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Aggregation analysis of the microtubule binding domain in tau protein by spectroscopic methods

Tian-Ming Yao1, Koji Tomoo, Toshimasa Ishida

  • 1Osaka University of Pharmaceutical Sciences, 4-20-1 Nasahara, Takatsuki, Osaka 569-1094. yao@gly.oups.ac.jp

Journal of Biochemistry
|August 29, 2003
PubMed

Insights

The tau protein

Area of Science:

  • Biochemistry
  • Neuroscience
  • Molecular Biology

Background:

  • Microtubule-associated protein tau is normally soluble but aggregates in Alzheimer's disease (AD).
  • Understanding tau aggregation into paired helical filaments (PHFs) is crucial for AD research.
  • The precise mechanisms regulating tau assembly remain incompletely understood.

Purpose of the Study:

  • To investigate the in vitro assembly mechanism of the tau protein's four-repeat microtubule binding domain (4RMBD).
  • To analyze the impact of specific tau mutations (S305N, N279K, P301L) on 4RMBD aggregation kinetics.
  • To characterize the structural properties and aggregation behavior of purified 4RMBD and its mutants.

Main Methods:

  • Expression and purification of His-tagged 4RMBD and its mutants in E. coli.
  • Gel filtration chromatography and dynamic light scattering to determine Stokes radius and oligomeric state.
  • In vitro aggregation assays monitored by thioflavine S fluorescence and circular dichroism (CD) spectroscopy.

Main Results:

  • Purified His-tagged 4RMBD exists as a non-covalent dimer in solution.
  • This dimer can polymerize into filaments in the presence of polyanions like heparin.
  • Aggregation follows a nucleation-dependent pathway with the dimer as the structural unit.
  • Mutations significantly altered aggregation rates; S305N was fastest, N279K was slowest.
  • Aggregation optimal in weakly reducing conditions, with pH sensitivity varying by mutation.

Conclusions:

  • The non-covalent dimer of 4RMBD is a key unit in tau filament formation.
  • Specific tau mutations differentially modulate aggregation propensity and kinetics.
  • Environmental factors like redox potential and pH influence tau aggregation.
  • This study provides insights into the molecular mechanisms underlying tauopathies.

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