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Updated: Apr 5, 2026

Visualizing Synaptic Degeneration in Adult Drosophila in Association with Neurodegeneration
Published on: May 13, 2020
VPS35 pathogenic mutations confer no dominant toxicity but partial loss of function in Drosophila and genetically
Bilal R Malik1, Vinay K Godena1, Alexander J Whitworth2
1Department of Biomedical Sciences, University of Sheffield, Sheffield S10 2TN, UK.
Abstract:
Mutations in VPS35 (PARK17) cause autosomal dominant, late onset Parkinson's disease (PD). VPS35 forms a core component of the retromer complex that mediates the retrieval of membrane proteins from endosomes back to either the Golgi or plasma membrane. While aberrant endosomal protein sorting has been linked to several neurodegenerative diseases, the mechanisms by which VPS35 mutations and retromer function contribute to PD pathogenesis are not clear. To address this, we generated transgenic Drosophila that express variant forms of human VPS35 found in PD cases and the corresponding variants of the Drosophila ortholog. We did not find evidence of dominant toxicity from any variant form including the pathogenic D620N mutation, even with aging. However, assessing the ability of Vps35 variants to rescue multiple vps35-mutant phenotypes, we found that the D620N mutation confers a partial loss of function. Recently, VPS35 has been linked to the formation of mitochondria-derived vesicles, which mediate the degradation of mitochondrial proteins and contribute to mitochondrial quality control. This process is also promoted by two other PD-lined genes parkin (PARK2) and PINK1 (PARK6). We demonstrate here that vps35 genetically interacts with parkin but interestingly not with pink1. Strikingly, Vps35 overexpression is able to rescue several parkin-mutant phenotypes. Together these findings provide in vivo evidence that the D620N mutation likely confers pathogenicity through a partial loss of function mechanism and that this may be linked to other known pathogenic mechanisms such as mitochondrial dysfunction.
Insights
Mutations in VPS35 cause Parkinson's disease (PD). The D620N mutation shows a partial loss of function and interacts with parkin, suggesting a link to mitochondrial dysfunction in PD pathogenesis.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- Mutations in VPS35 are linked to autosomal dominant Parkinson's disease (PD).
- VPS35 is crucial for the retromer complex, involved in endosomal protein sorting.
- The precise mechanisms of VPS35 mutations in PD pathogenesis remain unclear.
Purpose of the Study:
- To investigate the in vivo function of VPS35 variants found in PD cases.
- To explore the relationship between VPS35 and other PD-associated genes, particularly parkin and PINK1.
- To elucidate the pathogenic mechanisms of VPS35 mutations in PD.
Main Methods:
- Generated transgenic Drosophila expressing human and Drosophila VPS35 variants.
- Assessed the functional rescue of vps35-mutant phenotypes by different VPS35 variants.
- Examined genetic interactions between vps35 and parkin/PINK1 in Drosophila models.
Main Results:
- The pathogenic D620N VPS35 mutation conferred a partial loss of function.
- No dominant toxicity was observed for any VPS35 variant, including D620N.
- Vps35 genetically interacts with parkin, and Vps35 overexpression rescues parkin-mutant phenotypes.
Conclusions:
- The D620N mutation likely causes PD through a partial loss-of-function mechanism.
- VPS35 dysfunction may contribute to PD pathogenesis via mechanisms involving mitochondrial dysfunction.
- VPS35 and parkin pathways are interconnected in PD.

