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Targeted Next-generation Sequencing and Bioinformatics Pipeline to Evaluate Genetic Determinants of Constitutional Disease
Published on: April 4, 2018
The Vps35 D620N mutation linked to Parkinson's disease disrupts the cargo sorting function of retromer
Jordan Follett1, Suzanne J Norwood, Nicholas A Hamilton
1Institute for Molecular Bioscience, The University of Queensland, St Lucia, Queensland,, Australia.
Abstract:
The retromer is a trimeric cargo-recognition protein complex composed of Vps26, Vps29 and Vps35 associated with protein trafficking within endosomes. Recently, a pathogenic point mutation within the Vps35 subunit (D620N) was linked to the manifestation of Parkinson's disease (PD). Here, we investigated details underlying the molecular mechanism by which the D620N mutation in Vps35 modulates retromer function, including examination of retromer's subcellular localization and its capacity to sort cargo. We show that expression of the PD-linked Vps35 D620N mutant redistributes retromer-positive endosomes to a perinuclear subcellular localization and that these endosomes are enlarged in both model cell lines and fibroblasts isolated from a PD patient. Vps35 D620N is correctly folded and binds Vps29 and Vps26A with the same affinity as wild-type Vps35. While PD-linked point mutant Vps35 D620N interacts with the cation-independent mannose-6-phosphate receptor (CI-M6PR), a known retromer cargo, we find that its expression disrupts the trafficking of cathepsin D, a CI-M6PR ligand and protease responsible for degradation of α-synuclein, a causative agent of PD. In summary, we find that the expression of Vps35 D620N leads to endosomal alterations and trafficking defects that may partly explain its action in PD.
Insights
The Parkinson's disease-linked Vps35 D620N mutation alters endosome location and size. This defect disrupts protein trafficking, potentially explaining its role in Parkinson's disease pathogenesis.
Area of Science:
- Molecular Biology
- Cell Biology
- Neuroscience
Background:
- The retromer complex, comprising Vps26, Vps29, and Vps35, is crucial for endosomal protein trafficking.
- A Vps35 mutation (D620N) is linked to Parkinson's disease (PD).
Purpose of the Study:
- To elucidate the molecular mechanism by which the Vps35 D620N mutation affects retromer function in PD.
- To examine the impact of Vps35 D620N on retromer localization, cargo sorting, and endosomal morphology.
Main Methods:
- Expression of Vps35 D620N mutant in model cell lines and patient-derived fibroblasts.
- Analysis of retromer subcellular localization and endosome size.
- Assessment of cargo trafficking, including cathepsin D and α-synuclein.
Main Results:
- Vps35 D620N expression causes retromer-positive endosomes to accumulate perinuclearly and enlarge.
- The Vps35 D620N mutant binds cargo receptors similarly to wild-type Vps35.
- Vps35 D620N disrupts cathepsin D trafficking, affecting α-synuclein degradation.
Conclusions:
- The Vps35 D620N mutation induces endosomal abnormalities and trafficking defects.
- These cellular dysfunctions may contribute to the pathogenesis of Parkinson's disease.
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