Related Experiment Video
Updated: May 14, 2026

Luminescence Resonance Energy Transfer to Study Conformational Changes in Membrane Proteins Expressed in Mammalian Cells
Published on: September 16, 2014
Time-resolved luminescence detection of spleen tyrosine kinase activity through terbium sensitization
Andrew M Lipchik1, Laurie L Parker
1Department of Medicinal Chemistry and Molecular Pharmacology and Purdue Center for Cancer Research, Purdue University, 201 S. University Street, West Lafayette, Indiana 47907, United States.
Abstract:
Disruption of regulatory protein phosphorylation can lead to disease and is particularly prevalent in cancers. Inhibitors that target deregulated kinases are therefore a major focus of chemotherapeutic development. Achieving sensitivity and specificity in high-throughput compatible kinase assays is key to successful inhibitor development. Here, we describe the application of time-resolved luminescence detection to the direct sensing of spleen tyrosine kinase (Syk) activity and inhibition using a novel peptide substrate. Chelation and luminescence sensitization of Tb(3+) allowed the direct detection of peptide phosphorylation without any antibodies or other labeling reagents. Characterizing the Tb(3+) coordination properties of the phosphorylated vs unphosphorylated form of the peptide revealed that an inner-sphere water was displaced upon phosphorylation, which likely was responsible for both enhancing the luminescence intensity and also extending the lifetime, which enabled gating of the luminescence signal to improve the dynamic range. Furthermore, a shift in the optimal absorbance maximum for excitation was observed, from 275 nm (for the unphosphorylated tyrosine peptide) to 266 nm (for the phosphorylated tyrosine peptide). Accordingly, time-resolved measurements with excitation at 266 nm via a monochromator enabled a 16-fold improvement in base signal-to-noise for distinguishing phosphopeptide from unphosphorylated peptide. This led to a high degree of sensitivity and quantitative reproducibility, demonstrating the amenability of this method to both research laboratory and high-throughput applications.
Insights
A novel time-resolved luminescence assay directly detects spleen tyrosine kinase (Syk) activity and inhibition. This method enhances sensitivity and specificity for kinase inhibitor development, crucial for cancer research.
Area of Science:
- Biochemistry
- Molecular Biology
- Chemical Biology
Background:
- Disrupted protein phosphorylation is linked to diseases, especially cancers.
- Kinase inhibitors are vital in cancer chemotherapeutic development.
- Sensitive and specific high-throughput kinase assays are essential for inhibitor discovery.
Purpose of the Study:
- To develop a direct, sensitive, and specific assay for spleen tyrosine kinase (Syk) activity.
- To apply time-resolved luminescence detection for monitoring Syk inhibition.
- To enable high-throughput screening of Syk inhibitors.
Main Methods:
- Utilized time-resolved luminescence detection with a novel peptide substrate for Syk.
- Employed terbium (Tb(3+)) chelation and luminescence sensitization for direct phosphopeptide sensing.
- Investigated changes in Tb(3+) coordination and luminescence properties upon peptide phosphorylation.
Main Results:
- Direct detection of peptide phosphorylation was achieved without antibodies or labels.
- Phosphorylation displaced inner-sphere water, enhancing luminescence intensity and lifetime.
- Time-resolved measurements with specific excitation (266 nm) improved signal-to-noise by 16-fold.
- Demonstrated high sensitivity and quantitative reproducibility for Syk activity and inhibition.
Conclusions:
- The developed luminescence assay provides a sensitive and specific method for detecting Syk activity.
- This approach is suitable for both research and high-throughput screening of kinase inhibitors.
- The method offers a valuable tool for advancing chemotherapeutic development targeting deregulated kinases.

