α-synuclein fibril and synaptic vesicle interactions lead to vesicle destruction and increased uptake into neurons
Stephens, A. D.; Fernandez-Villegas, A.; Chung, C. W.; Vanderpoorten, O.; Pinotsi, D.; Mela, I.; Ward, E. N.; McCoy, T. M.; Cubitt, R.; Routh, A. F.; Kaminski, C. F.; Schierle, G. S. K.
Show abstract
Monomeric alpha-synuclein (aSyn) is a well characterised as a lipid binding protein. aSyn is known to form amyloid fibrils which are also localised with lipids and organelles in so called Lewy bodies, insoluble structures found in Parkinsons disease patients brains. It is still unclear under which conditions the aSyn-lipid interaction can start to become pathological. Previous work to address pathological interactions has focused on using synthetic lipid membranes, which lack the complexity of physiological lipid membranes which not only have a more complex lipid composition, but also contain lipid interacting proteins. Here, we investigate how either monomeric or fibrillar aSyn interact with physiological synaptic vesicles (SV) isolated from rodent brain. Using small angle neutron scattering and high-resolution imaging we observe that aSyn fibrils disintegrate SV, whereas aSyn monomers cause clustering of SV. Furthermore, SV enhance the aggregation rate of aSyn, however increasing the SV:aSyn ratio causes a reduction in aggregation propensity. SV lipids appear as an integrated part of aSyn fibrils and while the fibril morphology differs to aSyn fibrils alone, the core fibril structure remains the same. We finally demonstrate that lipid-associated aSyn fibrils are more easily taken up into cortical i3Neurons derived from induced pluripotent stem cells. Our study sheds light on differences between interactions of aSyn with synthetic lipid vesicles and physiological SV. We show how aSyn fibrils may enhance pathology by disintegrating SV, which in turn may have fatal consequences for neurons. Furthermore, disease burden may additionally be impacted by an increased uptake of lipid-associated aSyn by neurons, leading to more SV damage and enhancing aSyn aggregation.
Matching journals
The top 8 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Structural flexibility of apolipoprotein E-derived arginine-rich peptides improves their cell penetration capability 93%
- Identification of Small Molecule Dimethyoxyphenyl Piperazine Inhibitors of Alpha-Synuclein Fibril Growth 93%
- Effects of pharmacological modulators of α-synuclein and tau aggregation and internalization 92%
Similar papers in this journal
- Lateral membrane organization as target of an antimicrobial peptidomimetic compound 94%
- Endo-lysosomal Aβ concentration and pH enable formation of Aβ oligomers that potently induce Tau missorting 93%
- Lipid packing and cholesterol content regulate membrane wetting and remodeling by biomolecular condensates. 93%
Similar papers in this journal
Similar papers in this journal
- A Kinetic Map of the Influence of Biomimetic Lipid Membrane Models on Aβ42 Aggregation 94%
- Single molecule fingerprinting reveals different amplification properties of α-synuclein oligomers and preformed fibrils in seeding assay. 93%
- Impact of Membrane Fluidity on α-syn Fibril Structures and Neuronal Pathology 93%
Similar papers in this journal
- SARS-CoV-2 N-protein induces the formation of composite α-synuclein/N-protein fibrils that transform into a strain of α-synuclein fibrils 93%
- Transport among protocells via tunneling nanotubes 92%
- Cell invasive amyloid assemblies from SARS-CoV-2 peptides can form multiple polymorphs with varying neurotoxicity 91%
"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.