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Rab10 Phosphorylation Detection by LRRK2 Activity Using SDS-PAGE with a Phosphate-binding Tag
Published on: December 14, 2017
LRRK2 binds to the Rab32 subfamily in a GTP-dependent manner via its armadillo domain
Emma McGrath1,2, Dieter Waschbüsch1, Brian M Baker2
1School of Biochemistry and Immunology, Trinity College Dublin , Dublin, Ireland.
Abstract:
LRRK2 is a multi-domain Ser/Thr kinase that is associated with inherited and sporadic cases of Parkinson's disease. Many mutations linked to disease are associated within a central ROC-COR regulatory region and the subsequent kinase domain, leading to enhanced catalytic activity. The N-terminus of human LRRK2 consists of armadillo repeat motifs (ARMs) followed by ankyrin repeats (ANKs). Recently, Rab GTPases have emerged as key players in LRRK2 function, both as substrates of the kinase, and as regulators of the catalytic activity. Rabs recruit effector proteins via their GTP-dependent switch 1 and 2 regions to distinct sub-cellular compartments to regulate membrane trafficking. LRRK2 phosphorylates Rab8, Rab10 and Rab12 in switch 2, and this activity is regulated via interactions with Rab29. Furthermore, the related Rab32-subfamily GTPases, Rab32 and Rab38, have also been shown to interact with LRRK2. Here, we have mapped the interactions of the Rab32-subfamily to the ARM domain of LRRK2. The complexes are dependent on the GTP state of the Rabs in vitro, implying that LRRK2 may be an effector of the Rab32-subfamily of small GTPases. X-ray crystal structures of the Rab32-family GTPases and subsequent mutational studies reveal that a positively charged residue in switch 1 is critical for binding of Rab32/38 to LRRK2. Homology modelling and mutational analyses of the ARM domain point to a patch of negatively charged residues that contribute to complex formation. These structural and biochemical studies provide a framework for understanding the molecular basis for Rab regulation of LRRK2 and its role in Parkinson's disease.
Insights
Parkinson's disease-associated LRRK2 kinase interacts with Rab GTPases. Structural studies reveal Rab32-subfamily binding to LRRK2's ARM domain, mediated by specific charged residues, offering insights into disease mechanisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Neuroscience
Background:
- Leucine-rich repeat kinase 2 (LRRK2) is implicated in Parkinson's disease pathogenesis, with mutations often affecting its kinase activity.
- Rab GTPases are crucial for membrane trafficking and have recently been identified as both substrates and regulators of LRRK2.
- Understanding LRRK2-Rab interactions is key to elucidating its role in cellular processes and neurodegeneration.
Purpose of the Study:
- To map the interaction interface between LRRK2 and the Rab32-subfamily of GTPases.
- To determine the structural basis for LRRK2-Rab complex formation and regulation.
- To provide a molecular framework for LRRK2's function in Parkinson's disease.
Main Methods:
- X-ray crystallography to determine the structure of Rab32-family GTPases.
- In vitro binding assays to assess LRRK2-Rab complex formation.
- Site-directed mutagenesis and homology modeling to analyze the interaction domains and residues.
Main Results:
- The interaction between LRRK2 and Rab32/Rab38 localizes to the LRRK2 ARM domain.
- Complex formation is dependent on the GTP-bound state of Rab GTPases, suggesting LRRK2 acts as an effector.
- A positively charged residue in Rab switch 1 and negatively charged residues on the LRRK2 ARM domain are critical for binding.
Conclusions:
- LRRK2 directly binds to Rab32-subfamily GTPases via its ARM domain.
- The GTP-dependent interaction highlights a novel regulatory mechanism for LRRK2.
- These findings offer structural insights into LRRK2 function and its dysregulation in Parkinson's disease.
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