Stabilization of dynamic microtubules by mDia1 drives Tau-dependent Aβ1-42 synaptotoxicity
Xiaoyi Qu1, Feng Ning Yuan1, Carlo Corona1
1Department of Pathology, Anatomy and Cell Biology, Columbia University, New York, NY.
Abstract:
Oligomeric Amyloid β1-42 (Aβ) plays a crucial synaptotoxic role in Alzheimer's disease, and hyperphosphorylated tau facilitates Aβ toxicity. The link between Aβ and tau, however, remains controversial. In this study, we find that in hippocampal neurons, Aβ acutely induces tubulin posttranslational modifications (PTMs) and stabilizes dynamic microtubules (MTs) by reducing their catastrophe frequency. Silencing or acute inhibition of the formin mDia1 suppresses these activities and corrects the synaptotoxicity and deficits of axonal transport induced by Aβ. We explored the mechanism of rescue and found that stabilization of dynamic MTs promotes tau-dependent loss of dendritic spines and tau hyperphosphorylation. Collectively, these results uncover a novel role for mDia1 in Aβ-mediated synaptotoxicity and demonstrate that inhibition of MT dynamics and accumulation of PTMs are driving factors for the induction of tau-mediated neuronal damage.
Insights
Oligomeric amyloid beta (Aβ) stabilizes microtubules, worsening Alzheimer's disease. Inhibiting the protein mDia1 reverses this, offering a potential therapeutic target for Aβ-induced neurodegeneration.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Oligomeric amyloid beta (Aβ) is implicated in Alzheimer's disease (AD) synaptotoxicity.
- Hyperphosphorylated tau exacerbates Aβ toxicity, but their direct link is debated.
- Microtubule (MT) dynamics are crucial for neuronal function.
Purpose of the Study:
- To investigate the role of microtubule dynamics in Aβ-induced synaptotoxicity.
- To elucidate the mechanism linking Aβ and tau pathology.
- To identify potential therapeutic targets for AD.
Main Methods:
- Utilized hippocampal neuron cultures.
- Investigated Aβ effects on tubulin posttranslational modifications (PTMs) and MT dynamics.
- Assessed the impact of mDia1 inhibition on Aβ-induced neuronal damage.
- Examined tau phosphorylation and dendritic spine morphology.
Main Results:
- Aβ acutely stabilizes dynamic microtubules by reducing catastrophe frequency.
- Inhibition of the formin mDia1 reversed Aβ-induced synaptotoxicity and axonal transport deficits.
- Microtubule stabilization promoted tau-dependent dendritic spine loss and tau hyperphosphorylation.
- mDia1 plays a critical role in mediating Aβ's detrimental effects.
Conclusions:
- mDia1 is a novel player in Aβ-mediated synaptotoxicity.
- Inhibition of MT dynamics and PTM accumulation drive tau-mediated neuronal damage in AD.
- Targeting mDia1 or MT dynamics may offer therapeutic strategies for Alzheimer's disease.
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