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Mandelkow, E.

Publications and source records attributed to Mandelkow, E..

2 recordsLinked to original sources

FRET-based Tau seeding assay does not represent prion-like templated assembly of Tau fibers

Tau aggregation into amyloid fibers based on the cross-beta structure is a hallmark of several Tauopathies, including Alzheimer Disease (AD). Trans-cellular propagation of Tau with pathological conformation has been suggested as a key disease mechanism. This is thought to cause the spreading of Tau pathology in AD by templated conversion of naive Tau in recipient cells into a pathological state, followed by assembly of pathological Tau fibers, similar to the mechanism proposed for prion pathogenesis. In cell cultures, the process is usually monitored by a FRET assay where the recipient cell expresses the Tau repeat domain (TauRD, with pro-aggregant mutation, e.g., {Delta}K280 or P301L, [~]13.5 kDa) fused to GFP-based FRET pairs (YFP or CFP, [~]28 kD). Since the diameter of the reporter GFP ([~]3 nm) is [~]6.5 times larger than the {beta}-strand distance (0.47nm), this points to a potential steric clash. Hence, we investigated the influence of GFP tagged (N- or C-terminally) TauRD and TauFL (full-length Tau) on their aggregation behavior in vitro. Using biophysical methods (light scattering, atomic force microscopy (AFM), and scanning-transmission electron microscopy (STEM)), we found that the assembly of TauRD{Delta}K-GFP was severely inhibited, even in the presence of nucleation enhancers (heparin and/or pre-formed PHFs from TauRD{Delta}K). Some rare fiber-like particles had a very different subunit packing from proper PHFs, as judged by STEM. The mass per length (MPL) values of TauRD{Delta}K fibrils are equivalent to 4.45 molecules/nm, close to the expected value for a paired-helical fiber with 2 protofilaments and cross-{beta} structure. By contrast, the elongated particles formed by TauRD{Delta}K-GFP have MPL values around [~]2, less than half of the values expected for PHFs, indicating that the subunit packing is distinct. Thus, both kinetic and structural observations are incompatible with a model whereby external Tau can form a template for PHF assembly of Tau-GFP in recipient cells. As a consequence, the observed local increase of FRET in recipient cells must be caused by other signalling processes.

neuroscience

Lipid membrane templated misfolding and self-assembly of intrinsically disordered tau protein

The aggregation of the intrinsically disordered tau protein into highly ordered {beta}-sheet fibrils is implicated in many neurodegenerative disorders. Fibrillation mechanism remains unresolved, particularly early events that trigger tau misfolding and assembly. We investigated the role membrane plays in modulating aggregation of three tau variants, the largest isoform hTau40, the truncated construct K18, and a hyperphosphorylation mutant hTau40/3Epi. Despite being charged and soluble, tau proteins were also highly surface active and favorably interacted with anionic, but not zwitterionic, lipid monolayer at the air/water interface. Membrane binding induced macroscopic tau phase separation and {beta}-sheet-rich tau oligomer formation. Concomitantly, membrane morphology and lipid packing became disrupted. Our findings support a general tau aggregation mechanism wherein taus inherent surface activity and favorable electrostatic interactions drive tau-membrane association, inducing tau phase separation that is accompanied by misfolding and self-assembly of disordered tau into {beta}-sheet-rich oligomers, which subsequently seed fibrillation and deposition into diseased tissues.

biophysics