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Ercolani, T.

Publications and source records attributed to Ercolani, T..

2 recordsLinked to original sources

Intracellular Trafficking SNARE Protein, Syntaxin-6, is a Modifier of Prion and Tau Pathogenesis in vivo and in Cellular Models

Syntaxin-6, a SNARE protein involved in intracellular protein trafficking, is a proposed risk factor for sporadic prion disease, progressive supranuclear palsy and Alzheimers disease. However, no study has validated its functional role in these diseases, explored the disease stage at which it is acting nor its mechanism of action. Here, we show that syntaxin-6 acts at early stages of prion disease in experimental mice by increasing disease transmission risk following inoculation with low prion doses. Conversely, syntaxin-6 does not affect prion propagation kinetics or toxicity during established disease. Syntaxin-6 manipulation in cellular models profoundly alters the subcellular distribution and morphologies of disease-related PrP and modifies prion export. Furthermore, syntaxin-6 knockout in a transgenic tauopathy mouse model exerts protective effects on numerous physiological, behavioural and neuropathological outcome measures. Therefore, our studies firmly establish syntaxin-6 as a modifier of prion and tau pathogenesis, providing key insights into a fundamental mechanism of neurodegeneration.

neuroscience↗

Direct Observation of Competing Prion Protein Fibril Populations with Distinct Structures and Kinetics

In prion diseases, fibrillar assemblies of misfolded prion protein (PrP) self-propagate by incorporating PrP monomers. Using total internal reflection and transient amyloid binding super-resolution microscopy, our study analyses elongation of single PrP fibrils to reveal polymorphic populations, featuring structural and dynamic heterogeneity similar to prion strains, which were previously hidden in ensemble measurements. PrP fibrils elongated along a preferred direction by an intermittent stop- and-go mechanism. Fibrils fell into three main populations, which each displayed distinct elongation mechanisms incorporating different monomer structures and which maintained their properties even under elongation conditions favouring a different fibril type. Elongation of RML and ME7 prion rods likewise exhibited unique kinetic features. The discovery of polymorphic fibril populations of amyloid and prions growing in competition suggests that prions may present as quasispecies of structural isomorphs and that the replication environment may tilt the balance between prion isomorphs and amyloid species. HighlightsO_LISynthetic prion fibril populations contain structurally distinct fibril types C_LIO_LIFibril types faithfully elongate by different mechanisms C_LIO_LIFibril types compete for substrate depending on environment C_LIO_LIFibril populations model quasi-species behavior of prion strains C_LI eTOCReplication of different prion strains causes distinct disease phenotypes. Sun et al. analyzed the growth of individual synthetic prion protein fibrils by super-resolution microscopy and found populations of structurally distinct fibril types, which grew in competition to each other as a quasi-species, recapitulating basic prion strain characteristics in vitro.

biophysics↗