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Updated: Jul 5, 2026

In Vitro Aggregation Assays Using Hyperphosphorylated Tau Protein
Published on: January 2, 2015
Complementary dimerization of microtubule-associated tau protein: Implications for microtubule bundling and
Kenneth J Rosenberg1, Jennifer L Ross, H Eric Feinstein
1Department of Physics, University of California, Santa Barbara, CA 93106, USA.
Abstract:
Tau is an intrinsically unstructured microtubule (MT)-associated protein capable of binding to and organizing MTs into evenly spaced parallel assemblies known as "MT bundles." How tau achieves MT bundling is enigmatic because each tau molecule possesses only one MT-binding region. To dissect this complex behavior, we have used a surface forces apparatus to measure the interaction forces of the six CNS tau isoforms when bound to mica substrates in vitro. Two types of measurements were performed for each isoform: symmetric configuration experiments measured the interactions between two tau-coated mica surfaces, whereas "asymmetric" experiments examined tau-coated surfaces interacting with a smooth bare mica surface. Depending on the configuration (of which there were 12), the forces were weakly adhesive, strongly adhesive, or purely repulsive. The equilibrium spacing was determined mainly by the length of the tau projection domain, in contrast to the adhesion force/energy, which was determined by the number of repeats in the MT-binding region. Taken together, the data are incompatible with tau acting as a monomer; rather, they indicate that two tau molecules associate in an antiparallel configuration held together by an electrostatic "zipper" of complementary salt bridges composed of the N-terminal and central regions of each tau monomer, with the C-terminal MT-binding regions extending outward from each end of the dimeric backbone. This tau dimer determines the length and strength of the linker holding two MTs together and could be the fundamental structural unit of tau, underlying both its normal and pathological action.
Insights
Tau protein forms microtubule (MT) bundles through a dimeric structure, not as a monomer. This antiparallel tau dimer, stabilized by electrostatic interactions, dictates MT spacing and linkage, impacting normal and pathological functions.
Area of Science:
- Biophysics
- Neuroscience
- Protein Structure and Dynamics
Background:
- Tau is an intrinsically unstructured microtubule-associated protein crucial for organizing microtubules into bundles.
- The mechanism by which tau achieves microtubule bundling, given its single binding region, remains poorly understood.
Purpose of the Study:
- To investigate the interaction forces and structural basis of tau-mediated microtubule bundling.
- To elucidate the fundamental structural unit of tau responsible for its function in microtubule organization.
Main Methods:
- Utilized a surface forces apparatus to measure interaction forces between tau-coated mica substrates in vitro.
- Performed symmetric and asymmetric configuration experiments across all six CNS tau isoforms.
- Analyzed force measurements to determine adhesion, repulsion, and equilibrium spacing characteristics.
Main Results:
- Tau interaction forces varied from weakly adhesive to purely repulsive depending on experimental configuration.
- Equilibrium spacing was primarily dictated by the length of the tau projection domain.
- Adhesion force and energy were correlated with the number of repeats in the tau MT-binding region.
Conclusions:
- Data strongly suggest tau functions as a dimer, not a monomer, in an antiparallel configuration.
- An electrostatic 'zipper' involving N-terminal and central regions forms the tau dimer backbone.
- The tau dimer, with outward-extending C-terminal binding regions, acts as the fundamental unit for MT bundling.
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