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Schoch, K. M.

Publications and source records attributed to Schoch, K. M..

2 recordsLinked to original sources

Evaluating the efficacy of commercially available antisense oligonucleotides to reduce mouse and human tau in vivo

Tauopathies, including Alzheimers disease (AD), are neurodegenerative diseases characterized by the accumulation of tau protein encoded by the MAPT (Microtubule Associated Protein Tau) gene. Various strategies targeting mechanisms to reduce tau pathology have been proposed and several tau-directed therapies are being investigated in clinical trials. Our lab previously developed a novel strategy to lower tau protein levels using antisense oligonucleotides (ASOs), showing that human tau (hTau) reduction in aged PS19 tauopathy mice reversed phosphorylated tau pathology, spared neurons, and prolonged survival. Currently, the tau-lowering ASO is being evaluated in the clinical trials with successful phase 1b results. Similarly, preclinical and clinical studies have demonstrated the use of other ASOs as effective therapeutic strategies. Acquiring ASOs for research purposes may be limited by partnerships with pharmaceutical companies. However, ASOs can be obtained through commercial vendors. The current study evaluates the efficacy of mouse and human tau-targeting ASOs obtained from a commercial vendor in various mouse models. We show that mice treated with purchased ASOs distribute among various brain cell types including neurons, microglia, and astrocytes. Mice treated with tau lowering ASOs show decreased mouse or human tau mRNA and protein levels. In addition, human tau lowering ASO-treated PS19 mice showed decreased phosphorylated tau (AT8) and gliosis relative to saline-treated PS19 mice. The results obtained in PS19 mice are consistent with data obtained from our previous study using a non-commercial tau-lowering ASO. Overall, the present study demonstrates the efficacy of commercially-available tau targeting ASOs in vivo to support their broad use by researchers.

neuroscience↗

TSC1 loss-of-function increases risk for tauopathy by inducing tau acetylation and preventing autophagy-mediated tau clearance

Age-associated neurodegenerative disorders demonstrating tau-laden intracellular inclusions, including Alzheimers disease (AD), frontotemporal lobar degeneration (FTLD) and progressive supranuclear palsy (PSP), are collectively known as tauopathies. The vast majority of human tauopathies accumulate non-mutant tau rather than mutant forms of the protein, yet cell and animal models for non-mutant tauopathies are lacking. We previously linked a monoallelic mutation in the TSC1 gene to tau accumulation and FTLD. Now, we have identified new variants in TSC1 that predisposed to other tauopathies such as AD and PSP. These new TSC1 risk variants significantly decreased the half-life of TSC1/hamartin in vitro. Cellular and murine models of TSC1 haploinsufficiency (TSC1+/-) accumulated tau protein that exhibited aberrant acetylation on six lysine residues. Tau acetylation hindered its lysosomal degradation via chaperone-mediated autophagy leading to neuronal tau accumulation. Enhanced tau acetylation in TSC1+/- models was achieved through both an increase in p300 acetyltransferase activity and a decrease in SIRT1 deacetylase levels. Pharmacological modulation of either enzyme restored tau levels. Together, these studies substantiate TSC1 as a novel tauopathy risk gene and advance TSC1 haploinsufficiency as a new genetic model for tauopathy. In addition, these results promote acetylated tau as a rational target for diagnostic and therapeutic modalities in multiple tauopathies.

neuroscience↗