4.7 Article

Evolving prion-like tau conformers differentially alter postsynaptic proteins in neurons inoculated with distinct isolates of Alzheimer's disease tau

期刊

CELL AND BIOSCIENCE
卷 13, 期 1, 页码 -

出版社

BMC
DOI: 10.1186/s13578-023-01133-0

关键词

Alzheimer's disease; Conformational diversity; Postsynaptic scaffolding proteins; Propagation of tau aggregation; Synapses loss; Tau misfolding; Tau protein

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This study aimed to investigate the impact of different mutated tau conformers on the phenotypic variations of Alzheimer's disease (AD) and synaptic loss. By inoculating structurally-characterized Sarkosyl-insoluble tau isolates from AD cases into wild-type mouse neurons, it was found that different mutated tau conformers induced aggregation at different rates and exhibited distinct conformational characteristics in mature neurons. The correlation between the formation of mutated tau aggregates and synaptic loss further confirmed the presence of diverse mutated tau aggregates with different synaptic interactors.
ObjectivesAlthough accumulation of misfolded tau species has been shown to predict cognitive decline in patients with Alzheimer's disease (AD) and other tauopathies but with the remarkable diversity of clinical manifestations, neuropathology profiles, and time courses of disease progression remaining unexplained by current genetic data. We considered the diversity of misfolded tau conformers present in individual AD cases as an underlying driver of the phenotypic variations of AD and progressive loss of synapses.MethodsTo model the mechanism of tau propagation and synaptic toxicity of distinct tau conformers, we inoculated wild-type primary mouse neurons with structurally characterized Sarkosyl-insoluble tau isolates from the frontal cortex of six AD cases and monitored the impact for fourteen days. We analyzed the accumulation rate, tau isoform ratio, and conformational characteristics of de novo-induced tau aggregates with conformationally sensitive immunoassays, and the dynamics of synapse formation, maintenance, and their loss using a panel of pre-and post-synaptic markers.ResultsAt the same concentrations of tau, the different AD tau isolates induced accumulation of misfolded predominantly 4-repeat tau aggregates at different rates in mature neurons, and demonstrated distinct conformational characteristics corresponding to the original AD brain tau. The time-course of the formation of misfolded tau aggregates and colocalization correlated with significant loss of synapses in tau-inoculated cell cultures and the reduction of synaptic connections implicated the disruption of postsynaptic compartment as an early event.ConclusionsThe data obtained with mature neurons expressing physiological levels and adult isoforms of tau protein demonstrate markedly different time courses of endogenous tau misfolding and differential patterns of post-synaptic alterations. These and previous biophysical data argue for an ensemble of various misfolded tau aggregates in individual AD brains and template propagation of their homologous conformations in neurons with different rates and primarily postsynaptic interactors. Modeling tau aggregation in mature differentiated neurons provides a platform for investigating divergent molecular mechanisms of tau strain propagation and for identifying common structural features of misfolded tau and critical interactors for new therapeutic targets and approaches in AD.

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