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Metabolic Labeling of Leucine Rich Repeat Kinases 1 and 2 with Radioactive Phosphate
Published on: September 18, 2013
Structural and biochemical basis of ROC-dependent activation of LRRK2
Yangshin Park1,2, Chunxiang Wu1,2, Kayla Tennessen1,2
1Department of Biochemistry, Molecular Biology, and Pharmacology, Indiana University School of Medicine, Indianapolis, IN 46202, USA.
Abstract:
Mutations in leucine-rich repeat kinase 2 (LRRK2) are the most common cause of familial Parkinson's disease, yet the molecular mechanism governing LRRK2 activation remains incompletely understood. LRRK2 is a large multidomain enzyme whose kinase activity is regulated by intramolecular interactions and by its Ras of complex proteins (ROC) GTPase domain. Here, we combine cryo-electron microscopy, X-ray crystallography, and structure-guided biochemical perturbations to define how ROC conformational switching regulates LRRK2 activation. Cryo-EM reconstructions reveal that monomeric full-length LRRK2 samples three distinct conformational states-autoinhibited, intermediate, and activated-indicating that large-scale activation-associated rearrangements can occur through an intrinsic intramolecular pathway, independently of Rab29 binding, higher-order oligomerization, or membrane association. A 1.6-Å crystal structure of an extended ROC construct reveals intrinsic conformational plasticity within the GTPase switch regions that likely underlies these transitions. Structure-guided disulfide engineering identifies a functional coupling between residue R1441 and switch II that directly modulates GTPase activity in both isolated ROC and full-length LRRK2. Disruption of this coupling phenocopies the disease-associated R1441H mutation. Together, these findings establish ROC as a dynamic conformational engine that drives a multistep intramolecular activation mechanism in LRRK2, providing mechanistic insight into how pathogenic mutations promote aberrant kinase activation.
Insights
Mutations in leucine-rich repeat kinase 2 (LRRK2) drive Parkinson's disease. This study reveals how the ROC domain's conformational changes intrinsically regulate LRRK2 activation, offering new insights into disease mechanisms.
Area of Science:
- Biochemistry
- Structural Biology
- Neuroscience
Background:
- Mutations in leucine-rich repeat kinase 2 (LRRK2) are a leading genetic cause of Parkinson's disease.
- The precise molecular mechanisms controlling LRRK2 activation are not fully understood.
Purpose of the Study:
- To elucidate the role of the Ras of complex proteins (ROC) GTPase domain in LRRK2 activation.
- To define the conformational dynamics governing LRRK2 kinase activity.
Main Methods:
- Cryo-electron microscopy (Cryo-EM) of full-length LRRK2.
- X-ray crystallography of the LRRK2 ROC domain.
- Structure-guided biochemical perturbations and disulfide engineering.
Main Results:
- LRRK2 exists in three intrinsic conformational states: autoinhibited, intermediate, and activated.
- The ROC domain exhibits inherent conformational plasticity influencing LRRK2 activation.
- A functional coupling between R1441 and switch II directly impacts GTPase activity, mimicking disease mutations.
Conclusions:
- The ROC domain acts as a dynamic regulator of LRRK2 activation through intramolecular conformational changes.
- Pathogenic LRRK2 mutations may promote aberrant kinase activity by disrupting this intrinsic activation pathway.
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