A refined reaction-diffusion model of tau-microtubule dynamics and its application in FDAP analysis

Maxim Igaev1, Dennis Janning1, Frederik Sündermann1

  • 1Department of Neurobiology, University of Osnabrück, Osnabrück, Germany.

Biophysical Journal
|December 4, 2014
PubMed

Insights

New models for microtubule-associated protein tau (MAPT) interactions with microtubules reveal shorter dwell times in neurons. Accounting for heterogeneous binding sites and transport dynamics refines understanding of MAPT behavior in cellular processes.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Biophysics

Background:

  • Fluorescence decay after photoactivation (FDAP) and fluorescence recovery after photobleaching (FRAP) are common methods to study microtubule-associated protein tau (MAPT) interactions with microtubules (MTs) in neurons.
  • Previous interpretations suggested MAPT dwell times on MTs were in the seconds range.
  • This conflicts with recent single-molecule analysis indicating much shorter dwell times in neuronal processes.

Purpose of the Study:

  • To re-evaluate phenomenological interpretations of FDAP/FRAP data for MAPT-MT interactions.
  • To develop a generalized reaction-diffusion model that incorporates MT arrangement and tau motion.
  • To accurately determine MAPT association and dwell times on single MTs in neuronal processes.

Main Methods:

  • Generalized standard two-state reaction-diffusion equations.
  • Accounted for parallel, discrete MT arrangements (heterogeneous binding sites).
  • Included active diffusion and passive transport (axonal transport) of bound tau.
  • Derived analytical solutions for idealized cases and used numerical solutions and Monte Carlo simulations.
  • Interpreted FDAP data from differentiated PC12 cell processes.

Main Results:

  • The generalized model, considering heterogeneous binding sites, yielded MAPT association times of ~2 ms and dwell times of ~100 ms on single MTs.
  • These dwell times are orders of magnitude shorter than previously reported estimates assuming homogeneous MT topology.
  • In vivo diffusion of bound tau was found to be negligible, contrasting with in vitro findings.

Conclusions:

  • Heterogeneity of binding sites is crucial and cannot be ignored in reaction-diffusion studies of cytoskeleton-associated proteins.
  • MAPT behavior in cellular processes differs significantly from in vitro observations.
  • The refined model provides more accurate estimates of MAPT-MT interaction dynamics in a physiological context.