal intensity to quantify the targets.
Supported targets include cytokines, antibodies, antigens, and nucleic acid targets. The appropriate bead population carries a matching capture antibody or probe, while the detection system reports the resulting signal. Measuring these target classes together can help characterize immune responses, infection-related biomarkers, or other molecular patterns within a single specimen.
The method is useful for profiling immune responses and infection-related biomarkers, as well as for pathogen characterization. It also supports diagnostic research and evaluation of vaccine or therapeutic responses. By measuring several relevant targets together, investigators can monitor broader biological patterns rather than relying on one isolated immune or infection-associated measurement.