Markov State Models and Molecular Dynamics Simulations Provide Understanding of the Nucleotide-Dependent Dimerization-Based Activation of LRRK2 ROC Domain

Molecules. 2021 Sep 17;26(18):5647. doi: 10.3390/molecules26185647.

Abstract

Mutations in leucine-rich repeat kinase 2 (LRRK2) are recognized as the most frequent cause of Parkinson's disease (PD). As a multidomain ROCO protein, LRRK2 is characterized by the presence of both a Ras-of-complex (ROC) GTPase domain and a kinase domain connected through the C-terminal of an ROC domain (COR). The bienzymatic ROC-COR-kinase catalytic triad indicated the potential role of GTPase domain in regulating kinase activity. However, as a functional GTPase, the detailed intrinsic regulation of the ROC activation cycle remains poorly understood. Here, combining extensive molecular dynamics simulations and Markov state models, we disclosed the dynamic structural rearrangement of ROC's homodimer during nucleotide turnover. Our study revealed the coupling between dimerization extent and nucleotide-binding state, indicating a nucleotide-dependent dimerization-based activation scheme adopted by ROC GTPase. Furthermore, inspired by the well-known R1441C/G/H PD-relevant mutations within the ROC domain, we illuminated the potential allosteric molecular mechanism for its pathogenetic effects through enabling faster interconversion between inactive and active states, thus trapping ROC in a prolonged activated state, while the implicated allostery could provide further guidance for identification of regulatory allosteric pockets on the ROC complex. Our investigations illuminated the thermodynamics and kinetics of ROC homodimer during nucleotide-dependent activation for the first time and provided guidance for further exploiting ROC as therapeutic targets for controlling LRRK2 functionality in PD treatment.

Keywords: Markov state models; Parkinson’s disease; Ras-of-complex GTPase domain; leucine-rich repeat kinase 2 (LRRK2); molecular dynamics (MD) simulations; network analysis.

MeSH terms

  • GTP Phosphohydrolases / chemistry
  • GTP Phosphohydrolases / genetics
  • GTP Phosphohydrolases / metabolism
  • Humans
  • Leucine-Rich Repeat Serine-Threonine Protein Kinase-2* / chemistry
  • Leucine-Rich Repeat Serine-Threonine Protein Kinase-2* / genetics
  • Leucine-Rich Repeat Serine-Threonine Protein Kinase-2* / metabolism
  • Markov Chains
  • Molecular Dynamics Simulation*
  • Mutation
  • Nucleotides / chemistry
  • Nucleotides / metabolism
  • Parkinson Disease / genetics
  • Parkinson Disease / metabolism
  • Protein Binding
  • Protein Domains
  • Protein Multimerization*

Substances

  • Leucine-Rich Repeat Serine-Threonine Protein Kinase-2
  • LRRK2 protein, human
  • Nucleotides
  • GTP Phosphohydrolases