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Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
V600E biases the BRAF kinase domain toward an activation-compatible conformational ensemble through long-range
Bao-Dan Zhang1,2,3, Qi Xi1,2,3, Yu-Meng Ying1,2,3
1College of Agriculture and Biological Science, Dali University Dali 671000 China ylqbioinfo@dali.edu.cn pengsang@dali.edu.cn.
Abstract:
How oncogenic mutations reshape kinase conformational ensembles to favor aberrant signaling remains incompletely understood. Here, we combined microsecond-scale molecular dynamics simulations, Markov state models, and neural relational inference to investigate how the V600E mutation remodels the dynamics of the inactive-like, nucleotide-bound BRAF kinase domain. V600E did not produce a single fully active conformation but instead biased the kinase toward an activation-compatible conformational ensemble. MSM analysis revealed pronounced enrichment of a dominant metastable state, S3, characterized by a shortened Lys483-Glu501 Cα-Cα distance and a more inward αC-helix arrangement. This mutation-enriched state was kinetically stabilized, as indicated by prolonged mean first passage times for transitions from S3 to the minor states. At the dynamic-network level, V600E reorganized long-range coordination among the P-loop, αC-helix, activation loop, and distal flexible regions and altered preferred model-inferred communication routes connecting these regulatory elements. Together, these results support a model in which V600E preorganizes the inactive-like BRAF kinase domain toward activation-compatible conformations through conformational reweighting and long-range dynamic rewiring. Such conformational preorganization may facilitate oncogenic signaling in the presence of the additional regulatory interactions required for complete kinase activation.
Insights
The V600E mutation in BRAF kinase does not create one active form but shifts its dynamics toward conformations that enable signaling. This oncogenic mutation stabilizes a key state, facilitating aberrant cell communication.
Area of Science:
- Molecular Biology
- Biophysics
- Computational Biology
Background:
- Oncogenic mutations' role in kinase signaling is not fully understood.
- Understanding how mutations alter kinase dynamics is crucial for targeted therapies.
Purpose of the Study:
- Investigate how the V600E mutation affects the BRAF kinase domain's conformational dynamics.
- Elucidate the mechanisms by which V600E promotes aberrant signaling.
Main Methods:
- Microsecond-scale molecular dynamics (MD) simulations.
- Markov state models (MSM) for analyzing MD trajectories.
- Neural relational inference for network dynamics.
Main Results:
- V600E mutation biases BRAF kinase toward an ensemble of activation-compatible conformations.
- A dominant metastable state (S3) with specific structural features (shortened Lys483-Glu501 distance, inward αC-helix) is enriched and stabilized.
- Long-range coordination and communication pathways among regulatory elements are reorganized by V600E.
Conclusions:
- V600E preorganizes the BRAF kinase domain towards activation-compatible states via conformational reweighting and dynamic rewiring.
- This preorganization facilitates oncogenic signaling by lowering the barrier for full kinase activation.
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