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Updated: Jan 26, 2026

Assay for Phosphorylation and Microtubule Binding Along with Localization of Tau Protein in Colorectal Cancer Cells
Published on: October 10, 2017
Tau repeat regions contain conserved histidine residues that modulate microtubule-binding in response to changes in
Rabab A Charafeddine1, Wilian A Cortopassi2, Parnian Lak2
1From the Department of Cell and Tissue Biology, University of California San Francisco, San Francisco, California 94143.
Abstract:
Tau, a member of the MAP2/tau family of microtubule-associated proteins, stabilizes and organizes axonal microtubules in healthy neurons. In neurodegenerative tauopathies, tau dissociates from microtubules and forms neurotoxic extracellular aggregates. MAP2/tau family proteins are characterized by three to five conserved, intrinsically disordered repeat regions that mediate electrostatic interactions with the microtubule surface. Here, we used molecular dynamics, microtubule-binding experiments, and live-cell microscopy, revealing that highly-conserved histidine residues near the C terminus of each microtubule-binding repeat are pH sensors that can modulate tau-microtubule interaction strength within the physiological intracellular pH range. We observed that at low pH (<7.5), these histidines are positively charged and interact with phenylalanine residues in a hydrophobic cleft between adjacent tubulin dimers. At higher pH (>7.5), tau deprotonation decreased binding to microtubules both in vitro and in cells. Electrostatic and hydrophobic characteristics of histidine were both required for tau-microtubule binding, as substitutions with constitutively and positively charged nonaromatic lysine or uncharged alanine greatly reduced or abolished tau-microtubule binding. Consistent with these findings, tau-microtubule binding was reduced in a cancer cell model with increased intracellular pH but was rapidly restored by decreasing the pH to normal levels. These results add detailed insights into the intracellular regulation of tau activity that may be relevant in both normal and pathological conditions.
Insights
Histidine residues in tau protein act as pH sensors, regulating tau-microtubule binding. Changes in pH affect tau
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Tau protein is crucial for stabilizing microtubules in neurons.
- Dysfunctional tau contributes to neurodegenerative diseases like tauopathies.
- Microtubule-associated proteins (MAPs) interact with microtubules via repeat regions.
Purpose of the Study:
- To investigate the role of histidine residues in tau-microtubule interactions.
- To determine how intracellular pH affects tau binding to microtubules.
- To elucidate the regulatory mechanisms of tau activity.
Main Methods:
- Molecular dynamics simulations.
- In vitro microtubule-binding assays.
- Live-cell microscopy experiments.
Main Results:
- Highly conserved histidine residues function as pH sensors.
- Lower pH (<7.5) enhances tau-microtubule binding through histidine protonation and interaction with tubulin.
- Higher pH (>7.5) reduces tau binding affinity.
- Both electrostatic and hydrophobic properties of histidine are essential for binding.
- Altered intracellular pH in cancer cells affected tau-microtubule binding.
Conclusions:
- Intracellular pH is a key regulator of tau-microtubule interactions.
- Histidine residues mediate pH-dependent modulation of tau binding.
- These findings offer insights into tau regulation in physiological and pathological states.
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