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Author Spotlight: Evaluating Biophysical Assays for Characterizing PROTACS Ternary Complexes
Published on: January 12, 2024
Decoding the Heterodimer Stability of Pro-Apoptotic Effectors via Multiscale Simulations: Mutational Insights Into
Pratyush Pani1,2, Anvesha Shree1, Malay Kumar Rana1
1Physical and Biomolecular Research Lab, Department of Chemical Sciences, Indian Institute of Science Education and Research (IISER) Berhampur, Ganjam, Odisha, India.
Abstract:
The BCL-2 protein family plays a central role in regulating mitochondrial apoptosis, with Bcl-2 antagonist killer 1 (BAK) and Bcl-2-associated X protein (BAX) acting as key effectors that oligomerize to disrupt the outer mitochondrial membrane. While the mechanisms behind their homo-oligomerization are well studied, much less is known about their heterodimer. In this work, we explored how specific point mutations at the BAK-BAX interface affect the heterodimer's structure, dynamics, and energetics. Using DUET, we identified stabilizing and destabilizing mutations from both subunits, which were then subjected to 1 μs molecular dynamics simulations. Across multiple structural metrics, the L78D mutation in BAK consistently appeared to enhance rigidity and compactness, while the D68I mutation in BAX led to increased flexibility and conformational drift. Steered MD shows that BAK-L78D strengthens the BAK-BAX interface, resisting separation, whereas BAX-D68I weakens it, leading to faster dissociation. Markov state modeling with Kullback-Leibler divergence indicates that BAK-L78D mirrors wild-type dynamics, while BAX-D68I deviates across key slow motions. Alchemical free energy calculations further delineates the cost of transformation from one amino acid to the other in case of both the mutations. Together, these results highlight BAK-L78D as a stabilizing mutation and BAX-D68I as a destabilizing variant that modulates complex integrity.
Insights
Investigating mutations in the BCL-2 protein family, this study reveals how specific changes in BAK and BAX proteins affect their heterodimer complex. BAK-L78D stabilizes the complex, while BAX-D68I destabilizes it, impacting mitochondrial apoptosis regulation.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- The BCL-2 protein family regulates mitochondrial apoptosis.
- BAK and BAX are key effector proteins in apoptosis.
- BAK-BAX heterodimerization mechanisms are less understood than homo-oligomerization.
Purpose of the Study:
- To investigate the impact of specific point mutations at the BAK-BAX interface on heterodimer structure, dynamics, and energetics.
- To identify stabilizing and destabilizing mutations within the BAK-BAX complex.
Main Methods:
- DUET for mutation identification.
- 1 μs molecular dynamics simulations.
- Steered molecular dynamics (SMD).
- Markov state modeling (MSM) with Kullback-Leibler divergence.
- Alchemical free energy calculations.
Main Results:
- BAK-L78D mutation enhanced complex rigidity and compactness.
- BAX-D68I mutation increased flexibility and conformational drift.
- BAK-L78D strengthened the BAK-BAX interface, resisting dissociation.
- BAX-D68I weakened the interface, leading to faster dissociation.
- BAK-L78D dynamics mirrored wild-type, while BAX-D68I showed deviations.
Conclusions:
- BAK-L78D is a stabilizing mutation for the BAK-BAX heterodimer.
- BAX-D68I is a destabilizing mutation, modulating complex integrity.
- Understanding these mutations provides insights into apoptosis regulation.
Related Concept Videos
The Intrinsic Apoptotic Pathway
Caspases
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The Extrinsic Apoptotic Pathway
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