Exploring the Conformational Space of MPS1 Kinase Using Metadynamics

Anuradha Singh1, Naga Rajiv Lakkaniga1

  • 1Department of Chemistry and Chemical Biology, Indian Institute of Technology (Indian School of Mines), Dhanbad, India.

Proteins
|January 9, 2025
PubMed

Insights

Monopolar spindle 1 (MPS1) kinase is crucial for cell division and cancer, but drug development faces challenges. This study used simulations to reveal MPS1 kinase

Area of Science:

  • Molecular biology
  • Biochemistry
  • Structural biology

Background:

  • Monopolar spindle 1 (MPS1) kinase is a dual specificity kinase vital for the spindle assembly checkpoint during cell division.
  • Overexpression of MPS1 kinase is observed in various cancers, presenting a therapeutic target.
  • Current drug discovery efforts targeting MPS1 kinase have not yielded clinically successful candidates.

Purpose of the Study:

  • To explore the conformational landscape of MPS1 kinase beyond the known DFG "in" state.
  • To identify alternative conformations and transition states for structure-based drug design.
  • To understand the role of phosphorylation in MPS1 kinase conformational dynamics.

Main Methods:

  • Well-tempered metadynamics simulations were utilized to investigate MPS1 kinase's conformational space.
  • Simulations were initiated from the experimentally determined DFG "in" conformation.
  • Analysis focused on identifying key stabilizing interactions and the impact of phosphorylation.

Main Results:

  • The simulations successfully predicted the DFG "out" conformation of MPS1 kinase.
  • Key transition states between different conformations were identified.
  • Crucial interactions stabilizing various MPS1 kinase conformations were elucidated.
  • The influence of phosphorylation on MPS1 kinase conformation was determined.

Conclusions:

  • Exploring alternative conformations of MPS1 kinase, such as the DFG "out" state, is critical for developing novel inhibitors.
  • Understanding MPS1 kinase's conformational dynamics and the role of phosphorylation provides insights for structure-based drug design.
  • This study offers a foundation for designing more effective MPS1 kinase inhibitors for cancer therapy.