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Updated: Nov 15, 2025

Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Mechanistic insights into the effect of phosphorylation on Ras conformational dynamics and its interactions with cell
Yuanhao Wang1, Dong Ji2, Chaoyu Lei1
1Department of Pathophysiology, Key Laboratory of Cell Differentiation and Apoptosis of Chinese Ministry of Education, Shanghai Jiao Tong University, School of Medicine, Shanghai 200025, China.
Abstract:
Ras undergoes interconversion between the active GTP-bound state and the inactive GDP-bound state. This GTPase cycle, which controls the activities of Ras, is accelerated by Ras GTPase-activating proteins (GAPs) and guanine nucleotide exchange factors (SOS). Oncogenic Ras mutations could affect the GTPase cycle and impair Ras functions. Additionally, Src-induced K-Ras Y32/64 dual phosphorylation has been reported to disrupt GTPase cycle and hinder Ras downstream signaling. However, the underlying mechanisms remain unclear. To address this, we performed molecular dynamics simulations (~30 μs in total) on unphosphorylated and phosphorylated K-Ras4B in GTP- and GDP-bound states, and on their complexes with GTPase cycle regulators (GAP and SOS) and the effector protein Raf. We found that K-Ras4B dual phosphorylation mainly alters the conformation at the nucleotide binding site and creates disorder at the catalytic site, resulting in the enlargement of GDP binding pocket and the retard of Ras-GTP intrinsic hydrolysis. We observed phosphorylation-induced shift in the distribution of Ras-GTP inactive-active sub-states and recognized potential druggable pockets in the phosphorylated Ras-GTP. Moreover, decreased catalytic competence or signal delivery abilities due to reduced binding affinities and/or distorted catalytic conformations of GAP, SOS and Raf were observed. In addition, the allosteric pathway from Ras/Raf interface to the distal Raf L4 loop was compromised by Ras phosphorylation. These results reveal the mechanisms by which phosphorylation influences the intrinsic or GAP/SOS catalyzed transformations between GTP- and GDP-bound states of Ras and its signal transduction to Raf. Our findings project Ras phosphorylation as a target for cancer drug discovery.
Insights
Ras phosphorylation disrupts its GTPase cycle by altering nucleotide binding and catalytic sites. This impacts interactions with regulators and effectors, suggesting Ras phosphorylation as a cancer drug target.
Area of Science:
- Molecular Biology
- Biochemistry
- Computational Biology
Background:
- Ras proteins cycle between active GTP-bound and inactive GDP-bound states, regulating cellular signaling.
- Guanine nucleotide exchange factors (GEFs) and GTPase-activating proteins (GAPs) modulate this cycle.
- Oncogenic Ras mutations and specific phosphorylations, like K-Ras Y32/64, can disrupt this cycle and downstream signaling.
Purpose of the Study:
- To elucidate the molecular mechanisms by which K-Ras4B dual phosphorylation affects the GTPase cycle and downstream signaling.
- To investigate the impact of phosphorylation on Ras interactions with regulators (GAP, SOS) and effectors (Raf).
Main Methods:
- Extensive molecular dynamics (MD) simulations (~30 μs total) were employed.
- Simulations included unphosphorylated and phosphorylated K-Ras4B (GTP- and GDP-bound states).
- Complexes with GAP, SOS, and Raf were simulated to assess interaction dynamics.
Main Results:
- K-Ras4B dual phosphorylation alters nucleotide binding site conformation and catalytic site dynamics.
- Phosphorylation enlarges the GDP binding pocket, retarding Ras-GTP intrinsic hydrolysis.
- Reduced binding affinities and distorted conformations were observed for GAP, SOS, and Raf complexes.
- The allosteric pathway between Ras and Raf was compromised by phosphorylation.
Conclusions:
- Phosphorylation fundamentally alters Ras GTPase cycle dynamics and effector interactions.
- These molecular changes explain impaired Ras function and signaling.
- Ras phosphorylation represents a potential therapeutic target for cancer treatment.
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