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Reconstruction of the Fas-Based Death-Inducing Signaling Complex (DISC) Using a Protein-Protein Docking Meta-Approach
Sayyed Jalil Mahdizadeh1, Melissa Thomas1, Leif A Eriksson1
1Department of Chemistry and Molecular Biology, University of Gothenburg, 405 30 Göteborg, Sweden.
Abstract:
The death-inducing signaling complex (DISC) is a fundamental multiprotein complex, which triggers the extrinsic apoptosis pathway through stimulation by death ligands. DISC consists of different death domain (DD) and death effector domain (DED) containing proteins such as the death receptor Fas (CD95) in complex with FADD, procaspase-8, and cFLIP. Despite many experimental and theoretical studies in this area, there is no global agreement neither on the DISC architecture nor on the mechanism of action of the involved species. In the current work, we have tried to reconstruct the DISC structure by identifying key protein interactions using a new protein-protein docking meta-approach. We combined the benefits of five of the most employed protein-protein docking engines, HADDOCK, ClusPro, HDOCK, GRAMM-X, and ZDOCK, in order to improve the accuracy of the predicted docking complexes. Free energy of binding and hot spot interacting residues were calculated and determined for each protein-protein interaction using molecular mechanics generalized Born surface area and alanine scanning techniques, respectively. In addition, a series of in-cellulo protein-fragment complementation assays were conducted to validate the protein-protein docking procedure. The results show that the DISC formation initiates by dimerization of adjacent FasDD trimers followed by recruitment of FADD through homotypic DD interactions with the oligomerized death receptor. Furthermore, the in-silico outcomes indicate that cFLIP cannot bind directly to FADD; instead, cFLIP recruitment to the DISC is a hierarchical and cooperative process where FADD initially recruits procaspase-8, which in turn recruits and heterodimerizes with cFLIP. Finally, a possible structure of the entire DISC is proposed based on the docking results.
Insights
Researchers reconstructed the death-inducing signaling complex (DISC) structure using a novel protein-protein docking meta-approach. This study clarifies DISC assembly, revealing Fas dimerization and hierarchical recruitment of FADD, procaspase-8, and cFLIP for extrinsic apoptosis.
Area of Science:
- Cell Biology
- Molecular Biology
- Structural Biology
Background:
- The death-inducing signaling complex (DISC) initiates extrinsic apoptosis upon death ligand binding.
- DISC components include Fas (CD95), FADD, procaspase-8, and cFLIP, but its precise architecture and assembly mechanism remain debated.
- Understanding DISC structure is crucial for deciphering apoptosis regulation.
Purpose of the Study:
- To reconstruct the molecular architecture of the DISC.
- To elucidate the mechanism of DISC assembly and protein recruitment.
- To identify key protein-protein interactions within the DISC.
Main Methods:
- Utilized a meta-approach combining five protein-protein docking engines (HADDOCK, ClusPro, HDOCK, GRAMM-X, ZDOCK).
- Calculated binding free energies and identified hot spot residues using MM/GBSA and alanine scanning.
- Validated in-silico predictions with in-cellulo protein-fragment complementation assays.
Main Results:
- DISC formation begins with FasDD trimer dimerization, followed by FADD recruitment via homotypic death domain interactions.
- cFLIP does not directly bind FADD; its recruitment is hierarchical, involving procaspase-8 as an intermediary.
- Procaspase-8 is recruited by FADD and subsequently heterodimerizes with cFLIP.
Conclusions:
- A refined model for DISC assembly and architecture is proposed based on integrated computational and experimental data.
- The findings clarify the sequential recruitment and interaction dynamics of DISC components.
- This work provides a structural basis for understanding the extrinsic apoptosis pathway initiation.
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