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Updated: Apr 3, 2026

Measuring Composition of CD95 Death-Inducing Signaling Complex and Processing of Procaspase-8 in this Complex
Published on: August 2, 2021
Molecular basis of death effector domain chain assembly and its role in caspase-8 activation
Nitu Singh1, Ali Hassan1, Kakoli Bose2
1Integrated Biophysics and Structural Biology Laboratory, Advanced Centre for Treatment, Research, and Education in Cancer, Navi Mumbai, India.
Abstract:
Assembly of a death-inducing signaling complex is a key event in the extrinsic apoptotic pathway, enabling activation of the caspase cascade and subsequent cell death. However, the molecular events governing DISC assembly have remained largely elusive because of the lack of information on mechanism and specificity regulating the death effector domain (DED)-DED interaction network. Using molecular modeling, mutagenesis, and biochemical and ex vivo experiments, we identified the precise binding interface and hot spots crucial for intermolecular DED chain assembly. Mutation of key interface residues (Leu42/Phe45) in procaspase-8 DED-A completely abrogated DED chain formation in HEK293 cells and prevented its association with FADD. A significant 2.6-3.6-fold reduction in procaspase-8 activation was observed in functional cell-death assays after substitution of the interfacial residues. Based on our results we propose a new model for DISC formation that refines the current understanding of the activation mechanism. Upon stimulation, FADD self-associates weakly via reciprocal interaction between helices α1/α4 and α2/α3 of the DED to form an oligomeric signaling platform that provides a stage for the initial recruitment of procaspase-8 through direct interaction with α1/α4 of DED-A, followed by sequential interaction mediated by helices α2/α5 of DED-B, to form the procaspase-8 DED chain that is crucial for its activation and subsequent cell death.
Insights
Researchers elucidated the precise molecular interactions driving death-inducing signaling complex (DISC) assembly. Understanding these death effector domain (DED) interactions reveals how procaspase-8 is activated, crucial for extrinsic apoptosis.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- The extrinsic apoptotic pathway relies on death-inducing signaling complex (DISC) assembly for caspase activation.
- The precise mechanisms governing death effector domain (DED)-DED interactions in DISC assembly remain poorly understood.
Purpose of the Study:
- To identify the specific binding interface and critical residues involved in intermolecular DED chain assembly.
- To elucidate the molecular mechanism of procaspase-8 recruitment and activation within the DISC.
Main Methods:
- Molecular modeling
- Site-directed mutagenesis
- Biochemical assays
- Ex vivo experiments
- HEK293 cell-based assays
Main Results:
- Identified key interface residues (Leu42/Phe45) in procaspase-8 DED-A essential for DED chain formation and FADD association.
- Mutating these residues significantly reduced procaspase-8 activation (2.6-3.6 fold) in cell-death assays.
- Proposed a refined model for DISC formation involving FADD self-association and sequential procaspase-8 recruitment via DED-DED interactions.
Conclusions:
- The study precisely defines the DED-DED interaction interface crucial for DISC assembly and procaspase-8 activation.
- A new model clarifies the sequential recruitment and chain formation of procaspase-8, refining the understanding of extrinsic apoptosis initiation.
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