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Metabolic Labeling of Leucine Rich Repeat Kinases 1 and 2 with Radioactive Phosphate
Published on: September 18, 2013
Mutations in the LRRK2 Roc-COR tandem domain link Parkinson's disease to Wnt signalling pathways
Rosa M Sancho1, Bernard M H Law, Kirsten Harvey
1Department of Pharmacology, The School of Pharmacy, Brunswick Square, London, UK.
Abstract:
Mutations in PARK8, encoding LRRK2, are the most common known cause of Parkinson's disease. The LRRK2 Roc-COR tandem domain exhibits GTPase activity controlling LRRK2 kinase activity via an intramolecular process. We report the interaction of LRRK2 with the dishevelled family of phosphoproteins (DVL1-3), key regulators of Wnt (Wingless/Int) signalling pathways important for axon guidance, synapse formation and neuronal maintenance. Interestingly, DVLs can interact with and mediate the activation of small GTPases with structural similarity to the LRRK2 Roc domain. The LRRK2 Roc-COR domain and the DVL1 DEP domain were necessary and sufficient for LRRK2-DVL1 interaction. Co-expression of DVL1 increased LRRK2 steady-state protein levels, an effect that was dependent on the DEP domain. Strikingly, LRRK2-DVL1-3 interactions were disrupted by the familial PARK8 mutation Y1699C, whereas pathogenic mutations at residues R1441 and R1728 strengthened LRRK2-DVL1 interactions. Co-expression of DVL1 with LRRK2 in mammalian cells resulted in the redistribution of LRRK2 to typical cytoplasmic DVL1 aggregates in HEK293 and SH-SY5Y cells and co-localization in neurites and growth cones of differentiated dopaminergic SH-SY5Y cells. This is the first report of the modulation of a key LRRK2-accessory protein interaction by PARK8 Roc-COR domain mutations segregating with Parkinson's disease. Since the DVL1 DEP domain is known to be involved in the regulation of small GTPases, we propose that: (i) DVLs may influence LRRK2 GTPase activity, and (ii) Roc-COR domain mutations modulating LRRK2-DVL interactions indirectly influence kinase activity. Our findings also link LRRK2 to Wnt signalling pathways, suggesting novel pathogenic mechanisms and new targets for genetic analysis in Parkinson's disease.
Insights
Parkinson's disease mutations in LRRK2 affect its interaction with dishevelled proteins (DVLs), which are key to Wnt signaling. These interactions may influence LRRK2 activity, revealing new disease mechanisms.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Mutations in PARK8, encoding Leucine-rich repeat kinase 2 (LRRK2), are a primary genetic cause of Parkinson's disease.
- LRRK2's GTPase activity, regulated by its Roc-COR tandem domain, influences its kinase function.
- Dishevelled proteins (DVL1-3) are crucial regulators of Wnt signaling pathways involved in neuronal development and maintenance.
Purpose of the Study:
- To investigate the interaction between LRRK2 and the dishevelled protein family (DVL1-3).
- To determine how Parkinson's disease-associated mutations in LRRK2 affect these interactions.
- To explore the functional consequences of LRRK2-DVL interactions on LRRK2 activity and cellular localization.
Main Methods:
- Co-expression of LRRK2 and DVL proteins in mammalian cell lines (HEK293, SH-SY5Y).
- Domain mapping to identify critical regions for LRRK2-DVL interaction (LRRK2 Roc-COR and DVL DEP domains).
- Analysis of cellular localization and protein levels of LRRK2 and DVLs under different mutation conditions.
Main Results:
- LRRK2 directly interacts with DVL1-3 via its Roc-COR domain and DVL's DEP domain.
- Co-expression of DVL1 enhances LRRK2 protein levels, dependent on the DVL DEP domain.
- The familial Parkinson's disease mutation Y1699C disrupts LRRK2-DVL interaction, while R1441 and R1728 mutations strengthen it.
- LRRK2 co-localizes with DVL1 aggregates and in neuronal processes, suggesting a role in Wnt signaling pathways.
Conclusions:
- This study establishes a link between LRRK2 and Wnt signaling through DVL proteins.
- Parkinson's disease mutations in the LRRK2 Roc-COR domain modulate LRRK2-DVL interactions, potentially impacting LRRK2 kinase activity.
- These findings suggest novel pathogenic mechanisms in Parkinson's disease and identify potential new therapeutic targets.
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