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Molecular dynamics study of enhanced autophosphorylation by S904F mutation of the RET kinase domain
Ya-Jyun Chen1, Pei-Yi Li2, Chia-Ning Yang1
1Institute of Precision Medicine, National Sun Yat-sen University, Kaohsiung, Taiwan.
Abstract:
The aberrant kinase activity of RET (rearranged during transfection), a transmembrane tyrosine kinase, is associated with human cancer. A point mutation caused by the replacement of solvent-front hydrophilic S904, located on the activation loop (A-loop), with a bulky hydrophobic phenylalanine residue can induce resistance to the type I kinase inhibitor vandetanib. A possible mechanism of this drug resistance is the release of a cis-autoinhibited conformation of RET for autophosphorylation, which activates RET kinase. Because the association between S904F mutation and enhanced autophosphorylation is unclear, we conducted molecular modeling analysis to compare unphosphorylated apo wild-type and S904F mutant structures. The structural compactness of the A-loop promoted ATP binding. When the A-loop is extended, the αC helix moves toward the glycine-rich loop, resulting in the protrusion of F735. The extruded F735 connects with E734 and R912 and constrains the ATP pocket entrance. Contrarily, a contracted A-loop pulls the αC helix away from the glycine-rich loop, burying F734 and making the ATP pocket accessible. The mutated F904 stabilizes the contracted A-loop and releases the autoinhibited conformation of RET, thereby facilitating autophosphorylation. We also simulated two ATP-bound systems. The binding free energies of ATP, estimated through the molecular mechanics with a generalized Born and surface area solvation approach, revealed that the S904F mutant was bound more tightly than was the wild type with the ATP. The findings support the premise of autophosphorylation promotion in the S904F mutant.
Insights
The S904F mutation in RET kinase stabilizes an active conformation, promoting autophosphorylation and potentially causing resistance to vandetanib. This molecular insight aids in understanding cancer drug resistance mechanisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Aberrant kinase activity of RET (rearranged during transfection) is linked to human cancers.
- The S904F mutation confers resistance to vandetanib by potentially altering RET kinase conformation.
Purpose of the Study:
- To investigate the structural basis of S904F-mediated drug resistance in RET kinase.
- To elucidate the mechanism by which the S904F mutation enhances autophosphorylation.
Main Methods:
- Molecular modeling analysis of unphosphorylated apo wild-type and S904F mutant RET structures.
- Simulation of ATP-bound RET systems.
- Estimation of ATP binding free energies using molecular mechanics with generalized Born and surface area solvation.
Main Results:
- The S904F mutation stabilizes a contracted activation loop, releasing the autoinhibited conformation of RET.
- This stabilization facilitates ATP pocket accessibility and promotes autophosphorylation.
- The S904F mutant exhibits tighter binding with ATP compared to the wild-type RET kinase.
Conclusions:
- The S904F mutation promotes RET kinase autophosphorylation by stabilizing an active conformation.
- This finding supports the mechanism of vandetanib resistance mediated by the S904F mutation.
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