Hydrophobic interactions and electrostatic forces help retain proteins and nucleic acids on the membrane surface. Its porosity provides a broad capture area while leaving immobilized molecules accessible for subsequent probing. This combination supports analysis after transfer from an electrophoresis gel or after direct sample application, allowing captured targets to be examined outside the original separation format.
Blocking follows molecule capture to limit nonspecific binding to the membrane. This step helps direct subsequent binding toward the intended protein or nucleic acid target rather than unoccupied membrane regions. After blocking, labeled probes or antibodies can be introduced for detection, supporting clearer interpretation of target presence and abundance in the immobilized sample.
Gel transfer moves previously separated biomolecules onto the membrane, preserving their positions for analysis related to molecular size. Direct application places a sample on the surface without that electrophoretic separation step. Both approaches immobilize targets for probing, but they provide different starting formats for examining proteins or nucleic acids.
A sample is either separated by electrophoresis and transferred to the membrane or applied directly to its surface. The membrane is then blocked to limit nonspecific binding, followed by addition of labeled probes or antibodies. The resulting target-specific detection provides a basis for analyzing the captured biomolecules in their immobilized format.
The technique supports several assay formats, including Western blotting, dot blots, immunoassays, and nucleic acid hybridization studies. Western blotting can examine transferred proteins, whereas dot blots and immunoassays provide membrane-based target detection without requiring the same presentation. Hybridization studies extend the approach to immobilized nucleic acids.
Membrane-based analysis can support qualitative and quantitative assessment of target abundance and expression. When molecules were first separated by electrophoresis, their positions on the membrane can also contribute information about molecular size. Because the captured material remains in a stable, accessible format, researchers can probe and interpret targets after the initial sample handling step.