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Author Spotlight: Evaluating Biophysical Assays for Characterizing PROTACS Ternary Complexes
Published on: January 12, 2024
Unraveling the Binding Mode of TSC2-Rheb through Protein Docking and Simulations
Berith F Pape1, Shraddha Parate1, Leif A Eriksson1
1Department of Chemistry and Molecular Biology, University of Gothenburg, Göteborg 405 30, Sweden.
Abstract:
Proteasome inhibitors (PIs) constitute the first line of therapy for multiple myeloma (MM). Despite the impressive clinical efficacy, MM remains fatal due to the development of drug resistance over time. During MM progression, stress responses to hypoxia and PIs suppress mammalian target of rapamycin complex 1 (mTORC1) activity by releasing tuberous sclerosis complex 2 (TSC2), which deactivates Ras homologue enriched in brain (Rheb), a crucial regulator of mTORC1. The efficacy of PIs targeting MM is enhanced when mTORC1 is hyperactivated. We thus propose that the inhibition of TSC2 will improve the efficacy of PIs targeting MM. To the best of our knowledge, no cocrystallized structure of the TSC2-Rheb complex has been reported. We therefore developed a representative model using the individual structures of TSC2 (PDB: 7DL2) and Rheb (PDB: 1XTS). Computational modeling involving an extensive protein-protein docking consensus approach was performed to determine the putative binding mode of TSC2-Rheb. The proposed docking poses were refined, clustered, and evaluated by MD simulations to explore the conformational dynamics and protein mobility, particularly at the drug-binding interface of TSC2-Rheb. Our results agree with the suggested binding mode of TSC2-Rheb previously reported in the literature. The results reported herein establish a basis for the development of new inhibitors blocking the binding of TSC2 and Rheb, aiming to reinstate mTORC1 activation and facilitate improved efficacy of PIs against multiple myeloma.
Insights
Inhibiting tuberous sclerosis complex 2 (TSC2) can enhance proteasome inhibitors (PIs) efficacy against multiple myeloma (MM). This approach aims to restore mammalian target of rapamycin complex 1 (mTORC1) activation, overcoming drug resistance in MM patients.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Proteasome inhibitors (PIs) are first-line therapy for multiple myeloma (MM), but drug resistance limits efficacy.
- Hypoxia and PIs induce stress responses that suppress mammalian target of rapamycin complex 1 (mTORC1) activity via tuberous sclerosis complex 2 (TSC2) and Ras homologue enriched in brain (Rheb).
Purpose of the Study:
- To investigate the potential of inhibiting TSC2 to enhance PI efficacy in MM.
- To computationally model the TSC2-Rheb complex and identify potential drug-binding interfaces.
Main Methods:
- Utilized individual protein structures (TSC2: PDB 7DL2, Rheb: PDB 1XTS) to develop a representative TSC2-Rheb complex model.
- Employed protein-protein docking and molecular dynamics (MD) simulations to refine and evaluate the binding mode and dynamics.
Main Results:
- A putative binding mode for the TSC2-Rheb complex was determined, consistent with existing literature.
- MD simulations provided insights into conformational dynamics and protein mobility at the TSC2-Rheb interface.
Conclusions:
- The study provides a structural basis for developing novel inhibitors targeting the TSC2-Rheb interaction.
- Restoring mTORC1 activation by inhibiting TSC2 may offer a strategy to improve PI efficacy against resistant MM.
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