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Assaying the Kinase Activity of LRRK2 in vitro
Published on: January 18, 2012
Insight into the mode of action of the LRRK2 Y1699C pathogenic mutant
Veronique Daniëls1, Renée Vancraenenbroeck, Bernard M H Law
1Laboratory for Neurobiology and Gene Therapy, Division of Molecular Medicine, Department of Molecular and Cellular Medicine, Katholieke Universiteit Leuven, Leuven, Belgium.
Abstract:
Mutations in the leucine-rich repeat kinase 2 (LRRK2) gene are the most prevalent known cause of autosomal dominant Parkinson's disease. The LRRK2 gene encodes a Roco protein featuring a Ras of complex proteins (ROC) GTPase and a kinase domain linked by the C-terminal of ROC (COR) domain. Here, we explored the effects of the Y1699C pathogenic LRRK2 mutation in the COR domain on GTPase activity and interactions within the catalytic core of LRRK2. We observed a decrease in GTPase activity for LRRK2 Y1699C comparable to the decrease observed for the R1441C pathogenic mutant and the T1348N dysfunctional mutant. To study the underlying mechanism, we explored the dimerization in the catalytic core of LRRK2. ROC-COR dimerization was significantly weakened by the Y1699C or R1441C/G mutation. Using a competition assay, we demonstrated that the intra-molecular ROC : COR interaction is favoured over ROC : ROC dimerization. Interestingly, the intra-molecular ROC : COR interaction was strengthened by the Y1699C mutation. This is supported by a 3D homology model of the ROC-COR tandem of LRRK2, showing that Y1699 is positioned at the intra-molecular ROC : COR interface. In conclusion, our data provides mechanistic insight into the mode of action of the Y1699C LRRK2 mutant: the Y1699C substitution, situated at the intra-molecular ROC : COR interface, strengthens the intra-molecular ROC : COR interaction, thereby locally weakening the dimerization of LRRK2 at the ROC-COR tandem domain resulting in decreased GTPase activity.
Insights
The Y1699C mutation in leucine-rich repeat kinase 2 (LRRK2) weakens its GTPase activity by strengthening internal interactions. This finding offers new insights into pathogenic mechanisms of LRRK2 in Parkinson's disease.
Area of Science:
- Molecular Biology
- Genetics
- Neuroscience
Background:
- Mutations in the leucine-rich repeat kinase 2 (LRRK2) gene are a primary genetic cause of autosomal dominant Parkinson's disease.
- The LRRK2 protein comprises a Ras of complex proteins (ROC) GTPase and a kinase domain, linked by the C-terminal of ROC (COR) domain.
Purpose of the Study:
- To investigate the impact of the Y1699C mutation in the LRRK2 COR domain on GTPase activity and protein interactions.
- To elucidate the molecular mechanisms underlying the Y1699C mutation's effect on LRRK2 function.
Main Methods:
- Assessed GTPase activity of LRRK2 variants, including Y1699C, R1441C, and T1348N.
- Explored ROC-COR dimerization within the LRRK2 catalytic core using competition assays.
- Utilized 3D homology modeling to analyze the structural positioning of Y1699.
Main Results:
- The Y1699C mutation significantly decreased LRRK2 GTPase activity, similar to other pathogenic mutants.
- ROC-COR dimerization was weakened by Y1699C and R1441C/G mutations.
- The Y1699C mutation strengthened the intra-molecular ROC:COR interaction, favoring it over ROC:ROC dimerization.
Conclusions:
- The Y1699C mutation disrupts LRRK2 function by stabilizing the intra-molecular ROC:COR interaction.
- This stabilization leads to weakened inter-molecular dimerization and reduced GTPase activity, providing mechanistic insight into LRRK2-related Parkinson's disease.

