bioRxiv · 10.1101/2025.06.03.657690
Stochastic Misfolding Drives the Emergence of Distinct α-Synuclein Strains
Abstract
The existence of -synuclein conformational strains provides a potential explanation for the clinical and pathological differences among synucleinopathies such as Parkinsons disease and multiple system atrophy. However, how distinct -synuclein strains are formed in vivo remains unknown. Here, we examined whether unique strains of self-propagating -synuclein aggregates can arise within a consistent molecular environment. Unexpectedly, we observed conformational heterogeneity between individual preparations of -synuclein pre-formed fibrils (PFFs) generated by polymerizing recombinant wild-type or A53T-mutant human -synuclein under identical conditions. Moreover, we found that -synuclein aggregates formed spontaneously in the brains of a transgenic synucleinopathy mouse model were conformationally diverse, leading to the identification of three distinct disease subtypes. Propagation of putative PFF- and brain-derived -synuclein strains in mice initiated several distinct synucleinopathies, characterized by differences in disease onset times, cerebral -synuclein deposition patterns, and the conformational attributes of -synuclein aggregates. The conformational diversity of -synuclein aggregates across PFF preparations and between the brains of individual transgenic mice demonstrates that -synuclein can spontaneously form multiple self-propagating strains within an identical environment both in vitro and in vivo. This suggests that stochastic misfolding into distinct aggregate structures drives the emergence of -synuclein strains and implies that the intrinsic variability of common synucleinopathy research tools must be considered when designing and interpreting experiments.
Source connections
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
So, R. W. L., Frieg, B., Camino, J. D., Silver, N. R. G., Mao, A., Stuart, E., Schröder, G. F., Watts, J. C.. 2025-06-07. Stochastic Misfolding Drives the Emergence of Distinct α-Synuclein Strains. https://doi.org/10.1101/2025.06.03.657690
Cite the original work for its findings. Save a collection to share your selection of sources.