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Updated: Jul 8, 2025

Lighting Up the Pathways to Caspase Activation Using Bimolecular Fluorescence Complementation
Published on: March 5, 2018
Activation of caspase-9 on the apoptosome as studied by methyl-TROSY NMR
Alexander I M Sever1,2, T Reid Alderson1,3,4, Enrico Rennella1,3,4
1Department of Chemistry, University of Toronto, Toronto, ON M5S 3H6, Canada.
Abstract:
Mitochondrial apoptotic signaling cascades lead to the formation of the apoptosome, a 1.1-MDa heptameric protein scaffold that recruits and activates the caspase-9 protease. Once activated, caspase-9 cleaves and activates downstream effector caspases, triggering the onset of cell death through caspase-mediated proteolysis of cellular proteins. Failure to activate caspase-9 enables the evasion of programmed cell death, which occurs in various forms of cancer. Despite the critical apoptotic function of caspase-9, the structural mechanism by which it is activated on the apoptosome has remained elusive. Here, we used a combination of methyl-transverse relaxation-optimized NMR spectroscopy, protein engineering, and biochemical assays to study the activation of caspase-9 bound to the apoptosome. In the absence of peptide substrate, we observed that both caspase-9 and its isolated protease domain (PD) only very weakly dimerize with dissociation constants in the millimolar range. Methyl-NMR spectra of isotope-labeled caspase-9, within the 1.3-MDa native apoptosome complex or an engineered 480-kDa apoptosome mimic, reveal that the caspase-9 PD remains monomeric after recruitment to the scaffold. Binding to the apoptosome, therefore, organizes caspase-9 PDs so that they can rapidly and extensively dimerize only when substrate is present, providing an important layer in the regulation of caspase-9 activation. Our work highlights the unique role of NMR spectroscopy to structurally characterize protein domains that are flexibly tethered to large scaffolds, even in cases where the molecular targets are in excess of 1 MDa, as in the present example.
Insights
The apoptosome scaffold organizes caspase-9 protease domains, keeping them monomeric until substrate binding triggers dimerization and activation. This reveals a key regulatory step in programmed cell death, crucial for understanding cancer evasion of apoptosis.
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- Mitochondrial apoptotic signaling involves the apoptosome scaffold activating caspase-9.
- Caspase-9 activation is essential for programmed cell death but is often evaded in cancer.
- The structural mechanism of caspase-9 activation on the apoptosome remains unclear.
Purpose of the Study:
- To elucidate the structural mechanism of caspase-9 activation on the apoptosome.
- To investigate the role of the apoptosome scaffold in regulating caspase-9 activity.
Main Methods:
- Methyl-transverse relaxation-optimized NMR spectroscopy was used to study caspase-9.
- Protein engineering and biochemical assays were employed to analyze caspase-9-apoptosome interactions.
- NMR was applied to both native 1.3-MDa apoptosome complexes and engineered mimics.
Main Results:
- Caspase-9 and its protease domain (PD) exhibit weak dimerization in isolation.
- Caspase-9 PD remains monomeric upon recruitment to the apoptosome scaffold.
- Apoptosome binding facilitates rapid and extensive caspase-9 PD dimerization only in the presence of substrate.
Conclusions:
- The apoptosome organizes caspase-9, enabling substrate-induced dimerization and activation.
- This provides a critical regulatory mechanism for controlling programmed cell death.
- NMR spectroscopy is effective for characterizing large, multi-MDa protein complexes like the apoptosome.
Related Concept Videos
Caspases
The Extrinsic Apoptotic Pathway
The Intrinsic Apoptotic Pathway

