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Patsonis, M.

Publications and source records attributed to Patsonis, M..

2 recordsLinked to original sources

Tau spreading coordinates intercellular lipid flux enhancing neuronal resilience to lipid toxicity

The presence of intrinsically disordered proteins (IDPs) in the extracellular environment of the brain suggests that protein disorder may serve functions beyond those confined to the intracellular space. Tau, a prototypical IDP linked to tauopathies, a class of neurodegenerative diseases, is continuously released and spreads between cells in the brain, yet the biological significance of this extracellular phase remains unresolved. Here, we show that spreading tau coordinates neutral lipid homeostasis by promoting neuronal lipid efflux and enhancing resilience to lipid toxicity. Integrating transcriptomics and lipidomics, we demonstrate that tau spreading reprograms lipid transport pathways and triggers redistribution of triacylglycerol pools, remodeling neutral lipid metabolism. Mechanistically, cellular uptake of spreading tau drives its accumulation within neutral lipid-rich compartments and promotes neuronal lipid efflux. The exported lipids are enriched in peroxidized species that are subsequently transferred to astrocytes, reducing neuronal lipid stress and revealing a pathway through which tau regulates lipid homeostasis. Our findings reframe spreading tau as a regulator of intercellular lipid flux and position protein disorder as an active mediator of cell-to-cell communication in coordinating tissue metabolism. Loss of this homeostatic function is likely to contribute to the early metabolic dysfunction associated with tauopathy.

neuroscience↗

Manipulation of the Nuclear Envelope-Associated Protein SLAPDuring Mammalian Brain Development Affects Cortical Lamination and Exploratory Behavior

Here we report the first characterization of the effects resulting from the manipulation of Soluble-Lamin Associated Protein (SLAP) expression during mammalian brain development. We found that SLAP localizes to the nuclear envelope and when overexpressed causes changes in nuclear morphology and lengthening of mitosis. SLAP overexpression in apical progenitors of the developing mouse brain altered asymmetric cell division, neurogenic commitment and neuronal migration ultimately resulting in unbalance in the proportion of upper, relative to deeper, neuronal layers. Several of these effects were also recapitulated upon Cas9-mediated knock-down. Ultimately, SLAP overexpression during development resulted in a reduction in subcortical projections of young mice and, notably, reduced their exploratory behavior. Our study shows the potential relevance of the previously uncharacterized nuclear envelope protein SLAP in neurodevelopmental disorders.

developmental biology↗