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Author

Alessandro Ori

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Open access Sep 2026

A scalable human neuron model of Alzheimer’s disease relevant tauopathy reveals mechanisms linking Tau fibrillization to synaptic dysfunction

Tauopathies, including Alzheimer’s disease, are driven by pathological aggregation of hyperphosphorylated Tau, which disrupts synaptic integrity, impairs neuronal communication, and contributes to cognitive decline. To dissect tauopathy pathogenesis and enable therapeutic discovery, reliable and scalable human iPSC-neuron models are essential. Here, we developed two complementary iPSC-derived neuron models: an endogenous Tau seeding model, in which neurons are challenged with pre-formed Tau fragments that form paired helical filament (PHF)-consistent structures, and a Tau-0N3R overexpression seeding model to accelerate pathology. Both models recapitulate hallmark features of tauopathy, including the progressive formation of intracellular, hyperphosphorylated, sarkosyl-insoluble, and conformationally altered Tau aggregates (AT8, MC1 positive), along with synaptic and neuronal dysfunction. Cryogenic electron tomography (cryo-ET) further revealed the morphology of Tau fibrils within cells, as well as the ultrastructure of Tau fibrils trapping synaptic vesicles in situ. Using this platform, we performed integrated phosphoproteomics, high-content screening, and functional validation to identify key pathways driving Tau aggregation. MARK2-mediated phosphorylation within Tau’s microtubule-binding domain emerged as an early trigger of aggregation, confirmed by site-specific mutagenesis. In parallel, small molecules targeting the PI3K/mTOR/GSK3 pathway reduced aggregation and restored synaptic function, with GSK3 inhibition lowering phosphorylation at critical aggregation-driving sites on Tau. Together, these findings establish a physiologically relevant, scalable platform for therapeutic screening that connects Tau seed uptake, site-specific phosphorylation, fibril formation, and synaptic disruption, ultimately identifying mechanistically separable intervention points along the aggregation cascade. HIGHLIGHTS - Development of scalable iPSC-neuron models enables tauopathy drug discovery and reconstructs progressive Tau seeding, fibrillization and synaptic dysfunction - Cryo-ET reveals the ultrastructure of Tau fibrils within human neurons and their accumulation at synapses. - Temporal phosphoproteomics identifies early modulation of MARK-regulated Tau phosphosites. - PI3K–mTOR and GSK3 regulate distinct stages of the Tau aggregation cascade. - Site-specific mutagenesis confirms critical Tau residues required for Tau aggregation.

J. Lipka, Xiwei Shan, Qiao Zhang et al. · 0 citations
Open access Aug 2026

Proteome dynamics reveal Leiomodin 1 as a key regulator of myogenic differentiation

During myogenic differentiation, the cellular architecture and proteome of muscle stem cells and myoblasts undergo extensive remodeling. These processes are partially understood and display alterations in disease and aging, resulting in impaired regeneration. Here, we used mass spectrometry to quantify the temporal dynamics of over 6000 proteins during myogenic differentiation. We identified the actin nucleator leiomodin 1 (LMOD1) among a restricted subset of cytoskeletal proteins increasing in abundance during early myogenic differentiation. LMOD1 is expressed by muscle stem cells in vivo and displays increased abundance during skeletal muscle regeneration in mice, particularly during early stages, suggesting its importance in myotube formation. Notably, LMOD1 knockdown in primary myoblasts and during regeneration severely affects differentiation, while its overexpression accelerates and improves myotube initiation. This suggests LMOD1 is a critical component regulating myogenic differentiation. Mechanistically, we show that LMOD1 physically and functionally interacts with the deacetylase sirtuin1 (SIRT1), a regulator of myogenic differentiation. We demonstrate that LMOD1 influences SIRT1 localization and the expression of its target genes. Consistently, depletion or pharmacological inhibition of SIRT1 partially rescues the differentiation impairment observed after LMOD1 knockdown. Our work identifies LMOD1 as a new regulator that might be targeted to improve muscle regeneration in aging and disease.

Ellen Späth, S. C. Schüler, I. Heinze et al. · 1 citation

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