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Updated: Nov 17, 2025

Author Spotlight: Understanding the Impact of Pathological Proteins on Axonal Transport in Neurodegenerative Diseases
Published on: December 22, 2023
Defined Tau Phosphospecies Differentially Inhibit Fast Axonal Transport Through Activation of Two Independent
Sarah L Morris1,2, Ming-Ying Tsai1, Sarah Aloe2
1Department of Anatomy and Cell Biology, University of Illinois at Chicago, Chicago, IL, United States.
Abstract:
Tau protein is subject to phosphorylation by multiple kinases at more than 80 different sites. Some of these sites are associated with tau pathology and neurodegeneration, but other sites are modified in normal tau as well as in pathological tau. Although phosphorylation of tau at residues in the microtubule-binding repeats is thought to reduce tau association with microtubules, the functional consequences of other sites are poorly understood. The AT8 antibody recognizes a complex phosphoepitope site on tau that is detectable in a healthy brain but significantly increased in Alzheimer's disease (AD) and other tauopathies. Previous studies showed that phosphorylation of tau at the AT8 site leads to exposure of an N-terminal sequence that promotes activation of a protein phosphatase 1 (PP1)/glycogen synthase 3 (GSK3) signaling pathway, which inhibits kinesin-1-based anterograde fast axonal transport (FAT). This finding suggests that phosphorylation may control tau conformation and function. However, the AT8 includes three distinct phosphorylated amino acids that may be differentially phosphorylated in normal and disease conditions. To evaluate the effects of specific phosphorylation sites in the AT8 epitope, recombinant, pseudophosphorylated tau proteins were perfused into the isolated squid axoplasm preparation to determine their effects on axonal signaling pathways and FAT. Results from these studies suggest a mechanism where specific phosphorylation events differentially impact tau conformation, promoting activation of independent signaling pathways that differentially affect FAT. Implications of findings here to our understanding of tau function in health and disease conditions are discussed.
Insights
Specific phosphorylation sites on tau protein differentially regulate its conformation and function. This impacts axonal transport, offering new insights into tauopathies like Alzheimer's disease (AD).
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Tau protein phosphorylation occurs at over 80 sites, with some linked to neurodegeneration.
- The AT8 antibody recognizes a phosphoepitope on tau, elevated in Alzheimer's disease (AD) and other tauopathies.
- Phosphorylation at the AT8 site affects tau conformation, influencing axonal transport.
Purpose of the Study:
- To investigate the functional consequences of specific phosphorylation sites within the AT8 epitope on tau.
- To elucidate how differential phosphorylation impacts tau conformation and associated signaling pathways.
- To determine the effects of specific tau phosphorylation on fast axonal transport (FAT).
Main Methods:
- Utilized recombinant, pseudophosphorylated tau proteins.
- Employed the isolated squid axoplasm preparation to study axonal transport.
- Assessed effects on axonal signaling pathways and kinesin-1-based anterograde fast axonal transport (FAT).
Main Results:
- Specific phosphorylation events differentially alter tau protein conformation.
- These conformational changes activate distinct signaling pathways.
- Differential pathway activation leads to varied impacts on fast axonal transport (FAT).
Conclusions:
- Tau phosphorylation is a key regulator of tau conformation and function.
- Specific phosphorylation sites control tau's interaction with signaling pathways and axonal transport.
- Findings provide a mechanistic understanding of tau's role in health and neurodegenerative diseases.
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