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Fiock, K. L.

Publications and source records attributed to Fiock, K. L..

2 recordsLinked to original sources

Determinants of Astrocytic Pathology in Stem Cell Models of Primary Tauopathies

Astrocytic tau aggregates are seen in several primary and secondary tauopathies, including progressive supranuclear palsy (PSP), corticobasal degeneration (CBD), and chronic traumatic encephalopathy (CTE). In all cases, astrocytic tau consists exclusively of the longer (4R) tau isoform, even when adjacent neuronal aggregates consist of a mixture of 3- and 4R tau, as in CTE. The reasons for this and the mechanisms by which astrocytic tau aggregates form remain unclear. We used a combination of RNA in situ hybridization and immunofluorescence in post-mortem human brain tissue, as well as tau uptake studies in human stem cell-derived astrocytes, to determine the origins of astrocytic tau in 4R tauopathies. We found that astrocytes across tauopathies do not upregulate tau mRNA expression between diseases or between tau-positive and -negative astrocytes within PSP. We then found that stem cell-derived astrocytes preferentially take up long isoform (4R) labeled recombinant tau and that this uptake is impaired by induction of reactivity with inflammatory stimuli or nutritional stress. Astrocytes exposed to either 3R or 4R tau also showed downregulation of genes related to astrocyte differentiation. Our findings suggest that astrocytes preferentially take up neuronal 4R tau from the extracellular space, which potentially explains why astrocytic tau aggregates contain only 4R tau, and that tau uptake is impaired by decreased nutrient availability or neuroinflammation, both of which are common in the aging brain.

neuroscience↗

Characterization of the Tau Interactome in Human Brain Reveals Isoform-Dependent Interaction with 14-3-3 Family Proteins

Tau phosphorylation and aggregation is the final common pathway for neuronal toxicity across multiple neurodegenerative diseases including Alzheimer disease, progressive supranuclear palsy, and corticobasal degeneration. We have previously shown that the fetal brain expresses high levels of phosphorylated tau, and even tau aggregates, without apparent toxic effects. The mechanisms for this remarkable resilience, however, remain unclear. In order to identify potential mediators of this resilience, we used bead-linked total tau immunoprecipitation in human fetal, adult, and Alzheimer disease brains. We then used heterologous transfection in HEK 293T cells followed by coimmunoprecipitation, mass photometry, and nuclear magnetic resonance (NMR) to further characterize the interaction of tau with one of our top hits, 14-3-3-{beta}. We found significant differences between the tau interactome in fetal and AD brain, with little difference between adult and AD. There were significant differences in tau interaction with 14-3-3 family proteins between fetal and AD brain. We then determined that the 14-3-3 isoform with the highest difference, 14-3-3-{beta}, preferentially interacts with 4R tau in vitro, forming a complex consisting of two 14-3-3-{beta}, and one tau molecule. NMR studies using 15N-labeled phosphorylated tau showed that the binding site for 14-3-3 was in the microtubule binding region of tau, which is truncated in 3R tau through the exclusion of exon 10. Our findings suggest that there are marked differences between the phospho-tau interactome in fetal and Alzheimer disease brain, including differences in interaction with the critical 14-3-3 family of protein chaperones, which may explain, in part, the resilience of fetal brain to tau toxicity.

neuroscience↗