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Lovestam, S.

Publications and source records attributed to Lovestam, S..

4 recordsLinked to original sources

Serial amplification of tau filaments using Alzheimer's brain homogenates and C322A or C322S recombinant tau

The assembly of tau into amyloid filaments is a defining characteristic of Alzheimers disease (AD) and other tauopathies. Cryo-electron microscopy (cryo-EM) showed that specific tau folds characterise different diseases, and that in vitro models often yield filaments with folds that do not replicate those that form in disease. Here, we investigated the aggregation of full-length recombinant 0N3R tau, using wild-type, or mutations C322A or C322S and a real-time quaking-induced conversion (RT-QuIC) assay with brain homogenate seeding. The assembly of C322A 0N3R tau resulted in filaments with a structure resembling the AD fold in paired helical filaments (PHFs), but with a more open C-shaped core attributed to the C322A mutation. C322S 0N3R tau formed structurally more distinct filaments with respect to PHFs, with an ordered carboxy-terminal region. Both mutant filaments retained the ability to seed a second round of aggregation. Meanwhile, wild-type 0N3R tau exhibited poor reproducibility and formed predominantly unfolded aggregates. Our findings emphasise the need for optimised assembly conditions to obtain disease-relevant filament folds. Refining these methodologies could enhance our understanding of the molecular origins of tauopathies and facilitate the development of targeted therapeutic strategies for these conditions.

neuroscience↗

Seed structure and phosphorylation in the fuzzy coat impact tau seeding competency

Tau is a pathogenic protein in Alzheimers (AD) and other neurodegenerative diseases. The misfolding of tau into {beta}-sheet rich elongated filaments is thought to be a key event in disease pathogenesis, followed by subsequent templated recruitment of monomeric tau into this pathogenic form. Cryo-electron microscopy has revealed that specific tau conformations characterize different diseases. In this study, we explored how tau filament core structure and post-translational modifications in its disordered fuzzy coat influence its seeding capacity in primary neurons and mice. We show that the structure of the seeds affects seeding capacity, but that the AD tau core structure alone is insufficient to capture the full seeding capacity of AD tau. Proteolytic cleavage of AD tau which removes the fuzzy coat causes a loss in seeding capacity, as does removal of phosphorylation from the fuzzy coat by phosphatase treatment. Re-phosphorylation of phosphatase-treated AD tau by kinase treatment partially restores seeding activity. Finally, we find that filaments of recombinant tau with twelve phospho-mimetic residues (PAD12 tau) with the AD fold are able to recapitulate the seeding capacity of AD tau. Combined, these results suggest that the structure of the ordered core, together with phosphorylation in the fuzzy coat, confers the seeding capacity of tau filaments.

neuroscience↗

Tau filaments with the Alzheimer fold in cases with MAPT mutations V337M and R406W

Frontotemporal dementia (FTD) and Alzheimers disease are the most common forms of early-onset dementia. Dominantly inherited mutations in MAPT, the microtubule-associated protein tau gene, cause FTD and parkinsonism linked to chromosome 17 (FTDP-17). Individuals with FTDP-17 develop abundant filamentous tau inclusions in brain cells. Here we used electron cryo-microscopy to determine the structures of tau filaments from the brains of individuals with MAPT mutations V337M and R406W. Both mutations gave rise to tau filaments with the Alzheimer fold, which consisted of paired helical filaments in all V337M and R406W cases and of straight filaments in two V337M cases. We also identified a new assembly of the Alzheimer fold into triple tau filaments in a V337M case. Filaments assembled from recombinant tau(297-391) with mutation V337M had the Alzheimer fold and showed an increased rate of assembly.

biophysics↗

Cryo-EM structures of amyloid-beta filaments with the Arctic mutation (E22G) from human and mouse brains

The Arctic mutation, encoding E693G in the amyloid precursor protein (APP) gene [E22G in amyloid-{beta} (A{beta})], causes dominantly inherited Alzheimers disease. Here we report the high-resolution cryo-EM structures of A{beta} filaments from the frontal cortex of a previously described case (A{beta}PParc1) with the Arctic mutation. Most filaments consist of two pairs of non-identical protofilaments that comprise residues V12-V40 (human Arctic fold A) and E11-G37 (human Arctic fold B). They have a substructure (residues F20-G37) in common with the folds of type I and type II A{beta}42. When compared to the structures of wild-type A{beta}42 filaments, there are subtle conformational changes in the human Arctic folds, because of the lack of a side chain at G22, which may strengthen hydrogen bonding between mutant A{beta} molecules and promote filament formation. A minority of A{beta}42 filaments of type II was also present, as were tau paired helical filaments. In addition, we report the cryo-EM structures of A{beta} filaments with the Arctic mutation from mouse knock-in line AppNL-G-F. Most filaments are made of two identical mutant protofilaments that extend from D1-G37 (murine Arctic fold). In a minority of filaments, two dimeric folds pack against each other in an anti-parallel fashion. The murine Arctic fold differs from the human Arctic folds, but shares some substructure.

neuroscience↗