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Updated: May 29, 2026

Modulation of Tau Subcellular Localization as a Tool to Investigate the Expression of Disease-related Genes
Published on: December 20, 2019
Functional genomic screen and network analysis reveal novel modifiers of tauopathy dissociated from tau
Surendra S Ambegaokar1, George R Jackson
1Department of Neurology, University of Texas Medical Branch, 301 University Blvd., MRB 10.138, Galveston, TX 77555, USA.
Abstract:
A functional genetic screen using loss-of-function and gain-of-function alleles was performed to identify modifiers of tau-induced neurotoxicity using the 2N/4R (full-length) isoform of wild-type human tau expressed in the fly retina. We previously reported eye pigment mutations, which create dysfunctional lysosomes, as potent modifiers; here, we report 37 additional genes identified from ∼1900 genes screened, including the kinases shaggy/GSK-3beta, par-1/MARK, CamKI and Mekk1. Tau acts synergistically with Mekk1 and p38 to down-regulate extracellular regulated kinase activity, with a corresponding decrease in AT8 immunoreactivity (pS202/T205), suggesting that tau can participate in signaling pathways to regulate its own kinases. Modifiers showed poor correlation with tau phosphorylation (using the AT8, 12E8 and AT270 epitopes); moreover, tested suppressors of wild-type tau were equally effective in suppressing toxicity of a phosphorylation-resistant S11A tau construct, demonstrating that changes in tau phosphorylation state are not required to suppress or enhance its toxicity. Genes related to autophagy, the cell cycle, RNA-associated proteins and chromatin-binding proteins constitute a large percentage of identified modifiers. Other functional categories identified include mitochondrial proteins, lipid trafficking, Golgi proteins, kinesins and dynein and the Hsp70/Hsp90-organizing protein (Hop). Network analysis uncovered several other genes highly associated with the functional modifiers, including genes related to the PI3K, Notch, BMP/TGF-β and Hedgehog pathways, and nuclear trafficking. Activity of GSK-3β is strongly upregulated due to TDP-43 expression, and reduced GSK-3β dosage is also a common suppressor of Aβ42 and TDP-43 toxicity. These findings suggest therapeutic targets other than mitigation of tau phosphorylation.
Insights
This study identified new genes that modify tau neurotoxicity in flies, revealing that tau toxicity is independent of its phosphorylation state. These findings suggest novel therapeutic targets beyond reducing tau phosphorylation.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Tau protein is implicated in neurodegenerative diseases.
- Understanding tau-induced neurotoxicity is crucial for developing effective therapies.
- Genetic modifiers can reveal new insights into disease mechanisms.
Purpose of the Study:
- To identify novel genetic modifiers of tau-induced neurotoxicity.
- To investigate the role of tau phosphorylation in its toxicity.
- To explore potential therapeutic targets for tauopathies.
Main Methods:
- A functional genetic screen in a fly retina model expressing wild-type human tau.
- Utilized loss-of-function and gain-of-function alleles.
- Analyzed gene networks and protein-protein interactions.
Main Results:
- Identified 37 additional genes modifying tau toxicity, including kinases like GSK-3β and MARK.
- Demonstrated that tau toxicity is not dependent on its phosphorylation state.
- Found that genes involved in autophagy, cell cycle, RNA processing, and chromatin regulation are significant modifiers.
- Network analysis revealed associations with PI3K, Notch, BMP/TGF-β, and Hedgehog pathways.
Conclusions:
- Tau-induced neurotoxicity can be modified by various cellular pathways independent of tau phosphorylation.
- GSK-3β activity is a key player and potential therapeutic target.
- Identified novel therapeutic strategies for tauopathies focusing on pathways other than tau phosphorylation.
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