RAB7L1-Mediated Relocalization of LRRK2 to the Golgi Complex Causes Centrosomal Deficits via RAB8A

Jesús Madero-Pérez1, Belén Fernández1, Antonio Jesús Lara Ordóñez1

  • 1Institute of Parasitology and Biomedicine "López-Neyra", Consejo Superior de Investigaciones Científicas, Granada, Spain.

Insights

Parkinson's disease (PD) involves LRRK2 and RAB7L1 proteins. This study shows RAB7L1 recruits LRRK2 to the Golgi, causing centrosomal deficits via RAB8A phosphorylation, offering a cellular readout for PD.

Area of Science:

  • Cell Biology
  • Neuroscience
  • Genetics

Background:

  • Mutations in Leucine-rich repeat kinase 2 (LRRK2) cause autosomal-dominant Parkinson's disease (PD).
  • LRRK2 and RAB7L1 are implicated in idiopathic PD susceptibility.
  • RAB7L1 enhances LRRK2 membrane association and kinase activity, suggesting a shared pathway.

Purpose of the Study:

  • To investigate the mechanism by which RAB7L1 influences LRRK2 activity and cellular function.
  • To determine the role of RAB7L1 in LRRK2-mediated centrosomal alterations.
  • To explore the potential of centrosomal deficits as a cellular readout for Parkinson's disease.

Main Methods:

  • Cellular localization studies of LRRK2 and RAB7L1.
  • Analysis of centrosomal structure and integrity.
  • Assessment of RAB8A phosphorylation.
  • Inhibition of LRRK2 kinase activity.
  • Knockdown of RAB8A expression.

Main Results:

  • RAB7L1 recruits LRRK2 to the Golgi complex.
  • This recruitment leads to pericentrosomal/centrosomal accumulation of phosphorylated RAB8A and centrosomal deficits.
  • Wildtype LRRK2-induced centrosomal alterations depend on Golgi integrity and RAB7L1.
  • Pathogenic LRRK2 mutants induce centrosomal deficits independently of Golgi integrity or RAB7L1.
  • Aberrant RAB8A phosphorylation mediates centrosomal alterations induced by wildtype LRRK2 and RAB7L1.

Conclusions:

  • Pathogenic LRRK2 and increased RAB7L1 levels induce centrosomal deficits through RAB8A phosphorylation and pericentrosomal accumulation.
  • Centrosomal cohesion deficits serve as a potential cellular readout for a broader spectrum of Parkinson's disease.
  • Understanding these mechanisms may reveal new therapeutic targets for PD.

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