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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
Abstract:
The microtubule-associated protein tau is a highly soluble protein that shows hardly any tendency to assemble under physiological conditions. In the brains of Alzheimer's disease (AD) patients, however, tau dissociates from the axonal microtubule and abnormally aggregates to form paired helical filaments (PHFs). One of the priorities in Alzheimer research is to clarify the mechanism of PHF formation. In recent years, several factors regulating tau assembly have come to light, yet some important questions remain to be answered. In this work, the His-tagged gene constructs of the four-repeat microtubule binding domain (4RMBD) in tau protein and its three mutants, 4RMBD S305N, N279K, and P301L, were expressed in E. coli and purified. Gel filtration chromatography and dynamic light scattering measurement yielded a Stokes radius of 3.1 nm, indicating that the His-tagged 4RMBD normally exists in buffer solution in a dimer state, which is formed by non-covalent intermolecular interactions. This non-covalent dimer can further polymerize to form filaments in the presence of polyanions such as heparin. The kinetics of the in vitro aggregation was monitored by thioflavine S dye fluorescence and CD measurements. The aggregation of 4RMBD was suggested to be a nucleation-dependent process, where the non-covalent dimer acts as an effective structural unit. The aggregation rate was strongly affected by the point mutation. Among the 4RMBD mutants, the rate of S305N was exceptionally fast, whereas N279K was the slowest, even slower than the wild-type. The aggregations were optimal in a weakly reducing environment for all the mutants and the wild type. However, the aggregations were affected differently by buffer pH, depending on the 4RMBD mutation.
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.