Tau accelerates tubulin exchange in the microtubule lattice

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • Subham Biswas - , Saarland University (Author)
  • Rahul Grover - , Chair of BioNano-Tools (Author)
  • Cordula Reuther - , Chair of BioNano-Tools (Author)
  • Chetan S. Poojari - , Saarland University, PharmaScienceHub (PSH) (Author)
  • Reza Shaebani - , Saarland University (Author)
  • Shweta Nandakumar - , Saarland University (Author)
  • Mona Grünewald - , Saarland University (Author)
  • Amir Zablotsky - , Université Grenoble Alpes (Author)
  • Jochen S. Hub - , Saarland University, PharmaScienceHub (PSH) (Author)
  • Stefan Diez - , Clusters of Excellence PoL: Physics of Life, Chair of BioNano-Tools, Max Planck Institute of Molecular Cell Biology and Genetics (Author)
  • Karin John - , Université Grenoble Alpes (Author)
  • Laura Schaedel - , Saarland University, PharmaScienceHub (PSH) (Author)

Abstract

Microtubules are cytoskeletal filaments characterized by dynamic instability at their tips and a dynamic lattice that undergoes continuous tubulin loss and incorporation. Tau, a neuronal microtubule-associated protein, is well known for its role in stabilizing microtubule tips and promoting microtubule bundling. Here we demonstrate that tau also modulates microtubule lattice dynamics. Although tau lacks enzymatic activity, it significantly accelerates tubulin exchange within the lattice, particularly at topological defect sites. Our findings indicate that tau enhances lattice anisotropy by stabilizing longitudinal tubulin–tubulin interactions while destabilizing lateral ones, thereby enhancing the mobility and annihilation of lattice defects. These results challenge the traditional view of tau as merely a passive stabilizer, revealing its active role in dynamically remodelling the microtubule lattice structure.

Details

Original languageEnglish
Pages (from-to)1616-1628
Number of pages13
JournalNature physics
Volume21
Issue number10
Early online date4 Sept 2025
Publication statusPublished - Oct 2025
Peer-reviewedYes

External IDs

ORCID /0000-0002-0750-8515/work/192041086

Keywords

ASJC Scopus subject areas