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Updated: Feb 25, 2026

In Vitro Aggregation Assays Using Hyperphosphorylated Tau Protein
Published on: January 2, 2015
DOPA Decarboxylase Modulates Tau Toxicity
Rebecca L Kow1, Carl Sikkema2, Jeanna M Wheeler3
1Geriatrics Research Education and Clinical Center, Veterans Affairs Puget Sound Health Care System, Seattle Division, Washington; Division of Medical Genetics, Department of Medicine, University of Washington, Seattle, Washington.
Background:
The microtubule-associated protein tau accumulates into toxic aggregates in multiple neurodegenerative diseases. We found previously that loss of D2-family dopamine receptors ameliorated tauopathy in multiple models including a Caenorhabditis elegans model of tauopathy.
Methods:
To better understand how loss of D2-family dopamine receptors can ameliorate tau toxicity, we screened a collection of C. elegans mutations in dopamine-related genes (n = 45) for changes in tau transgene-induced behavioral defects. These included many genes responsible for dopamine synthesis, metabolism, and signaling downstream of the D2 receptors.
Results:
We identified one dopamine synthesis gene, DOPA decarboxylase (DDC), as a suppressor of tau toxicity in tau transgenic worms. Loss of the C. elegans DDC gene, bas-1, ameliorated the behavioral deficits of tau transgenic worms, reduced phosphorylated and detergent-insoluble tau accumulation, and reduced tau-mediated neuron loss. Loss of function in other genes in the dopamine and serotonin synthesis pathways did not alter tau-induced toxicity; however, their function is required for the suppression of tau toxicity by bas-1. Additional loss of D2-family dopamine receptors did not synergize with bas-1 suppression of tauopathy phenotypes.
Conclusions:
Loss of the DDC bas-1 reduced tau-induced toxicity in a C. elegans model of tauopathy, while loss of no other dopamine or serotonin synthesis genes tested had this effect. Because loss of activity upstream of DDC could reduce suppression of tau by DDC, this suggests the possibility that loss of DDC suppresses tau via the combined accumulation of dopamine precursor levodopa and serotonin precursor 5-hydroxytryptophan.
Insights
Loss of the DOPA decarboxylase (DDC) gene, bas-1, reduces tau toxicity in a C. elegans model. This finding suggests DDC suppression of tauopathy may involve levodopa and 5-hydroxytryptophan accumulation.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Tau protein aggregates are implicated in neurodegenerative diseases.
- Loss of D2-family dopamine receptors previously showed promise in ameliorating tauopathy.
Purpose of the Study:
- Investigate the mechanisms by which D2-family dopamine receptor loss alleviates tau toxicity.
- Screen dopamine-related genes in C. elegans to identify factors influencing tau toxicity.
Main Methods:
- Conducted a screen of 45 C. elegans mutations in dopamine-related genes.
- Assessed the impact of mutations on tau transgene-induced behavioral defects.
- Analyzed tau accumulation, phosphorylation, and neuron loss.
Main Results:
- Identified DOPA decarboxylase (DDC) gene, bas-1, as a suppressor of tau toxicity.
- Loss of bas-1 ameliorated behavioral deficits, reduced tau accumulation, and decreased neuron loss.
- Other dopamine/serotonin synthesis genes did not affect tau toxicity but were necessary for bas-1 suppression.
Conclusions:
- Loss of C. elegans DDC bas-1 significantly reduces tau-induced toxicity.
- Suppression of tau toxicity by bas-1 may involve the accumulation of levodopa and 5-hydroxytryptophan.
- D2-family dopamine receptor loss did not enhance bas-1 mediated suppression of tauopathy.
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