Related Experiment Video
Updated: Mar 13, 2026

In Vivo Biosensor Tracks Non-apoptotic Caspase Activity in Drosophila
Published on: November 27, 2016
Using a bioluminescence resonance energy transfer caspase biosensor to study caspase-3 cleavage site specificity
Véronique Blais1,2, Jean-Bernard Denault3
1Department of Pharmacology and Physiology, Faculty of Medicine and Health Sciences, Université de Sherbrooke, Sherbrooke, Québec J1H 5N4, Canada.
Abstract:
In its simplest representation, apoptosis is a two-step peptidase cascade in which initiator caspases (caspases-8, -9, and -10) activate executioner caspases (caspases-3, -6, and -7). Although many intricacies exist-such as the proteolysis of initiator caspases by executioner caspases, which further regulates their activity-apoptotic pathways ultimately converge on the activation of caspase-3, the most proteolytically proficient member of the family. This central role has led to the development of numerous enzymatic assays to detect caspase-3 activity, its activation, and the cleavage of hallmark substrates, such as poly(ADP-ribose) polymerase 1. Like other members of the caspase family, caspase-3 minimally recognizes a five-amino-acid motif, usually located in a well-exposed loop within its substrates. Caspase-3 cleavage-site motif preferences have been systematically studied using peptides but not proteins. Here, we use a simple recombinant protein-based double brilliance bioluminescence resonance energy transfer (BRET2) biosensor assay for caspase-3 that enables robust and quantitative kinetic measurements in vitro. We used the biosensor by assessing its ability to distinguish between optimal and suboptimal cleavage-site motifs using a panel of BRET2 biosensors incorporating all 20 amino acids at the critical P4 position (the fourth residue N-terminal to the scissile bond). Except for arginine and lysine, we successfully determined the catalytic specificity (kcat/KM) for all other residues at P4. Notably, the range of proteolytic efficacies observed with BRET biosensors was significantly narrower than that previously reported using peptide-based libraries. Finally, we confirmed the biosensor's utility in apoptotic cells, demonstrating its robustness and broad applicability.
Insights
This study introduces a novel protein-based biosensor assay to measure caspase-3 activity, revealing new insights into its substrate cleavage preferences and validating its use in apoptotic cells.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- Apoptosis involves a caspase cascade, with caspase-3 central to the process.
- Existing assays for caspase-3 activity often use peptides, limiting protein substrate insights.
- Understanding caspase-3 substrate specificity is crucial for studying apoptosis.
Purpose of the Study:
- To develop and validate a novel protein-based biosensor for quantitative kinetic measurements of caspase-3 activity.
- To systematically determine the catalytic specificity of caspase-3 for different amino acids at the P4 position of its substrates.
- To assess the utility of the biosensor in live apoptotic cells.
Main Methods:
- Development of a recombinant protein-based double brilliance bioluminescence resonance energy transfer (BRET2) biosensor assay.
- Systematic evaluation of caspase-3 cleavage-site motif preferences using BRET2 biosensors with variations at the P4 position.
- Kinetic analysis (kcat/KM) of caspase-3 activity.
- Validation of the biosensor in apoptotic cells.
Main Results:
- The BRET2 biosensor assay provides robust and quantitative kinetic measurements of caspase-3 activity in vitro.
- Catalytic specificity (kcat/KM) for caspase-3 was determined for 18 out of 20 amino acids at the P4 position.
- The range of proteolytic efficacies observed was narrower than previously reported with peptide-based libraries.
- The biosensor demonstrated utility and robustness in live apoptotic cells.
Conclusions:
- The novel protein-based BRET2 biosensor is a valuable tool for studying caspase-3 kinetics and substrate specificity.
- This assay offers a more biologically relevant approach compared to traditional peptide-based methods.
- The biosensor's applicability in cellular contexts highlights its potential for apoptosis research.

