14-3-3 binding to LRRK2 is disrupted by multiple Parkinson's disease-associated mutations and regulates cytoplasmic

R Jeremy Nichols1, Nicolas Dzamko, Nicholas A Morrice

  • 1University of Dundee, Scotland, UK. jnichols@parkinsonsinstitute.org

Insights

14-3-3 proteins bind to leucine-rich repeat protein kinase 2 (LRRK2) via phosphorylation at Ser910/Ser935. Disruption of this binding, seen in common Parkinson's disease mutations, causes LRRK2 to accumulate in cytoplasmic pools.

Area of Science:

  • Biochemistry
  • Neuroscience
  • Cell Biology

Background:

  • Leucine-rich repeat protein kinase 2 (LRRK2) mutations are linked to Parkinson's disease (PD).
  • The precise regulatory mechanisms and functions of LRRK2 remain incompletely understood.
  • Understanding LRRK2 regulation is crucial for developing effective PD therapies.

Purpose of the Study:

  • To investigate the interaction between 14-3-3 proteins and LRRK2.
  • To determine how LRRK2 phosphorylation affects 14-3-3 binding and cellular localization.
  • To explore the link between LRRK2-14-3-3 interaction disruption and Parkinson's disease pathogenesis.

Main Methods:

  • Co-immunoprecipitation assays to detect LRRK2 and 14-3-3 protein interactions.
  • Phosphorylation site analysis of LRRK2 at Ser910 and Ser935.
  • Cellular localization studies using microscopy to observe LRRK2 aggregation.
  • Analysis of LRRK2 mutations in patient-derived samples and knock-in mouse models.

Main Results:

  • 14-3-3 protein isoforms were found to interact with LRRK2 in vitro and in vivo.
  • Phosphorylation of LRRK2 at Ser910 and Ser935 mediates 14-3-3 binding.
  • Mutations disrupting 14-3-3 binding led to LRRK2 accumulation in cytoplasmic inclusions.
  • Five common pathogenic LRRK2 mutations showed reduced Ser910/Ser935 phosphorylation and impaired 14-3-3 interaction.
  • LRRK2(R1441C) knock-in mice exhibited reduced LRRK2 phosphorylation and 14-3-3 binding in tissues.

Conclusions:

  • 14-3-3 proteins regulate LRRK2 localization and function through phosphorylation-dependent binding.
  • Disruption of the LRRK2-14-3-3 interaction is implicated in Parkinson's disease pathogenesis.
  • Targeting the LRRK2-14-3-3 axis may offer a novel therapeutic strategy for Parkinson's disease.

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