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Biedermann, K.

Publications and source records attributed to Biedermann, K..

2 recordsLinked to original sources

Cryo-EM structures of Alpha-Synuclein(31-100) amyloid fibrils reveal disease-like structural motifs without reproducing the Parkinson's Disease polymorph

The structural diversity of alpha-synuclein amyloid fibrils is closely linked to the pathogenesis of Parkinsons disease and related synucleinopathies. However, reproducing disease-associated fibril conformations from recombinant full-length protein in vitro has remained challenging. Inspired by successful truncation strategies developed for the Tau protein, we investigated whether removing the disordered terminal regions (< >) of alpha-synuclein could bias fibril assembly toward disease-relevant folds. We designed a truncated construct comprising residues 31-100, corresponding to the structured core of patient-derived Parkinsons disease fibrils, and systematically screened aggregation conditions across a broad range of pH values and ionic environments. Cryo-electron microscopy revealed four previously undescribed fibril structures, including new subtypes of the established type 1 and type 3 polymorphs and a novel fibril fold, termed type 10, which reproducibly formed under acidic conditions. Type 10 was observed as two distinct dimeric assemblies (10A and 10B) that share a common protofilament fold but differ in their inter-filament interfaces. Structural comparison with the patient-derived Parkinsons disease polymorph revealed local similarities, including conserved {beta}-strand organization and loop conformations within the fibril core, but remains structurally distinct overall. Our results demonstrate that rational construct design combined with systematic environmental screening reshapes the alpha-synuclein polymorphic landscape and promotes structural motifs characteristic of disease-associated fibrils.

biophysics↗

On the Polymorph-Selection Determinants of α-Synuclein Amyloid Fibrils Studied at Atomic Resolution

Alpha-synuclein is an intensely studied intrinsically disordered protein whose aggregation into amyloid fibrils is connected to the progression of several neurodegenerative diseases, most commonly Parkinsons Disease. A remarkable feature that has emerged from this research is how easy it is to induce the protein to aggregate in vitro into a wide range of amyloid fibrils that appear to resemble the aggregates found in Lewy bodies in diseases like Parkinsons while at the same time how difficult it is to produce aggregates whose fold truly represents the disease-associated amyloids at the atomic level. In an effort to produce the disease-relevant fibrils in vitro we have analyzed over 60 independent samples by cryo-electron microscopy using helical reconstruction to obtain atomic resolution models for most of the samples. While not yet achieving our original goal, we have found that several overlooked parameters influence the structural outcomes of alpha-synuclein aggregation, in particular protein purity, preparation of the monomeric starting material and agitation method.

biophysics↗