The two agar layers create complementary physical conditions for localized infection. A firm bottom agar supports the culture, while molten, low-concentration top agar temporarily suspends host bacteria and phage above it. This arrangement allows newly released virions to move through nearby cells rather than dispersing throughout the entire culture, producing spatially interpretable lysis zones.
Plaques arise from successive infection cycles, not simply from the presence of phage particles. A phage infects a susceptible bacterium, replicates inside that cell, and releases new virions when the cell is lysed. Repetition among nearby bacteria removes cells from the lawn, so the resulting clear region records localized propagation and lytic activity.
Counting visible plaques provides an estimate of phage concentration, while plaque formation can be used to assess infectivity. In this way, the assay links a visible outcome in the bacterial lawn to two practical measurements: how much phage is present and whether it can produce infection and lysis in the tested host.
For host-range studies, the same phage can be examined with different bacterial hosts and the resulting plaque formation compared. Plaques indicate that infection and lysis occurred in the tested host under the assay conditions. Differences in plaque formation therefore provide a direct way to investigate which bacteria a phage can infect.
A basic workflow combines host bacteria and phage in molten, low-concentration top agar, then pours that mixture over a firm bottom agar layer. After the layers are established, researchers examine the bacterial lawn for clear lysis zones. Counting those plaques supplies quantitative information about phage concentration and infectivity.
The essential setup includes a bacterial host, a phage sample, molten top agar at low concentration, and a firm bottom agar layer. The top layer must allow phage and bacteria to remain near one another, whereas the bottom layer provides a stable surface. Together, these conditions support localized infection and visible plaque development.
Beyond estimating phage concentration, the method supports phage isolation, host-range studies, and virus characterization. It also helps researchers investigate bacteria-phage interactions by showing where infection and lysis occur in relation to a bacterial lawn. These applications make plaque formation a practical experimental readout for studying bacteriophages in biology.