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Published on: September 9, 2021
Lanthanide-based time-resolved luminescence immunoassays
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.
Abstract:
The sensitive and specific detection of analytes such as proteins in biological samples is critical for a variety of applications, for example disease diagnosis. In immunoassays a signal in response to the concentration of analyte present is generated by use of antibodies labeled with radioisotopes, luminophores, or enzymes. All immunoassays suffer to some extent from the problem of the background signal observed in the absence of analyte, which limits the sensitivity and dynamic range that can be achieved. This is especially the case for homogeneous immunoassays and surface measurements on tissue sections and membranes, which typically have a high background because of sample autofluorescence. One way of minimizing background in immunoassays involves the use of lanthanide chelate labels. Luminescent lanthanide complexes have exceedingly long-lived luminescence in comparison with conventional fluorophores, enabling the short-lived background interferences to be removed via time-gated acquisition and delivering greater assay sensitivity and a broader dynamic range. This review highlights the potential of using lanthanide luminescence to design sensitive and specific immunoassays. Techniques for labeling biomolecules with lanthanide chelate tags are discussed, with aspects of chelate design. Microtitre plate-based heterogeneous and homogeneous assays are reviewed and compared in terms of sensitivity, dynamic range, and convenience. The great potential of surface-based time-resolved imaging techniques for biomolecules on gels, membranes, and tissue sections using lanthanide tracers in proteomics applications is also emphasized.
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