Dual effect of alpha-synuclein disease variants on condensate formation
Chandran, A.; Agarwal, A.; Wang, T.; Amaral, L.; Chaves, S. R.; Outeiro, T. F.; Lautenschlager, J.
Show abstract
-synuclein is a pre-synaptic protein1,2 implicated in synucleinopathies like Parkinsons disease and Dementia with Lewy Bodies, where it accumulates in intracellular aggregates termed Lewy bodies and Lewy neurites3. Recent studies have reported that -synuclein undergoes phase separation to form biomolecular condensates both in vitro and in mammalian cells4-7. -synuclein condensates are thought to contribute to disease through progressive aggregation5,8,9. Here we show that specific PD-associated -synuclein variants fail to form biomolecular condensates. We demonstrate that only two -synuclein variants associated with familial disease, E46K and E83Q, enhance condensate formation in vitro and in cells. However, variants including A30G, G51D, and A53E fail to form or have reduced levels of condensate formation in cells. The same phenotypes are reflected in the budding yeast model showing differential inclusion formation. In iPSC-derived neurons, the propensity of -synuclein variants to undergo VAMP2-mediated phase separation reflects the level of synaptic enrichment. We show that the intrinsic propensity of -synuclein to form condensates and the ability to bind lipid membranes are important to mediate condensate formation in cells. Our results emphasize that -synuclein pathology follows divergent pathways, with both increased and decreased condensate formation contributing to disease. This study establishes biomolecular condensates as a key intermediate in -synuclein dysfunction, providing a novel foundation for translational research.
Matching journals
The top 1 journal accounts for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Membrane remodeling properties of the Parkinson's disease protein LRRK2 96%
- Nucleation of the destruction complex on the centrosome accelerates degradation of β-catenin and regulates Wnt signal transmission 95%
- S-Nitrosylation of CRTC1 in Alzheimer's disease impairs CREB-dependent gene expression induced by neuronal activity 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.