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The Parkinson's disease VPS35[D620N] mutation enhances LRRK2-mediated Rab protein phosphorylation in mouse and human
Rafeeq Mir1, Francesca Tonelli1, Pawel Lis1
1MRC Protein Phosphorylation and Ubiquitylation Unit, School of Life Sciences, University of Dundee, Dundee DD1 5EH, U.K.
Abstract:
Missense mutations in the LRRK2 (Leucine-rich repeat protein kinase-2) and VPS35 genes result in autosomal dominant Parkinson's disease. The VPS35 gene encodes for the cargo-binding component of the retromer complex, while LRRK2 modulates vesicular trafficking by phosphorylating a subgroup of Rab proteins. Pathogenic mutations in LRRK2 increase its kinase activity. It is not known how the only thus far described pathogenic VPS35 mutation, [p.D620N] exerts its effects. We reveal that the VPS35[D620N] knock-in mutation strikingly elevates LRRK2-mediated phosphorylation of Rab8A, Rab10, and Rab12 in mouse embryonic fibroblasts. The VPS35[D620N] mutation also increases Rab10 phosphorylation in mouse tissues (the lung, kidney, spleen, and brain). Furthermore, LRRK2-mediated Rab10 phosphorylation is increased in neutrophils as well as monocytes isolated from three Parkinson's patients with a heterozygous VPS35[D620N] mutation compared with healthy donors and idiopathic Parkinson's patients. LRRK2-mediated Rab10 phosphorylation is significantly suppressed by knock-out or knock-down of VPS35 in wild-type, LRRK2[R1441C], or VPS35[D620N] cells. Finally, VPS35[D620N] mutation promotes Rab10 phosphorylation more potently than LRRK2 pathogenic mutations. Available data suggest that Parkinson's patients with VPS35[D620N] develop the disease at a younger age than those with LRRK2 mutations. Our observations indicate that VPS35 controls LRRK2 activity and that the VPS35[D620N] mutation results in a gain of function, potentially causing PD through hyperactivation of the LRRK2 kinase. Our findings suggest that it may be possible to elaborate compounds that target the retromer complex to suppress LRRK2 activity. Moreover, patients with VPS35[D620N] associated Parkinson's might benefit from LRRK2 inhibitor treatment that have entered clinical trials in humans.
Insights
The VPS35[D620N] mutation in Parkinson's disease hyperactivates LRRK2 kinase, increasing Rab10 phosphorylation. This suggests targeting the retromer complex or using LRRK2 inhibitors may treat this form of Parkinson's disease.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- Missense mutations in LRRK2 and VPS35 genes cause autosomal dominant Parkinson's disease (PD).
- VPS35 encodes a retromer complex component; LRRK2 phosphorylates Rab proteins, modulating vesicular trafficking.
- Pathogenic LRRK2 mutations increase kinase activity, but the mechanism of VPS35 mutations remains unclear.
Purpose of the Study:
- To investigate the functional impact of the VPS35[D620N] mutation on LRRK2 activity and Parkinson's disease pathogenesis.
- To determine if VPS35[D620N] affects LRRK2-mediated Rab protein phosphorylation.
Main Methods:
- Utilized knock-in mouse models and cell cultures (mouse embryonic fibroblasts) expressing VPS35[D620N].
- Analyzed LRRK2-mediated phosphorylation of Rab proteins (Rab8A, Rab10, Rab12) in cells and mouse tissues.
- Examined patient-derived immune cells (neutrophils, monocytes) from Parkinson's patients with VPS35[D620N] mutations.
Main Results:
- VPS35[D620N] mutation significantly elevated LRRK2-mediated phosphorylation of Rab8A, Rab10, and Rab12 in mouse cells.
- Increased Rab10 phosphorylation was observed in multiple mouse tissues and in immune cells from Parkinson's patients with VPS35[D620N] mutations.
- VPS35[D620N] mutation enhanced Rab10 phosphorylation more potently than known pathogenic LRRK2 mutations, suggesting a gain-of-function mechanism.
Conclusions:
- VPS35[D620N] mutation controls LRRK2 activity, leading to hyperactivation of LRRK2 kinase and potentially causing Parkinson's disease.
- Targeting the retromer complex to suppress LRRK2 activity or utilizing LRRK2 inhibitors may offer therapeutic strategies for VPS35[D620N]-associated Parkinson's disease.