Lanthanide-based time-resolved luminescence immunoassays

A K Hagan1, T Zuchner

  • 1Institute of Bioanalytical Chemistry, Center of Biotechnology and Biomedicine, Faculty of Chemistry and Mineralogy, Leipzig University, Germany.

Insights

Lanthanide luminescence offers a powerful method to enhance immunoassay sensitivity and specificity. By utilizing long-lived luminescence, these assays overcome background noise for improved disease diagnosis and proteomics applications.

Area of Science:

  • Biochemistry
  • Analytical Chemistry
  • Biotechnology

Background:

  • Immunoassays are crucial for detecting analytes like proteins in disease diagnosis.
  • High background signals, especially from autofluorescence, limit immunoassay sensitivity and dynamic range.
  • Conventional fluorophores in immunoassays are susceptible to short-lived background interferences.

Purpose of the Study:

  • To review the potential of lanthanide luminescence for designing sensitive and specific immunoassays.
  • To discuss techniques for labeling biomolecules with lanthanide chelate tags and chelate design.
  • To compare microtitre plate-based heterogeneous and homogeneous assays and highlight surface-based imaging techniques.

Main Methods:

  • Utilizing lanthanide chelate labels with long-lived luminescence properties.
  • Employing time-gated acquisition to remove short-lived background interferences.
  • Reviewing and comparing microtitre plate-based assays and surface-based imaging techniques.

Main Results:

  • Lanthanide luminescence enables removal of background noise, increasing assay sensitivity and dynamic range.
  • Time-gated acquisition effectively minimizes interferences from sample autofluorescence.
  • Surface-based time-resolved imaging shows great potential for biomolecule detection in proteomics.

Conclusions:

  • Lanthanide luminescence is a promising approach for developing highly sensitive and specific immunoassays.
  • This technology significantly improves upon conventional methods by reducing background noise.
  • Applications span disease diagnosis to advanced proteomics research using time-resolved imaging.