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Assaying the Kinase Activity of LRRK2 in vitro
Published on: January 18, 2012
Cryo-electron tomography reveals the microtubule-bound form of inactive LRRK2
Siyu Chen1,2,3, Tamar Basiashvili1,2, Joshua Hutchings1
1Department of Molecular Biology, University of California, San Diego, San Diego, United States.
Abstract:
Parkinson's disease (PD) is the second most common neurodegenerative disorder. Mutations in human leucine-rich repeat kinase 2 (LRRK2), a multi-domain protein containing both a kinase and a GTPase, are a leading cause of the familial form of PD. Pathogenic LRRK2 mutations increase LRRK2 kinase activity. While the bulk of LRRK2 is found in the cytosol, the protein associates with membranes where its Rab GTPase substrates are found, and under certain conditions, with microtubules. Integrative structural studies using single-particle cryo-electron microscopy and in situ cryo-electron tomography (cryo-ET) have revealed the architecture of microtubule-associated LRRK2 filaments, and that formation of these filaments requires LRRK2's kinase to be in the active-like conformation. However, whether LRRK2 can interact with and form filaments on microtubules in its autoinhibited state, where the kinase domain is in the inactive conformation and the N-terminal LRR domain covers the kinase active site, was not known. Using cryo-ET, we show that full-length human LRRK2 can oligomerize on microtubules in its autoinhibited state. Both WT-LRRK2 and PD-linked LRRK2 mutants formed filaments on microtubules. While these filaments are stabilized by the same interfaces seen in the active-LRRK2 filaments, we observed a new interface involving the N-terminal repeats that were disordered in the active-LRRK2 filaments. The helical parameters of the autoinhibited-LRRK2 filaments are different from those reported for the active-LRRK2 filaments. Finally, the autoinhibited-LRRK2 filaments are shorter and less regular, suggesting they are less stable.
Insights
Researchers discovered that Parkinson's disease-linked LRRK2 protein can form filaments on microtubules even in its inactive, autoinhibited state, revealing new insights into neurodegenerative disease mechanisms.
Area of Science:
- Neuroscience
- Structural Biology
- Biochemistry
Background:
- Parkinson's disease (PD) is a common neurodegenerative disorder.
- Mutations in leucine-rich repeat kinase 2 (LRRK2) are a major cause of familial PD, increasing its kinase activity.
- LRRK2 is known to associate with membranes and microtubules.
Purpose of the Study:
- To investigate if LRRK2 can form filaments on microtubules in its autoinhibited (inactive) state.
- To characterize the structure and properties of these autoinhibited LRRK2 filaments.
Main Methods:
- Cryo-electron tomography (cryo-ET) was used to visualize LRRK2 structures.
- Full-length wild-type (WT) and PD-linked mutant LRRK2 were studied in complex with microtubules.
Main Results:
- Full-length LRRK2 forms filaments on microtubules in its autoinhibited state.
- Both WT-LRRK2 and PD mutants formed these filaments.
- New structural interfaces involving N-terminal repeats were observed in autoinhibited filaments, which differ in helical parameters and stability from active LRRK2 filaments.
Conclusions:
- LRRK2 can oligomerize and form filaments on microtubules irrespective of its kinase activity state.
- The formation of autoinhibited LRRK2 filaments suggests alternative mechanisms for LRRK2 involvement in PD pathogenesis.
- Structural differences in autoinhibited filaments may relate to their stability and function.

